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<front>
<journal-meta>
<journal-id journal-id-type="pmc">OR</journal-id>
<journal-id journal-id-type="nlm-ta">OR</journal-id>
<journal-id journal-id-type="publisher-id">OR</journal-id>
<journal-title-group>
<journal-title>Oncology Research</journal-title>
</journal-title-group>
<issn pub-type="ppub">0965-0407</issn>
<issn pub-type="epub">1555-3906</issn>
<publisher>
<publisher-name>Tech Science Press</publisher-name>
<publisher-loc>USA</publisher-loc>
</publisher>
</journal-meta>
<article-meta>
<article-id pub-id-type="publisher-id">72443</article-id>
<article-id pub-id-type="doi">10.32604/or.2025.072443</article-id>
<article-categories>
<subj-group subj-group-type="heading">
<subject>Review</subject>
</subj-group>
</article-categories>
<title-group>
<article-title>Clinical Integration of Menin Inhibitors in AML: Evolving Data and Therapeutic Perspectives</article-title>
<alt-title alt-title-type="left-running-head">Clinical Integration of Menin Inhibitors in AML: Evolving Data and Therapeutic Perspectives</alt-title>
<alt-title alt-title-type="right-running-head">Clinical Integration of Menin Inhibitors in AML: Evolving Data and Therapeutic Perspectives</alt-title>
</title-group>
<contrib-group>
<contrib id="author-1" contrib-type="author">
<name name-style="western">
<surname>Chen</surname>
<given-names>Tiffany</given-names>
</name>
<xref ref-type="aff" rid="aff-1">1</xref>
</contrib>
<contrib id="author-2" contrib-type="author">
<name name-style="western">
<surname>Kim</surname>
<given-names>Grace</given-names>
</name>
<xref ref-type="aff" rid="aff-2">2</xref>
</contrib>
<contrib id="author-3" contrib-type="author">
<name name-style="western">
<surname>Rahimi</surname>
<given-names>Yekta</given-names>
</name>
<xref ref-type="aff" rid="aff-3">3</xref>
</contrib>
<contrib id="author-4" contrib-type="author">
<name name-style="western">
<surname>Kamdar</surname>
<given-names>Monisha</given-names>
</name>
<xref ref-type="aff" rid="aff-4">4</xref>
</contrib>
<contrib id="author-5" contrib-type="author">
<name name-style="western">
<surname>Fernandez-Hernandez</surname>
<given-names>Eduardo</given-names>
</name>
<xref ref-type="aff" rid="aff-4">4</xref>
</contrib>
<contrib id="author-6" contrib-type="author">
<name name-style="western">
<surname>Woan</surname>
<given-names>Karrune</given-names>
</name>
<xref ref-type="aff" rid="aff-4">4</xref>
</contrib>
<contrib id="author-7" contrib-type="author" corresp="yes">
<name name-style="western">
<surname>Tam</surname>
<given-names>Eric L.</given-names>
</name>
<xref ref-type="aff" rid="aff-4">4</xref>
<email>eric.tam@med.usc.edu</email>
</contrib>
<contrib id="author-8" contrib-type="author">
<name name-style="western">
<surname>Yaghmour</surname>
<given-names>George</given-names>
</name>
<xref ref-type="aff" rid="aff-4">4</xref>
</contrib>
<aff id="aff-1"><label>1</label><institution>California University of Science and Medicine</institution>, <addr-line>Colton, CA 92324</addr-line>, <country>USA</country></aff>
<aff id="aff-2"><label>2</label><institution>Keck School of Medicine of USC, University of Southern California</institution>, <addr-line>Los Angeles, CA 90033</addr-line>, <country>USA</country></aff>
<aff id="aff-3"><label>3</label><institution>Department of Medicine, Keck School of Medicine of USC</institution>, <addr-line>Los Angeles, CA 90033</addr-line>, <country>USA</country></aff>
<aff id="aff-4"><label>4</label><institution>Jane Ann Nohl Division of Hematology and Center for the Study of Blood Disease, USC Norris Comprehensive Cancer Center</institution>, <addr-line>Los Angeles, CA 90033</addr-line>, <country>USA</country></aff>
</contrib-group>
<author-notes>
<corresp id="cor1"><label>&#x002A;</label>Corresponding Author: Eric L. Tam. Email: <email>eric.tam@med.usc.edu</email></corresp>
</author-notes>
<pub-date date-type="collection" publication-format="electronic">
<year>2026</year>
</pub-date>
<pub-date date-type="pub" publication-format="electronic">
<day>24</day><month>2</month><year>2026</year>
</pub-date>
<volume>34</volume>
<issue>3</issue>
<elocation-id>4</elocation-id>
<history>
<date date-type="received">
<day>27</day>
<month>08</month>
<year>2025</year>
</date>
<date date-type="accepted">
<day>30</day>
<month>12</month>
<year>2025</year>
</date>
</history>
<permissions>
<copyright-statement>&#x00A9; 2026 The Authors. Published by Tech Science Press.</copyright-statement>
<copyright-year>2026</copyright-year>
<copyright-holder>The Authors</copyright-holder>
<license xlink:href="https://creativecommons.org/licenses/by/4.0/">
<license-p>This work is licensed under a <ext-link ext-link-type="uri" xlink:type="simple" xlink:href="https://creativecommons.org/licenses/by/4.0/">Creative Commons Attribution 4.0 International License</ext-link>, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.</license-p>
</license>
</permissions>
<self-uri content-type="pdf" xlink:href="TSP_OR_72443.pdf"></self-uri>
<abstract>
<p>Acute myeloid leukemia (AML) remains a biologically heterogeneous disease with historically limited targeted therapies and poor outcomes. The development of menin inhibitors represents a promising shift, particularly for patients harboring <italic>KMT2A</italic> rearrangements (<italic>KMT2A</italic>r) and <italic>NPM1</italic> mutations (<italic>NPM1</italic>m). This manuscript reviews the molecular rationale of menin inhibition for aberrant homeobox/myeloid ectopic insertion site 1 (HOX/MEIS1)-driven gene expression and leukemogenesis, clinical trial outcomes, and safety data for menin inhibitors, with a focus on recently FDA-approved revumenib and several other agents in development, ziftomenib (KO-539), bleximenib (JNJ-75276617), and icovamenib (BMF-219). We also focused our discussion on future directions to include resistance mechanisms, biomarker identification and monitoring strategies, and combination therapies. Menin inhibition is now being clinically integrated into relapsed/refractory and frontline treatment settings.</p>
</abstract>
<kwd-group kwd-group-type="author">
<kwd>Menin</kwd>
<kwd>menin inhibitor</kwd>
<kwd>acute myeloid leukemia (AML)</kwd>
<kwd>leukemia</kwd>
<kwd>revumenib</kwd>
<kwd>ziftomenib</kwd>
<kwd>bleximenib</kwd>
<kwd>icovamenib</kwd>
</kwd-group>
</article-meta>
</front>
<body>
<sec id="s1">
<label>1</label>
<title>Introduction</title>
<p>Acute myeloid leukemia (AML) is a clonal hematologic malignancy characterized by uncontrolled proliferation of myeloid precursor cells in the bone marrow, leading to improper hematopoietic differentiation and subsequent cytopenias [<xref ref-type="bibr" rid="ref-1">1</xref>,<xref ref-type="bibr" rid="ref-2">2</xref>]. Survival expectations remain age-dependent, with a 62% estimated 5-year survival in patients diagnosed under the age of 50 years, 37% survival for patients 50&#x2013;64 years of age, and 9.4% for patients 65 years and older at diagnosis [<xref ref-type="bibr" rid="ref-1">1</xref>]. Outcomes are especially poor for relapsed or refractory (R/R) AML, for elderly patients unfit for intensive therapy, and for those with adverse cytogenetic or molecular features [<xref ref-type="bibr" rid="ref-3">3</xref>]. The pathogenesis of AML is driven by a myriad of genetic and/or epigenetic abnormalities [<xref ref-type="bibr" rid="ref-4">4</xref>,<xref ref-type="bibr" rid="ref-5">5</xref>]. Over the past decade, emerging treatments, such as FMS-like tyrosine kinase 3 (FLT3) and isocitrate dehydrogenase 1/isocitrate dehydrogenase 2 (IDH1/IDH2) inhibitors, have focused on targeting molecularly defined AML subgroups, which have improved overall survival (OS) in patients with select mutations. However, the OS rates of AML patients with histone-lysine N-methyltransferase 2A rearrangements (<italic>KMT2A</italic>r) are still poor, with a median OS of as low as 2.4 months [<xref ref-type="bibr" rid="ref-6">6</xref>]. One promising therapeutic avenue for these patients is menin inhibition, which disrupts the interaction between KMT2A and the nuclear scaffold protein, menin, that is a key mediator in leukemogenic transcriptional activation. Thus far, menin inhibitors have shown clinical efficacy with high rates of minimal residual disease (MRD) negativity, which has led to regulatory approval for one menin inhibitor, revumenib, in the treatment of R/R AML in adult and pediatric patients with <italic>KMT2A</italic>r and nucleophosmin 1 mutation (<italic>NPM1</italic>m) [<xref ref-type="bibr" rid="ref-7">7</xref>]. Their specificity and ability to redirect leukemic proliferation toward differentiation distinguish menin inhibitors from conventional cytotoxic agents, establishing them as a novel class of targeted therapies in the treatment of AML. Menin inhibitors may also complement other targeted AML therapies, including FLT3, IDH1/IDH2, and B-cell lymphoma/leukemia 2 (BCL2) inhibitors, particularly since many patients can possess co-mutations and relapse after initial treatment [<xref ref-type="bibr" rid="ref-1">1</xref>,<xref ref-type="bibr" rid="ref-8">8</xref>]. In this review, we will examine the development of menin inhibitors, summarize the latest clinical advances, identify biomarker testing, and discuss the challenges and future directions in leveraging this novel therapeutic strategy to improve outcomes for patients with AML.</p>
</sec>
<sec id="s2">
<label>2</label>
<title>Pathophysiology and Rationale of Menin Inhibitors</title>
<p>During normal hematopoiesis, the menin-KMT2A interaction plays a crucial role in regulating chromatin modification and gene expression [<xref ref-type="bibr" rid="ref-9">9</xref>,<xref ref-type="bibr" rid="ref-10">10</xref>]. Menin, encoded by menin 1 (<italic>MEN1)</italic> on chromosome 11q13, functions as a nuclear scaffold protein that binds to the N-terminal region of KMT2A via two highly conserved menin-binding motifs (MBM1 and MBM2) [<xref ref-type="bibr" rid="ref-11">11</xref>,<xref ref-type="bibr" rid="ref-12">12</xref>]. This association directs KMT2A to its target gene promoters, where its histone H3 lysine 4 (H3K4) methyltransferase activity promotes a transcriptionally active chromatin state. The menin-KMT2A complex targets many genes essential for hematopoietic stem cell (HSC) maintenance, such as homeobox A9 (HOXA9) and MEIS1, and dysfunction in their interaction has shown impaired adaptive stress responses and self-renewal in HSCs [<xref ref-type="bibr" rid="ref-13">13</xref>]. This dependence on menin is maintained in <italic>KMT2A</italic>r AML as well, rendering menin as a possible target for inhibition.</p>
<p><italic>KMT2A</italic> rearrangements occur in roughly 5%&#x2013;10% of adult AML cases and 20% of <italic>de novo</italic> cases in children [<xref ref-type="bibr" rid="ref-8">8</xref>,<xref ref-type="bibr" rid="ref-14">14</xref>,<xref ref-type="bibr" rid="ref-15">15</xref>]. Over 130 different fusion partners have been described, but only a handful of them account for the majority of <italic>KMT2A</italic>r acute leukemia cases, including the transcriptional cofactors ALL-1 fused gene from chromosome 4 (AF4: &#x007E;36%), ALL-1 fused gene from chromosome 9 (AF9: &#x007E;19%), and eleven-nineteen leukemia (ENL: &#x007E;13%) [<xref ref-type="bibr" rid="ref-8">8</xref>,<xref ref-type="bibr" rid="ref-16">16</xref>,<xref ref-type="bibr" rid="ref-17">17</xref>]. These fusion proteins lose the KMT2A C-terminal Su(var)3-9/Enhancer of Zeste/Trithorax (SET) domain responsible for H3K4 methyltransferase activity but retain the N-terminus that binds to menin [<xref ref-type="bibr" rid="ref-16">16</xref>,<xref ref-type="bibr" rid="ref-18">18</xref>]. Thus, upon binding to menin, the <italic>KMT2A</italic>r fusion proteins translocate to the nucleus, where they constitutively recruit transcriptional coactivators and histone acetyltransferases at target promoter sites. This leads to aberrant expression of genes involved in HSC proliferation, most notably the <italic>HOX</italic> family genes and their cofactor, <italic>MEIS1</italic> [<xref ref-type="bibr" rid="ref-10">10</xref>,<xref ref-type="bibr" rid="ref-16">16</xref>,<xref ref-type="bibr" rid="ref-19">19</xref>&#x2013;<xref ref-type="bibr" rid="ref-21">21</xref>]. Constitutive activation of the HOX/MEIS1 complex prevents their epigenetic repression and subsequently drives a differentiation block in precursor cells. Different mechanisms of how aberrant gene expression is achieved by <italic>KMT2A</italic>r variants have been proposed, yet there is a shared dependence on menin for nuclear localization.</p>
<p>Other genetic abnormalities, including <italic>NPM1</italic>m and nucleoporin 98-rearranged (<italic>NUP98</italic>r) AML, rely on menin interaction with KMT2A to maintain their leukemogenic states. <italic>NPM1</italic>m AML represents 25%&#x2013;30% of adult cases [<xref ref-type="bibr" rid="ref-22">22</xref>], while <italic>NUP98</italic>r AML is frequently reported in pediatric populations (4%&#x2013;7%) [<xref ref-type="bibr" rid="ref-23">23</xref>,<xref ref-type="bibr" rid="ref-24">24</xref>], though a recent study showed a relatively high prevalence in adult East Asian patients [<xref ref-type="bibr" rid="ref-25">25</xref>]. The exact pathophysiology of <italic>NPM1</italic>m AML remains elusive, however past studies suggest that NPM1m plays a role at both the nuclear and cytoplasmic levels, driving constitutive <italic>HOX</italic>/<italic>MEIS1</italic> expression and preventing apoptotic protease activity, respectively. NPM1m is recruited to chromatin by the transport protein, exoportin 1 (XPO1), and localizes at sites that are already enriched with menin-<italic>KMT2A</italic>, most notably <italic>HOX</italic>/<italic>MEIS</italic> [<xref ref-type="bibr" rid="ref-26">26</xref>&#x2013;<xref ref-type="bibr" rid="ref-28">28</xref>]. It is unclear how NPM1m promotes HOX/MEIS transcription, however, degradation of NPM1m resulted in a significant reduction of <italic>HOX</italic>/<italic>MEIS</italic> expression in <italic>in vitro</italic> studies [<xref ref-type="bibr" rid="ref-27">27</xref>,<xref ref-type="bibr" rid="ref-29">29</xref>]. In addition, inhibition of menin-KMT2A interaction prevented not only KMT2A binding to their target loci but also NPM1m to the same loci, including <italic>MEIS1</italic>, runt-related transcription factor 2 (<italic>RUNX2)</italic>, and others [<xref ref-type="bibr" rid="ref-30">30</xref>]. Similarly, NUP98r fusion proteins directly interact with menin-KMT2A to drive leukemogenesis via upregulation of HOX/MEIS1. Disruption of the menin-KMT2A interaction by menin inhibitors led to the displacement of KMT2A and NUP98 fusion proteins from chromatin at proleukemogenic genes in both <italic>in vitro</italic> and patient-derived xenograft models [<xref ref-type="bibr" rid="ref-31">31</xref>&#x2013;<xref ref-type="bibr" rid="ref-33">33</xref>].</p>
<p>These findings have led to the development of small-molecule menin inhibitors that aim to disrupt the menin&#x2013;KMT2A interaction, aiming to extinguish the HOX/MEIS1 transcriptional program underlying these leukemias (<xref ref-type="fig" rid="fig-1">Fig. 1</xref>). Preclinical studies have repeatedly shown that small-molecule menin inhibitors, including revumenib, ziftomenib (KO-539), bleximenib (JNJ-75276617), and icovamenib (BMF-219), can effectively disrupt the menin&#x2013;KMT2A interaction. They reduce target gene expression, promote differentiation and apoptosis, and suppress AML growth in cell lines and patient-derived xenografts across <italic>KMT2A</italic>r, <italic>NPM1</italic>m, and <italic>NUP98</italic>r models [<xref ref-type="bibr" rid="ref-34">34</xref>]. Revumenib and ziftomenib have been developed to bind to the menin binding pocket with high affinity and prevent the interaction with the KMT2A fusion proteins [<xref ref-type="bibr" rid="ref-35">35</xref>,<xref ref-type="bibr" rid="ref-36">36</xref>].</p>
<fig id="fig-1">
<label>Figure 1</label>
<caption>
<title>Menin binds to KMT2A and is an essential cofactor for interactions with <italic>HOX</italic> gene promoters. <italic>KMT2A</italic>r leukemias are characterized by the abnormal overexpression of <italic>HOX</italic> genes and their cofactor, <italic>MEIS1</italic>. <italic>NPM1</italic>m is primarily located in the cytoplasm and upregulates <italic>HOX</italic> genes. This results in a block of hematopoietic differentiation and contributes to leukemic transformation. Menin inhibitors disrupt the chromatin complex between menin and KMT2A and inhibit this interaction, thereby disrupting the abnormal transcriptional program leading to leukemogenesis. Original graphic, Microsoft PowerPoint Version 16.103.1</title>
</caption>
<graphic mimetype="image" mime-subtype="tif" xlink:href="OncolRes-34-72443-f001.tif"/>
</fig>
</sec>
<sec id="s3">
<label>3</label>
<title>Menin Inhibitors Approved and in Clinical Trials</title>
<p>Currently, the menin inhibitors under evaluation in clinical trials include revumenib, ziftomenib, BN104, bleximenib, icovamenib (BMF-219), and enzomenib (<xref ref-type="table" rid="table-1">Tables 1</xref> and <xref ref-type="table" rid="table-7">A1</xref>). Preliminary results are available for trials with revumenib, ziftomenib, BN104, bleximenib, icovamenib, and enzomenib in monotherapy and combination therapy regimens (<xref ref-type="table" rid="table-2">Table 2</xref>).</p>
<table-wrap id="table-1">
<label>Table 1</label>
<caption>
<title>Menin inhibitor clinical trials</title>
</caption>
<table>
<colgroup>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/> </colgroup>
<thead>
<tr>
<th>Drug</th>
<th>Regimen</th>
<th>Phase</th>
<th>Diagnosis</th>
<th>Mutation</th>
</tr>
</thead>
<tbody>
<tr>
<td rowspan="10">Revumenib (SNDX-5613)</td>
<td>Monotherapy</td>
<td>Phase 1 (NCT06575296)</td>
<td>AML, ALL (post-allogeneic HSCT)</td>
<td><italic>KMT2A, NPM1</italic></td>
</tr>
<tr>
<td></td>

<td>Phase 1/2 (NCT04065399)</td>
<td>AML, ALL</td>
<td><italic>KMT2A, NPM1, NUP98</italic></td>
</tr>
<tr>
<td></td>

<td>Phase 2 (NCT06229912)</td>
<td>AML, ALL</td>
<td><italic>KMT2A, NPM1, NUP98, NUP214</italic> (upregulation of HOX genes)</td>
</tr>
<tr>
<td>Combination</td>
<td>Phase 1 (NCT06222580)</td>
<td>AML</td>
<td><italic>KMT2A, NPM1, FLT3</italic></td>
</tr>
<tr>

<td></td>
<td>Phase 1 (NCT06313437)</td>
<td>AML</td>
<td><italic>NPM1, FLT3</italic></td>
</tr>
<tr>

<td></td>
<td>Phase 1 (NCT05886049)</td>
<td>AML</td>
<td><italic>KMT2A, NPM1</italic></td>
</tr>
<tr>

<td></td>
<td>Phase 1 (NCT06177067)</td>
<td>AML, ALAL</td>
<td><italic>KMT2A, NPM1, NUP98, NUP214</italic></td>
</tr>
<tr>
<td></td>

<td>Phase 1 (NCT07052994)</td>
<td>AML, MPAL</td>
<td><italic>KMT2, NPM1, NUP98, UBTF-ITD</italic></td>
</tr>
<tr>

<td></td>
<td>Phase 1 (NCT06226571)</td>
<td>AML</td>
<td><italic>KMT2, NPM1, NUP98</italic></td>
</tr>
<tr>
<td></td>

<td>Phase 1/2 (NCT05360160)</td>
<td>AML</td>
<td><italic>KMT2A, NPM1, NUP98</italic></td>
</tr>
<tr>
<td></td>
<td></td>
<td>Phase 1/2 (NCT06284486)</td>
<td>AML</td>
<td><italic>KMT2A, NPM1, NUP98</italic></td>
</tr>
<tr>
<td></td>
<td></td>
<td>Phase 2 (NCT05761171)</td>
<td>ALL</td>
<td><italic>KMT2A</italic></td>
</tr>
<tr>
<td></td>
<td></td>
<td>Phase 3 (NCT06652438)</td>
<td>AML</td>
<td><italic>KMT2A, NPM1</italic></td>
</tr>
<tr>
<td></td>
<td></td>
<td>Phase 3 (NCT07211958)</td>
<td>AML</td>
<td><italic>NPM1</italic></td>
</tr>
<tr>
<td rowspan="5">Ziftomenib</td>
<td>Monotherapy</td>
<td>KO-MEN-001 Phase 1/2 (NCT04067336)</td>
<td>AML</td>
<td><italic>KMT2A, NPM1</italic></td>
</tr>
<tr>
<td></td>

<td>Phase 2 (NCT06930352)</td>
<td>AML (not eligible for standard therapy)</td>
<td><italic>KMT2A, NPM1</italic></td>
</tr>
<tr>

<td>Combination</td>
<td>KO-MEN-007 Phase 1 (NCT05735184)</td>
<td>AML</td>
<td><italic>KMT2A, NPM1</italic></td>
</tr>
<tr>

<td></td>
<td>Phase 1 (NCT06448013)</td>
<td>AML, MPAL</td>
<td><italic>KMT2A, NPM1, NUP98, UBTF-ITD</italic></td>
</tr>
<tr>

<td></td>
<td>Phase 1 (NCT06376162)</td>
<td>AML</td>
<td><italic>KMT2A, NPM1, NUP98</italic></td>
</tr>
<tr>
<td></td>
<td></td>
<td>Phase 1 (NCT06397027)</td>
<td>AML, MPAL</td>
<td><italic>KMT2A, NPM1, NUP98</italic></td>
</tr>
<tr>
<td></td>
<td></td>
<td>Phase 1 (NCT06769490)</td>
<td>AML, MPAL</td>
<td><italic>KMT2A, NPM1, NUP98</italic></td>
</tr>
<tr>
<td></td>
<td></td>
<td>Phase 1 (NCT06001788)</td>
<td>AML</td>
<td><italic>KMT2A, NPM1, FLT3</italic></td>
</tr>
<tr>
<td></td>
<td></td>
<td>Phase 3 (NCT07007312)</td>
<td>AML</td>
<td><italic>KMT2A, NPM1, FLT3</italic></td>
</tr>
<tr>
<td rowspan="2">BN104</td>
<td>Monotherapy</td>
<td>Phase 1/2 (NCT06052813)</td>
<td>AML, ALL</td>
<td><italic>KMT2A, NPM1</italic></td>
</tr>
<tr>

<td>Combination</td>
<td>Phase 1/2 (NCT06746519)</td>
<td>AML</td>
<td><italic>KMT2A, NPM1, NUP98</italic></td>
</tr>
<tr>
<td rowspan="2">Bleximenib (JNJ-75276617)</td>
<td>Monotherapy</td>
<td>Phase 1/2 (NCT04811560)</td>
<td>AML, ALL</td>
<td>Phase 1: <italic>KMT2A, NPM1, NUP98, NUP214</italic>; Phase 2: <italic>KMT2A, NPM1</italic></td>
</tr>
<tr>
<td>Combination</td>
<td>Phase 1 (NCT05453903)</td>
<td>AML</td>
<td><italic>KMT2A, NPM1, NUP98, NUP214</italic></td>
</tr>
<tr>
<td></td>
<td></td>
<td>Phase 3 (NCT06852222)</td>
<td>AML</td>
<td><italic>KMT2A, NPM1</italic></td>
</tr>
<tr>
<td>Icovamenib (BMF-219)</td>
<td>Monotherapy</td>
<td>COVALENT-101 Phase 1 (NCT05153330)</td>
<td>AML, ALL, DLBCL, MM, CLL/SLL</td>
<td><italic>KMT2A/MLL1, NPM1</italic></td>
</tr>
<tr>
<td>Enzomenib (DSP-5336)</td>
<td>Monotherapy &#x0026; Combination</td>
<td>Phase 1/2 (NCT04988555)</td>
<td>AML, ALL, MM, MDS</td>
<td><italic>MLL1, NPM1</italic></td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<fn id="table-1fn1" fn-type="other">
<p>Note: All up-to-date clinical trial information can be found on <ext-link ext-link-type="uri" xlink:href="http://clinicaltrials.gov">clinicaltrials.gov</ext-link>. Abbreviations: AML, acute myeloid leukemia; ALL, acute lymphoblastic leukemia; HSCT, hematopoietic stem cell transplantation; ALAL, acute leukemia of ambiguous lineage; MPAL, mixed phenotype acute leukemia; DLBCL, diffuse large B-cell lymphoma; MM, multiple myeloma; CLL, chronic lymphocytic leukemia; SLL, small lymphocytic lymphoma; MDS, myelodysplastic syndrome.</p>
</fn>
</table-wrap-foot>
</table-wrap><table-wrap id="table-2">
<label>Table 2</label>
<caption>
<title>Interim data from active menin inhibitor clinical trials</title>
</caption>
 
<table>
<colgroup>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/> </colgroup>
<thead>
<tr>
<th>Drug</th>
<th>Trial/NCT</th>
<th>Regimen</th>
<th>Patient characteristic</th>
<th>ORR</th>
<th>CR/CRh</th>
<th>Differentiation syndrome</th>
<th>QTc Prolongation</th>
<th>Grade &#x2265; 3 TEAE</th>
<th>Most common TEAE</th>
<th>DLT</th>
</tr>
</thead>
<tbody>
<tr>
<td>Revumenib<break/> [<xref ref-type="bibr" rid="ref-37">37</xref>,<xref ref-type="bibr" rid="ref-38">38</xref>]</td>
<td>AUGMENT-101 (NCT04065399)</td>
<td>Monotherapy</td>
<td>n &#x003D; 116 (<italic>KMT2A</italic>r &#x003D; 116)</td>
<td>64% (62/97)</td>
<td>23% (22/97)</td>
<td>26.7% (Grade 3 &#x003D; 51.6%, Grade 4 &#x003D; 3.2%)</td>
<td>29.3% (Grade 3 &#x003D; 44.1%)</td>
<td>Febrile neutropenia (39%), anemia (20%), platelet count decreased (16%), neutropenia (15%), differentiation syndrome (15%), sepsis (14%), QTc prolongation (13%)</td>
<td>Nausea (44.8%), febrile neutropenia (39.7%), vomiting (34.5%), diarrhea (30.2%), QTc prolongation (29.3%)</td>
<td>N/A</td>
</tr>
<tr>
<td></td>
<td></td>
<td></td>
<td>n &#x003D; 84 (<italic>NPM1</italic>m &#x003D; 84) [<xref ref-type="bibr" rid="ref-39">39</xref>]</td>
<td>46.9% (30/64)</td>
<td>23.4% (15/64)</td>
<td>19.0% (Grade 3 &#x003D; 10.7%, Grade 4 &#x003D; 2.4%)</td>
<td>42.9% (Grade 3 &#x003D; 20.2%, Grade 4 &#x003D; 2.4%)</td>
<td>Febrile neutropenia (33.3%), anemia (25%), QTc prolongation (22.6%), platelet count decreased (16.7%), sepsis (15.5%), differentiation syndrome (13.1%)</td>
<td>QTc prolongation (42.9%), vomiting (36.9%), febrile neutropenia (34.5%), hypokalemia (32.1%), differentiation syndrome (19.0%)</td>
<td>N/A</td>
</tr>
<tr>
<td></td>
<td></td>
<td></td>
<td>n &#x003D; 34 (<italic>NUP98</italic>r &#x003D; 5) [<xref ref-type="bibr" rid="ref-40">40</xref>]</td>
<td>N/A</td>
<td>20% (1/5)</td>
<td>2.9% (Grade 3 &#x003D; 2.9%)</td>
<td>15% (Grade 3 &#x003D; 2.9%)</td>
<td>Anemia (9%), neutrophil count decreased (9%), differentiation syndrome (2.9%), QTc prolongation (2.9%)</td>
<td>Nausea (18%), dysgeusia (15%), QTc prolongation (15%)</td>
<td>N/A</td>
</tr>
<tr>
<td></td>
<td>SAVE (NCT05360160)</td>
<td>Combination: Decitabine/<break/> Cedazuridine (ASTX727) &#x002B; Venetoclax</td>
<td>n &#x003D; 33 (<italic>KMT2A</italic>r &#x003D; 16, <italic>NPM1</italic>m &#x003D; 12, <italic>NUP98</italic>r &#x003D; 5) [<xref ref-type="bibr" rid="ref-38">38</xref>]</td>
<td>82% (<italic>KMT2A</italic>r &#x003D; 88%, <italic>NPM1</italic>m &#x003D; 67%, <italic>NUP98</italic>r &#x003D; 100%)</td>
<td>48% (<italic>KMT2A</italic>r &#x003D; 44%, <italic>NPM1</italic>m &#x003D; 50%, <italic>NUP98</italic>r &#x003D; 60%)</td>
<td>All grade &#x003D; 9%, Grade &#x2265; 3 &#x003D; 3%</td>
<td>All grade &#x003D; 64%, Grade &#x2265; 3 &#x003D; 9%</td>
<td>Febrile neutropenia (33%), lung infection (33%), sepsis (18%)</td>
<td>QTc prolongation (64%), elevated AST/ALT (58%), nausea (55%)</td>
<td>Thrombocytopenia</td>
</tr>
<tr>
<td></td>
<td>BEAT-AML (NCT03013998)</td>
<td>Combination: Venetoclax/Azacitidine</td>
<td>n &#x003D; 43 (<italic>KMT2A</italic>r &#x003D; 9, <italic>NPM1</italic>m &#x003D; 34) [<xref ref-type="bibr" rid="ref-41">41</xref>]</td>
<td>88.4% (38/43)</td>
<td>69.7% (30/43)</td>
<td>19% (Grade 3 &#x003D; 25%)</td>
<td>44% (Grade 3 &#x003D; 26%)</td>
<td>Febrile neutropenia (26%), acute kidney injury (19%), dyspnea 14%), QTc prolongation (12%), hypokalemia (12%), differentiation syndrome (5%)</td>
<td>Nausea (60%), constipation (53%), QTc prolongation (44%), hypokalemia (44%), differentiation syndrome (19%)</td>
<td>Thrombocytopenia</td>
</tr>
<tr>
<td>Ziftomenib</td>
<td>KOMET-001 (NCT04067336)</td>
<td>Phase 1 Monotherapy</td>
<td>n &#x003D; 83 (<italic>KMT2A</italic>r &#x003D; 39, <italic>NPM1</italic>m &#x003D; 28) [<xref ref-type="bibr" rid="ref-42">42</xref>]</td>
<td><italic>NPM1</italic>m &#x003D; 45%</td>
<td>25% (9/36)</td>
<td>22% (Grade &#x2265; 3 &#x003D; 67%)</td>
<td>None</td>
<td>Anemia (24%), febrile neutropenia (22%), pneumonia (19%), differentiation syndrome (15%), thrombocytopenia (13%), sepsis (12%)</td>
<td>Diarrhea (31%), nausea (29%), anemia (25%), febrile neutropenia (23%), hypokalemia (23%), differentiation syndrome (22%)</td>
<td>Differentiation syndrome and pneumonitis</td>
</tr>
<tr>
<td></td>
<td></td>
<td>Phase 2 Monotherapy</td>
<td>n &#x003D; 92 (<italic>NPM1</italic>m &#x003D; 92) [<xref ref-type="bibr" rid="ref-43">43</xref>]</td>
<td>33% (30/92)</td>
<td>22% (20/92)</td>
<td>25% (Grade 3 &#x003D; 61%)</td>
<td>All grade &#x003D; 3%, Grade 3 &#x003D; 2%</td>
<td>Febrile neutropenia (26%), anemia (20%), thrombocytopenia (20%), differentiation syndrome (15%)</td>
<td>Diarrhea (28%), febrile neutropenia (26%), differentiation syndrome (25%), nausea (25%)</td>
<td>N/A</td>
</tr>
<tr>
<td></td>
<td>KOMET-007 (NCT05735184)</td>
<td>Combination: Venetoclax/Azacitidine</td>
<td>n &#x003D; 34 (<italic>KMT2A</italic>r &#x003D; 20, <italic>NPM1</italic>m &#x003D; 14) [<xref ref-type="bibr" rid="ref-44">44</xref>]</td>
<td><italic>NPM1</italic>m (200mg) &#x003D; 100%, <italic>NPM1</italic>m (400mg) &#x003D; 67%, <italic>KMT2A</italic>r (200mg) &#x003D; 43%, <italic>KMT2A</italic>r (400mg) &#x003D; 33%</td>
<td>CRc &#x003D; 80% <italic>NPM1</italic>m (200mg), 50% <italic>NPM1</italic>m (400mg), 29% <italic>KMT2A</italic>r (200mg), 17% <italic>KMT2A</italic>r (400mg)</td>
<td>12% (Grade 3 &#x003D; 75%)</td>
<td>None</td>
<td>Febrile neutropenia (35%), platelet count decreased (35%), anemia (26%), decreased neutrophil count (24%), pneumonia (24%)</td>
<td>N/A</td>
<td>None</td>
</tr>
<tr>
<td></td>
<td></td>
<td>Combination: Cytarabine/Daunorubicin (7&#x002B;3)</td>
<td>n &#x003D; 34 (<italic>KMT2A</italic>r &#x003D; 19, <italic>NPM1</italic>m &#x003D; 15) [<xref ref-type="bibr" rid="ref-45">45</xref>]</td>
<td>N/A</td>
<td>CRc &#x003D; 100% <italic>NPM1</italic>m (200mg), 86% <italic>NPM1</italic>m (400mg), 90% <italic>KMT2A</italic>r (200mg), 63% <italic>KMT2A</italic>r (400mg)</td>
<td>None</td>
<td>None</td>
<td>Febrile neutropenia (56%), platelet count decreased (47%), decreased neutrophil count (38%), anemia (32%), decreased WBC count (29%)</td>
<td>N/A</td>
<td>None</td>
</tr>
<tr>
<td>BN104 [<xref ref-type="bibr" rid="ref-46">46</xref>]</td>
<td>NCT06052813</td>
<td>Monotherapy</td>
<td>n &#x003D; 20 (<italic>KMT2A</italic>r &#x003D; 12, <italic>NPM1</italic>m &#x003D; 5, <italic>NUP98</italic>r &#x003D; 2, <italic>KMT2A</italic>r &#x002B; <italic>NPM1</italic>m &#x003D; 1)</td>
<td>88.9% (8/9)</td>
<td>33.3% (3/9)</td>
<td>Grade 2 &#x003D; 10%</td>
<td>Grade 1 &#x003D; 10%</td>
<td>Febrile neutropenia (15%) and pneumonia (10%)</td>
<td>Vomiting (35%) and nausea (30%)</td>
<td>None</td>
</tr>
<tr>
<td>Bleximenib [<xref ref-type="bibr" rid="ref-47">47</xref>,<xref ref-type="bibr" rid="ref-48">48</xref>]</td>
<td>NCT04811560</td>
<td>Monotherapy</td>
<td>n &#x003D; 121 (<italic>KMT2A</italic>r &#x003D; 73, <italic>NPM1</italic>m &#x003D; 48) [<xref ref-type="bibr" rid="ref-47">47</xref>]</td>
<td>45mg BID &#x003D; 39% (5/13), 90/100mg BID &#x003D; 50% (10/20), 150mg BID &#x003D; 50% (10/20)</td>
<td>45mg BID &#x003D; 23% (3/13), 90/100mg BID &#x003D; 35% (7/20), 150mg BID &#x003D; 30% (6/20)</td>
<td>All grade &#x003D; 14%, Grade &#x2265; 3 &#x003D; 7%</td>
<td>0.8% (1/121)</td>
<td>Neutropenia (11%), thrombocytopenia (8%), differentiation syndrome (7%)</td>
<td>Differentiation syndrome (13%), neutropenia (12%), thrombocytopenia (11%), nausea (9%)</td>
<td>Neutropenia and QTc prolongation</td>
</tr>
<tr>
<td></td>
<td>NCT05453903</td>
<td>Combination: Cytarabine/Daunorubicin (7&#x002B;3)</td>
<td>n &#x003D; 22 (<italic>KMT2A</italic>r &#x003D; 11, <italic>NPM1</italic>m &#x003D; 11) [<xref ref-type="bibr" rid="ref-48">48</xref>]</td>
<td>93% (<italic>KMT2A</italic>r &#x003D; 83%, <italic>NPM1</italic>m &#x003D; 100%)</td>
<td>CR &#x003D; 79%, CR/CRh &#x003D; 86% (CR/CRh: <italic>KMT2A</italic>r &#x003D; 83%, <italic>NPM1</italic>m &#x003D; 88%)</td>
<td>None</td>
<td>None attributed to bleximenib</td>
<td>Febrile neutropenia (64%), thrombocytopenia (68%), anemia (41%), neutropenia (41%)</td>
<td>Diarrhea (77%), thrombocytopenia (68%), febrile neutropenia (64%)</td>
<td>None</td>
</tr>
<tr>
<td></td>
<td></td>
<td>Combination: Venetoclax/Azacitidine</td>
<td>n &#x003D; 120 (<italic>KMT2A</italic>r &#x003D; 52, <italic>NPM1</italic>m &#x003D; 68) [<xref ref-type="bibr" rid="ref-49">49</xref>]</td>
<td>50mg R/R &#x003D; 76%, 100mg R/R &#x003D; 79%, 50mg ND &#x003D; 77%, 100mg ND &#x003D; 92%</td>
<td>50mg R/R CRc &#x003D; 32%, 100mg R/R CRc &#x003D; 54%, 50mg ND CRc &#x003D; 62%, 100mg ND CRc &#x003D; 85%</td>
<td>4% (Grade 2&#x2013;3 &#x003D; 4, Grade 4 &#x003D; 1)</td>
<td>None</td>
<td>Thrombocytopenia (53%), anemia (48%), neutropenia (46%)</td>
<td>Nausea (60%), thrombocytopenia (55%), anemia (51%)</td>
<td>Differentiation syndrome and diverticulitis</td>
</tr>
<tr>
<td>BMF-219 [<xref ref-type="bibr" rid="ref-50">50</xref>]</td>
<td>NCT05153330</td>
<td>Monotherapy</td>
<td>n &#x003D; 26 (<italic>KMT2A</italic>r &#x003D; 6, <italic>NPM1</italic>m &#x003D; 4)</td>
<td>N/A</td>
<td>CR &#x003D; 20% (1/5), CRi &#x003D; 20% (1/5)</td>
<td>Grade &#x2265; 3 &#x003D; 13%</td>
<td>None</td>
<td>Differentiation syndrome (13%)</td>
<td>Vomiting (13%), differentiation syndrome (13%)</td>
<td>None</td>
</tr>
<tr>
<td>Enzomenib [<xref ref-type="bibr" rid="ref-51">51</xref>]</td>
<td>NCT04988555</td>
<td>Monotherapy</td>
<td>n &#x003D; 84 [<xref ref-type="bibr" rid="ref-51">51</xref>]</td>
<td>62.5% (25/40)</td>
<td>37.5% (15/40)</td>
<td>10.70%</td>
<td>Grade 2 &#x003D; 2.5%, Grade 1 &#x003D; 2.5%</td>
<td>N/A</td>
<td>Nausea (39.5%), vomiting (29.6%), febrile neutropenia (22.2%)</td>
<td>None</td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<fn id="table-2fn1" fn-type="other">
<p>Note: ORR, overall response rate; CR, complete remission; CRh, complete remission with partial hematologic recovery; CRi, complete remission with incomplete count recovery; QTc, corrected QT interval; TEAE, treatment emergent adverse event; DLT, dose limiting toxicity; AST, aspartate aminotransferase; ALT, alanine aminotransferase; R/R, relapsed or refractory; ND, newly diagnosed; N/A, not applicable.</p>
</fn>
</table-wrap-foot>
</table-wrap>
<sec id="s3_1">
<label>3.1</label>
<title>Revumenib</title>
<p>Revumenib is the first FDA-approved menin inhibitor for R/R AML with <italic>KMT2A</italic> translocations. Approval was granted on 15 November 2024, for ages 1 year and older, and indication for <italic>NPM1</italic>m AML was approved on 24 October 2025 [<xref ref-type="bibr" rid="ref-52">52</xref>]. AUGMENT-101 is a phase I/II clinical trial that studied the safety and efficacy of revumenib in patients with R/R <italic>KMT2A</italic>r AML and R/R <italic>NPM1</italic>m AML [<xref ref-type="bibr" rid="ref-39">39</xref>]. This study reported an updated complete remission (CR) and CR with partial hematologic recovery (CRh) rate of 23% and overall response rate (ORR) of 64% in the efficacy population of patients with <italic>KMT2A</italic>r AML. Additionally, MRD negative status was achieved in 58% of the evaluable patients in the CR &#x002B; CRh cohort and 34% of responders continued forward to receive an allogeneic hematopoietic stem cell transplantation (HSCT). Adverse events of grade 3 or higher (91%) included febrile neutropenia (39%), anemia (20%), thrombocytopenia (16%), differentiation syndrome (15%), neutropenia (15%), leukopenia (15%), sepsis (14%), and corrected QT interval (QTc) prolongation (13%) [<xref ref-type="bibr" rid="ref-37">37</xref>]. Dose adjustment for QTc prolongation and treatment with corticosteroids and hydroxyurea for differentiation syndrome was effective and resulted in no discontinuation of treatment with revumenib [<xref ref-type="bibr" rid="ref-53">53</xref>]. In the study arm for R/R <italic>NPM1</italic>m AML, the CR &#x002B; CRh rate was 23.4% and ORR was 46.9% with 16.7% of responders proceeding to allogeneic HSCT. Similar to the <italic>KMT2A</italic>r cohort, 91.7% of patients experienced grade 3 or higher adverse events such as febrile neutropenia (33.3%), anemia (25.0%), QTc prolongation (22.6%), sepsis (15.5%), and differentiation syndrome (13.1%). Of note, there is a higher incidence of QTc prolongation in the R/R <italic>NPM1</italic>m AML study arm of AUGMENT-101. Differentiation syndrome and QTc prolongation resulted in discontinuation in 2 patients [<xref ref-type="bibr" rid="ref-39">39</xref>]. In short, revumenib offers clinical benefit for patients with R/R <italic>KMT2A</italic>r and <italic>NPM1</italic>m AML, enabling those in remission to pursue allogeneic HSCT, while displaying a manageable and predictable safety profile (<xref ref-type="table" rid="table-3">Tables 3</xref> and <xref ref-type="table" rid="table-4">4</xref>).</p>
<table-wrap id="table-3">
<label>Table 3</label>
<caption>
<title>Summary of Revumenib Phase 2 outcomes in <italic>KMT2A</italic>r and <italic>NPM1</italic>m AML</title>
</caption>
<table>
<colgroup>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/> </colgroup>
<thead>
<tr>
<th>Patient subset</th>
<th>ORR (%)</th>
<th>CRc (%)</th>
<th>Median OS (Months)</th>
<th>MRD-Negative Rate (%)</th>
</tr>
</thead>
<tbody>
<tr>
<td><italic>KMT2A</italic>r (n &#x003D; 57)</td>
<td>63%</td>
<td>39%</td>
<td>8.0</td>
<td>82% (CRc subgroup)</td>
</tr>
<tr>
<td><italic>NPM1</italic>m (n &#x003D; 64)</td>
<td>&#x007E;50%</td>
<td>36%</td>
<td>23.3 (CR &#x002B; CRh)</td>
<td>Not reported</td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<fn id="table-3fn1" fn-type="other">
<p>Note: ORR, overall response rate; CR, complete remission; CRc, composite complete remission; CRh, complete remission with partial hematologic recovery; OS, overall survival; MRD, measurable residual disease.</p>
</fn>
</table-wrap-foot>
</table-wrap><table-wrap id="table-4">
<label>Table 4</label>
<caption>
<title>Summary of Revumenib safety profile (Phase 2)</title>
</caption>
<table>
<colgroup>
<col align="center"/>
<col align="center"/>
<col align="center"/> </colgroup>
<thead>
<tr>
<th>Adverse event</th>
<th>Incidence (Any grade)</th>
<th>Grade &#x2265;3 Incidence</th>
</tr>
</thead>
<tbody>
<tr>
<td>Differentiation syndrome</td>
<td>19%</td>
<td>10.7% (Grade 3), 2.4% (Grade 4)</td>
</tr>
<tr>
<td>QTc Prolongation</td>
<td>42.9%</td>
<td>20.2% (Grade 3), 2.4% (Grade 4)</td>
</tr>
<tr>
<td>Cytopenias (Combined)</td>
<td>&#x2265;25%</td>
<td>&#x2265;10%</td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<fn id="table-4fn1" fn-type="other">
<p>Note: QTc, corrected QT interval.</p>
</fn>
</table-wrap-foot>
</table-wrap>
<p>In addition to patients with <italic>KMT2A</italic>r and <italic>NPM1</italic>m AML, the AUGMENT-101 trial enrolled 34 patients without either mutation [<xref ref-type="bibr" rid="ref-40">40</xref>]. Among these patients, 5 had R/R NUP98r AML. Upon revumenib treatment, 60% achieved morphological remission. MRD-negative status was attained in 40% of patients and 20% continued to undergo hematopoietic stem cell transplant. Safety data for the cohort of 34 patients demonstrated 24% of patients experiencing grade 3 or higher adverse events, including anemia (9%), neutropenia (9%), differentiation syndrome (2.9%), and QTc prolongation (2.9%). Overall, the safety profile and efficacy of treatment with revumenib in <italic>NUP98</italic>r AML patients is promising. Future studies are currently underway to evaluate the efficacy of revumenib in treating AML associated with HOX upregulation, pointing towards a promising expansion of the therapeutic application of menin inhibitors [<xref ref-type="bibr" rid="ref-40">40</xref>].</p>
<p>Revumenib is also proven efficacious in combination therapy settings. The SAVE clinical trial is currently exploring the utilization of revumenib in combination with venetoclax and hypomethylating agent ASTX727 (decitabine/cedazuridine) in R/R KMT2Ar, NPM1m, and NUP98r AML. The study reported a CR &#x002B; CRh rate of 48% (KMT2Ar: 44%, NPM1m: 50%, NUP98r: 60%) and ORR of 82% (KMT2Ar: 88%, NPM1m: 67%, NUP98r: 100%). QTc prolongation was reported in 64% of patients (Grade 3: 6%, Grade 4: 3%) and differentiation syndrome occurred in 9% (Grade 3: 3%), with no notable differences in safety. It is important to mention that MRD negativity was 88% with 39% of patients proceeding with allogeneic HSCT [<xref ref-type="bibr" rid="ref-38">38</xref>]. The high response rates and high rate of MRD negativity reinforce the potential of revumenib to be highly effective in combination therapy for R/R AML.</p>
<p>Revumenib is also under investigation in the BEAT AML trial in combination with azacitidine and venetoclax (ven/aza) for newly diagnosed (ND) KMT2Ar or NPM1m AML patients over 60 years of age. Interim analysis demonstrated the ORR was 88.4% (NPM1m: 85.3%, KMT2Ar: 100%), CR &#x002B; CRh &#x002B; complete remission with incomplete count recovery (CRi) rate was 81.4% (NPM1m: 79.4%, KMT2Ar: 88.9%), and CR rate was 67.4% (NPM1m: 64.7%, KMT2Ar: 77.8%) for the 43 patients treated in this study. It is important to note that no patients had refractory disease and all 37 patients with MRD assessments had MRD negativity after treatment. Adverse events were comparable to other studies with revumenib, including nausea (60%), QTc prolongation (44%), hypokalemia (44%), and differentiation syndrome (19%). Neither QTc prolongation nor differentiation syndrome resulted in discontinuation of revumenib in this study [<xref ref-type="bibr" rid="ref-41">41</xref>]. Overall, the BEAT AML study demonstrates that the combination therapy of revumenib, azacitidine, and venetoclax is a safe and suitable option for older individuals with newly diagnosed <italic>KMT2A</italic>r or <italic>NPM1</italic>m AML, as it yields high response rates, including MRD negativity. The efficacy demonstrated in this study warrants further investigation of the safety and efficacy of revumenib with 7&#x002B;3 intensive chemotherapy in patients with newly diagnosed <italic>KMT2A</italic>r, <italic>NPM1</italic>m, or <italic>NUP98</italic>r AML patients (NCT06226571) and comparison of revumenib combined with azacitidine and venetoclax against a control group receiving placebo with aza/ven (NCT06652438) (EHA Library, Abstract PB2576).</p>
<p>Revumenib has demonstrated efficacy across multiple settings in both newly diagnosed and relapsed/refractory AML, both as monotherapy and in combination. While its efficacy is clear, an increased incidence of QTc prolongation requires careful monitoring by clinicians. The role of revumenib in the therapeutic landscape will depend on how the risk-benefit profile compares with the other emerging menin inhibitors and the current standard of care treatments.</p>
</sec>
<sec id="s3_2">
<label>3.2</label>
<title>Ziftomenib</title>
<p>Ziftomenib is being studied as both monotherapy in AML and in various combination therapy approaches. The KOMET-001 study, a phase 1 trial of ziftomenib as a monotherapy for R/R <italic>KMT2A</italic>r and <italic>NPM1</italic>m AML, reported an overall CR &#x002B; CRh rate of 25%. Patients with <italic>NPM1</italic> mutations had a CR rate of 35%, ORR of 45%, and an MRD negativity rate of 67% in the six patients assessed. Adverse events of grade 3 or higher in this study included anemia (24%), febrile neutropenia (22%), pneumonia (19%), differentiation syndrome (15%), thrombocytopenia (13%), and sepsis (12%). A notable observation from the KOMET-001 study was that <italic>KMT2A</italic>r AML patients had higher occurrences and severity of differentiation syndrome compared to <italic>NPM1</italic>m AML patients, leading to the discontinuation of <italic>KMT2A</italic>r AML patient enrollment [<xref ref-type="bibr" rid="ref-42">42</xref>]. Phase 2 of KOMET-001 focused on patients with R/R NPM1m AML who received ziftomenib 600 mg daily. Patients achieved a CR &#x002B; CRh rate of 22%, ORR of 33%, and MRD negativity rate of 61%. The safety profile was similar to Phase 1 with grade 3 adverse events including febrile neutropenia (26%), anemia (20%), thrombocytopenia (20%), differentiation syndrome (15%) with 2 patients discontinuing treatment, pneumonia (14%), sepsis (14%), hypokalemia (13%), and QTc prolongation (2%) [<xref ref-type="bibr" rid="ref-43">43</xref>]. The KOMET-007 study focuses on the use of ziftomenib in combination with standard chemotherapy. Two arms of this ongoing study include ziftomenib with venetoclax and azacitidine (ven/aza) in R/R <italic>KMT2A</italic>r and <italic>NPM1</italic>m AML and ziftomenib with cytarabine and daunorubicin (7&#x002B;3) in newly diagnosed <italic>KMT2A</italic>r and <italic>NPM1</italic>m AML. The interim data for ziftomenib combined with venetoclax &#x002B; azacitidine at a dose of 200 mg reported a composite complete remission (CRc) rate of 80% in <italic>NPM1</italic>m AML and 29% in <italic>KMT2A</italic>r, while a dose of 400 mg resulted in a CRc rate of 50% in <italic>NPM1</italic>m AML and 17% in <italic>KMT2A</italic>r AML. Differentiation syndrome was present in 12% of the treated patients, with most cases occurring in patients with <italic>KMT2A</italic>r AML. Differentiation syndrome was manageable, and enrollment of <italic>KMT2A</italic>r AML patients is ongoing [<xref ref-type="bibr" rid="ref-44">44</xref>]. The ziftomenib with 7&#x002B;3 arm reports a CRc rate of 100% at 200 mg and 86% at 400 mg in <italic>NPM1</italic>m AML patients and a CRc rate of 90% at 200 mg and 63% at 400 mg in <italic>KMT2A</italic>r AML patients [<xref ref-type="bibr" rid="ref-45">45</xref>]. The updated results of ziftomenib at 600 mg with 7&#x002B;3 reports a CRc rate of 94% in <italic>NPM1</italic>m patients and 83% in <italic>KMT2A</italic>r patients [<xref ref-type="bibr" rid="ref-45">45</xref>]. Ziftomenib with 7&#x002B;3 is generally well tolerated with no reported cases of differentiation syndrome and QTc prolongation. Ziftomenib in combination with venetoclax &#x002B; azacitidine or 7&#x002B;3 presented with similar adverse events as when ziftomenib was used as a monotherapy in KOMET-001 [<xref ref-type="bibr" rid="ref-44">44</xref>,<xref ref-type="bibr" rid="ref-54">54</xref>]. Interestingly, compared to revumenib, there were minimal cases of QTc prolongation observed with ziftomenib. With the observed cases in patients taking medications with known side effects of QTc prolongation. The KOMET-017 study is currently underway to study the use of ziftomenib with ven/aza or 7&#x002B;3 in newly diagnosed <italic>NPM1</italic>m and <italic>KMT2A</italic>r AML [<xref ref-type="bibr" rid="ref-43">43</xref>]. The current data on ziftomenib demonstrates promising outcomes in NPM1m and KMT2Ar AML with a familiar and controllable safety profile. The FDA recently approved ziftomenib as monotherapy for relapsed/refractory AML with NPM1 mutation on 13 November 2024 [<xref ref-type="bibr" rid="ref-55">55</xref>]. For the KMT2A indication, it is mostly in combination.</p>
</sec>
<sec id="s3_3">
<label>3.3</label>
<title>BN104</title>
<p>BN104 is currently being evaluated as a menin inhibitor in newly diagnosed (ND) and R/R AML [<xref ref-type="bibr" rid="ref-46">46</xref>]. The interim data from the Phase 1 study of BN104 as a monotherapy in R/R <italic>KMT2A</italic>r and <italic>NPM1</italic>m AML reports CR &#x002B; CRh rates of 33.3% and ORR of 88.9% with 22.2% of patients progressing to transplant. Adverse events, including febrile neutropenia (15%), pneumonia (10%), grade 1 QTc prolongation (10%), and grade 2 differentiation syndrome (10%) were comparable to other menin inhibitors [<xref ref-type="bibr" rid="ref-46">46</xref>]. BN104 shows promise, but its clinical efficacy is yet to be determined until larger-scale studies are conducted, as only 20 patients have been treated so far.</p>
</sec>
<sec id="s3_4">
<label>3.4</label>
<title>Bleximenib</title>
<p>Bleximenib is under investigation in the setting as monotherapy for R/R disease, in combination with standard 7&#x002B;3 intensive chemotherapy for ND disease, and in combination with ven/aza for R/R or ND AML. When bleximenib is used as a monotherapy for R/R <italic>KMT2A</italic>r or <italic>NPM1</italic>m AML, the CR &#x002B; CRh rates and ORR, respectively, were 35% and 50% at 90/100 mg BID, 30% and 50% at 150 mg BID, and 23% and 39% at 45 mg BID. Notable safety data include only 1 patient (0.8%) with QTC prolongation and 14% of patients experiencing differentiation syndrome, with 7% at grade 3 or higher and 2 fatal events. The treatment-related adverse effects were consistent with those of other menin inhibitors, though the 150 mg BID dose was associated with a higher grade of thrombocytopenia and neutropenia [<xref ref-type="bibr" rid="ref-49">49</xref>]. Treatment with bleximenib with 7&#x002B;3 chemotherapy in ND AML appears promising as ORR was 93% (<italic>KMT2A</italic>r: 83%, <italic>NPM1</italic>m: 100%) and CR &#x002B; CRh rate was 86% (<italic>KMT2A</italic>r: 83%, <italic>NPM1</italic>m: 88%). Grade 3 or higher adverse events occurred in 95% of patients with febrile neutropenia (64%), thrombocytopenia (68%), anemia (41%), neutropenia (41%), and leukopenia (41%), remaining common. Interestingly, there were no reported cases of differentiation syndrome and only two episodes of grade 1 QTc prolongation observed, which were not due to bleximenib [<xref ref-type="bibr" rid="ref-48">48</xref>]. For patients with R/R or ND AML who are unfit for intensive chemotherapy, bleximenib was used with venetoclax and azacitidine. The ORR was 76% at 50 mg and 79% at 100 mg in the R/R subset and 77% at 50 mg and 92% at 100 mg bleximenib in the ND subset. The composite complete response rate (cCR) reported in the R/R group was 32% at 50 mg and 54% at 100 mg and the ND group was 62% at 50 mg and 85% at 100 mg. Differentiation syndrome occurred in 4% of patients, with the majority grade 2&#x2013;3 and no events of QTc prolongation were observed [<xref ref-type="bibr" rid="ref-49">49</xref>]. Bleximenib represents a compelling therapeutic strategy for R/R AML or as an adjunct to standard chemotherapy in ND AML, especially in patients at risk for QTc prolongation due to existing medications or inherent cardiac risk factors.</p>
</sec>
<sec id="s3_5">
<label>3.5</label>
<title>Icovamenib (BMF-219)</title>
<p>Icovamenib is unique as the only covalent menin inhibitor that is being studied as monotherapy for R/R AML and also as a treatment for solid tumors and diabetes. Cohort 1 of the COVALENT-101 study is focused on the use of icovamenib in R/R AML and ALL. Five patients in the study were efficacy evaluable, with 1 patient achieving CR and 1 patient achieving CRi. The only grade 3 or higher adverse event was differentiation syndrome (13%), with no QTc prolongation in the 23 patients of the safety population [<xref ref-type="bibr" rid="ref-50">50</xref>]. Ongoing patient enrollment is necessary in reporting safety and efficacy data, as icovamenib is in the preliminary stages of clinical investigation.</p>
</sec>
<sec id="s3_6">
<label>3.6</label>
<title>Enzomenib</title>
<p>Enzomenib is presently being assessed as a singular therapeutic agent in the treatment of R/R AML. The recent analysis of the phase 1/2 study demonstrated CR &#x002B; CRh rate of 37.5% and ORR of 62.5% in patients with R/R <italic>KMT2A</italic>r and <italic>NPM1</italic>m AML. Safety profile on enzomenib did not significantly differ from the other menin inhibitors, with reported cases of differentiation syndrome at 10.7% and QTc prolongation at 5% within the study population [<xref ref-type="bibr" rid="ref-51">51</xref>]. Enzomenib has demonstrated encouraging clinical activity in R/R AML, however it would be interesting to explore its application in ND <italic>KMT2A</italic>r or <italic>NPM1</italic>m AML.</p>
</sec>
</sec>
<sec id="s4">
<label>4</label>
<title>Challenges and Potential Targeted Therapies</title>
<sec id="s4_1">
<label>4.1</label>
<title>Acquired Resistance to Menin Inhibitors</title>
<p>Though past clinical trials demonstrate the promising activity of menin inhibitors in <italic>KMT2A</italic>r and <italic>NPM1</italic>m AML, the development of acquired resistance poses a significant challenge in their use as a single agent.</p>
<sec id="s4_1_1">
<label>4.1.1</label>
<title>MEN1 Mutations Confer Resistance to Menin Inhibitors</title>
<p>Molecular analyses from the AUGMENT-101 phase 1 study have shown that somatic mutations in <italic>MEN1</italic> can disrupt menin-inhibitor binding. Of note, patients developed resistance to revumenib as early as 2 cycles of treatment [<xref ref-type="bibr" rid="ref-56">56</xref>]. Common <italic>MEN1</italic> mutations that conferred resistance in both patients and xenografted models involved residues M327, G331, T349, and S160 [<xref ref-type="bibr" rid="ref-56">56</xref>,<xref ref-type="bibr" rid="ref-57">57</xref>]. Due to their proximity to the menin-inhibitor binding site, alterations to these residues introduced steric hindrance that diminished the binding affinity of menin inhibitors [<xref ref-type="bibr" rid="ref-56">56</xref>]. Somatic mutations in <italic>MEN1</italic> comprised approximately 40% of menin inhibitor-resistant AML cases in the study, thus other non-genetic pathways that contribute to menin inhibitor resistance have been explored.</p>
</sec>
<sec id="s4_1_2">
<label>4.1.2</label>
<title>Epigenetic Modifications at Noncanonical Menin Targets Contribute to Menin Inhibitor Escape</title>
<p>In a recent study by Zhou et al., an epigenetic regulator within the Polycomb group protein family, Polycomb repressive complex 1.1 (PRC 1.1), was found to be involved in modulating resistance to menin inhibitors in <italic>KMT2A</italic>r leukemogenic cells [<xref ref-type="bibr" rid="ref-58">58</xref>]. Normally, PRC1.1 represses target genes by monoubiquinating histone H2A at lysine 119 (H2AK119ub) [<xref ref-type="bibr" rid="ref-59">59</xref>,<xref ref-type="bibr" rid="ref-60">60</xref>]. The repressive H2AK119ub signals were proposed to work with activating menin signals to regulate expression of various genes, such as <italic>MYC</italic> and <italic>RUNX3</italic>. Loss of PRC1.1 in <italic>KMT2A</italic>r AML models was found to epigenetically sustain or restore chromatin accessibility at menin&#x2019;s noncanonical target loci, including <italic>MYC</italic>, thus enabling their continued transcription even under menin inhibition. The resulting overexpression of <italic>MYC</italic> is associated with reduced myeloid or monocytic differentiation, conferring resistance to menin inhibitors through a menin-independent mechanism [<xref ref-type="bibr" rid="ref-58">58</xref>]. Combining MYC inhibition with menin inhibitors could offer a novel and potentially synergistic approach that also helps reduce resistance to menin-targeted therapy.</p>
</sec>
<sec id="s4_1_3">
<label>4.1.3</label>
<title>Co-Mutations May Reduce the Overall Efficacy of Menin Inhibitors</title>
<p>Mutations at other gene loci often co-occur with <italic>KMT2A</italic> rearrangements in AML. Genes involved in cellular signaling, particularly <italic>NRAS</italic>, <italic>KRAS</italic>, and <italic>FLT3</italic>-TKD were most frequently detected in patients with <italic>KMT2A</italic>r AML, followed by the protooncogene <italic>TP53</italic> and chromatin-modifying genes, tet methylcytosine dioxygenase 2 (<italic>TET2</italic>) and DNA methyltransferase 3 alpha (<italic>DNMT3A</italic>) [<xref ref-type="bibr" rid="ref-8">8</xref>,<xref ref-type="bibr" rid="ref-61">61</xref>,<xref ref-type="bibr" rid="ref-62">62</xref>]. These co-mutations have been linked to worse prognosis with lower median OS and response rates to conventional therapies in adult AML patients with <italic>KMT2A</italic>r. Pediatric populations share some of the co-mutations that occur in adults, particularly the RAS pathway genes, but also present with a rather high incidence of SET domain containing 2, histone lysine methyltransferase (<italic>SETD2</italic>) mutations [<xref ref-type="bibr" rid="ref-63">63</xref>,<xref ref-type="bibr" rid="ref-64">64</xref>]. Both were correlated with worse 5-year OS. Though many of these mutations have not yet been shown to be direct drivers of menin inhibitor resistance, they may increase the risk of therapeutic failure and reduce the overall efficacy of menin inhibitors. Thus, combination therapies and early intervention with menin inhibitors may be warranted to prevent adverse outcomes from co-mutations.</p>
</sec>
</sec>
<sec id="s4_2">
<label>4.2</label>
<title>Therapies to Overcome Acquired Resistance to Menin Inhibitors</title>
<p>Combination therapies incorporating BCL2, FLT3, IDH1/IDH2, or enhancer of zeste homolog 2 (EZH2) inhibitors may enhance the activity of menin inhibitors and provide complementary mechanisms to overcome resistance. The BCL2 inhibitor, venetoclax, and FLT3 inhibitor, gilteritinib, are currently being tested in clinical trials, showing improved ORR and CR rates than a single agent alone (<xref ref-type="table" rid="table-2">Table 2</xref>).</p>

<sec id="s4_2_1">
<label>4.2.1</label>
<title>BCL2 Inhibitors</title>
<p>Aberrant expression of <italic>HOX</italic>/<italic>MEIS1</italic> genes in AML leads to upregulation of their downstream targets, such as the anti-apoptotic gene, <italic>BCL2</italic>. Preclinical studies have shown that menin inhibition can sensitize <italic>KMT2A</italic>r AML cells to venetoclax by downregulating expression of <italic>HOX/MEIS1</italic>-driven transcriptional programs [<xref ref-type="bibr" rid="ref-65">65</xref>]. Simultaneously, inhibition of the residual BCL2 by venetoclax lowers the cells&#x2019; apoptotic threshold and exerts a cytotoxic effect. This synergistic activity has the potential to overcome menin inhibitor resistance driven by epigenetic escape, as seen in PRC1.1 loss. Zhou et al. demonstrated that PRC1.1-depleted AML cells exhibit diminished monocytic differentiation gene signatures and adopt a primitive state, which was associated with increased venetoclax sensitivity [<xref ref-type="bibr" rid="ref-58">58</xref>]. Mechanistically, this is consistent with the normal upregulation of BCL2 in early myeloid progenitors and its downregulation during monocytic differentiation, indicating that the primitive state of PRC1.1-deficient cells may underlie their sensitivity to BCL2 inhibition [<xref ref-type="bibr" rid="ref-65">65</xref>,<xref ref-type="bibr" rid="ref-66">66</xref>]. Thus, the combination of BCL2 and menin inhibitors may not only enhance each other&#x2019;s antileukemic activities but also overcome the possibility of menin inhibitor resistance.</p>
</sec>
<sec id="s4_2_2">
<label>4.2.2</label>
<title>FLT3 Inhibitors</title>
<p>In addition to <italic>BCL2</italic>, the receptor tyrosine kinase (RTK) gene, <italic>FLT3</italic>, is an upregulated downstream target of the <italic>HOX/MEIS1</italic> transcriptional program. Menin inhibitors can downregulate <italic>FLT3</italic> expression, but in <italic>FLT3</italic>-mutated AML, the RTK is constitutively activated, leading to activation of pro-leukemogenic signaling pathways, Janus kinase/signal transducer and activator of transcription (JAK/STAT), Ras-mitogen-activated protein kinase (RAS/MAPK), and phosphatidylinositol 3-kinase/protein kinase B/mammalian target of rapamycin (PI3K/AKT/mTOR) [<xref ref-type="bibr" rid="ref-67">67</xref>&#x2013;<xref ref-type="bibr" rid="ref-69">69</xref>]. Gilteritinib is a type I FLT3-inhibitor that operates by blocking the receptor&#x2019;s ATP binding site and preventing its autophosphorylation [<xref ref-type="bibr" rid="ref-68">68</xref>,<xref ref-type="bibr" rid="ref-70">70</xref>]. While menin inhibitors reduce <italic>FLT3</italic> expression at the transcriptional level, FLT3 inhibitors further drive down residual kinase activity. This synergistic combination is especially useful in <italic>KMT2A</italic>r or <italic>NPM1</italic>m AML patients with FLT3 co-mutations. Currently, gliteritinib and revumenib are in phase 1 of clinical trials for patients with R/R <italic>FLT3</italic>-mutated AML with <italic>KMT2A</italic>r or <italic>NPM1</italic>m (<xref ref-type="table" rid="table-1">Table 1</xref>).</p>

</sec>
<sec id="s4_2_3">
<label>4.2.3</label>
<title>IDH1/IDH2 Inhibitors</title>
<p><italic>IDH1</italic>/<italic>IDH2</italic> mutations occur less commonly with <italic>KMT2A</italic>r AML but are associated with about 25% of <italic>NPM1</italic>m AML cases [<xref ref-type="bibr" rid="ref-71">71</xref>]. Though IDH1/IDH2 inhibitors are not yet in clinical trials with menin inhibitors, preclinical studies suggest enhanced therapeutic use when combined. Mutated IDH1/IDH2 enzymes convert alpha-ketoglutarate to D-2-hydroxyglutarate, which inhibits activity of DNA and histone methylases important for epigenetic regulation of cellular differentiation [<xref ref-type="bibr" rid="ref-72">72</xref>]. Combined use of IDH1/IDH2 and menin inhibitors further promotes differentiation of leukemic cells at the epigenetic and genetic levels, respectively and has shown a more significant reduction of <italic>HOX</italic>/<italic>MEIS1</italic> expression than seen with single agents [<xref ref-type="bibr" rid="ref-71">71</xref>].</p>
</sec>
<sec id="s4_2_4">
<label>4.2.4</label>
<title>EZH2 Inhibitors</title>
<p>Recent findings have demonstrated that EZH2 inhibition synergizes with menin inhibition [<xref ref-type="bibr" rid="ref-73">73</xref>]. When menin is inhibited, KMT2A/B is redistributed to bivalent promoters, increasing H3K4me3 and displacing PRC2, thereby initiating transcriptional de-repression. Concurrent inhibition of EZH2, which is the catalytic subunit of PRC2, prevents re-methylation of H3K27, amplifying the de-repression and promoting activation of silenced gene programs, including MHC-1 antigen presentation pathways. Preclinical models have shown that this combination leads to enhanced immune recognition and cytotoxic T-cell-mediated tumor clearance. The rationale for combination epigenetic therapy using menin and EZH2 inhibitors to overcome resistance and restore differentiation and immune responsiveness in AML remains an area of study.</p>
</sec>
<sec id="s4_2_5">
<label>4.2.5</label>
<title>Other Menin Inhibitors</title>
<p>Newer menin inhibitors are currently under development that aim to reduce adverse outcomes and combat acquired resistance that were seen in revumenib clinical trials. In the KOMET-001 phase 1 study of ziftomenib, 1 of 29 patients (&#x007E;3.4%) developed a resistance mutation compared to 12 of 31 patients (&#x007E;39%) in the AUGMENT-101 trial of revumenib, though this may be due to different sensitivities of their assays. However, further <italic>in vitro</italic> studies have shown that ziftomenib was able to maintain its activity against G331 and T349 mutated menin [<xref ref-type="bibr" rid="ref-42">42</xref>]. In addition, a second-generation menin inhibitor, BTC-86, was described to overcome the steric clash introduced by all <italic>MEN1</italic> acquired mutations by adopting a unique binding configuration, though studies are still underway [<xref ref-type="bibr" rid="ref-74">74</xref>].</p>
</sec>
</sec>
</sec>
<sec id="s5">
<label>5</label>
<title>Biomarkers for Monitoring Response and Resistance in Menin Inhibitor Therapy</title>
<sec id="s5_1">
<label>5.1</label>
<title>Biomarkers to Track Clones and Response to Disease</title>
<p>Identifying and monitoring molecular biomarkers are essential to optimize the therapeutic use of menin inhibitors in AML, particularly in genetically defined subgroups such as <italic>KMT2A</italic>r and <italic>NPM1</italic>m AML. One of the most promising biomarkers of treatment response is the expression of <italic>HOX</italic> (A and/or B) genes and their transcriptional cofactor <italic>MEIS1</italic>, both aberrantly upregulated in these disease subsets. These genes are directly regulated by menin and are consistently downregulated in response to effective menin inhibition, providing a dynamic measure of therapeutic efficacy. Their expression levels can be tracked using RNA sequencing (RNA-Seq), which allows real-time assessment of transcriptional responses during therapy [<xref ref-type="bibr" rid="ref-35">35</xref>,<xref ref-type="bibr" rid="ref-75">75</xref>].</p>
<p>A critical biomarker of response and resistance is the emergence of <italic>MEN1</italic> gene mutations. These mutations can be acquired under therapeutic pressure and have been shown to mediate resistance to menin inhibitors by altering the drug-binding site or associated chromatin remodeling functions. <italic>MEN1</italic> mutations often precede morphologic or clinical relapse, making early detection through next-generation sequencing (NGS) essential to adjust treatment strategies accordingly [<xref ref-type="bibr" rid="ref-76">76</xref>,<xref ref-type="bibr" rid="ref-77">77</xref>]. In addition to <italic>MEN1</italic> alterations, the evolution of other AML-associated mutations may contribute to therapeutic resistance, highlighting the importance of comprehensive genomic surveillance over time [<xref ref-type="bibr" rid="ref-75">75</xref>].</p>
</sec>
<sec id="s5_2">
<label>5.2</label>
<title>Key Laboratory Methods for Biomarker Assessment (RNA-Seq, FISH, ddPCR, DNA Sequencing)</title>
<p>A multipronged diagnostic approach is necessary for effective monitoring of menin inhibitor therapy (<xref ref-type="table" rid="table-5">Table 5</xref>).</p>
<table-wrap id="table-5">
<label>Table 5</label>
<caption>
<title>Molecular and functional biomarkers in menin inhibitor therapy</title>
</caption>
<table>
<colgroup>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/> </colgroup>
<thead>
<tr>
<th>Biomarker</th>
<th>Method</th>
<th>Clinical/Translational application</th>
<th>Validation status</th>
</tr>
</thead>
<tbody>
<tr>
<td>HOXA Cluster (HOXA9, HOXA10)</td>
<td>RNA-seq, qPCR</td>
<td>Dynamic marker of response, downregulation correlates with differentiation and clinical response</td>
<td>Validated&#x2014;pharmacodynamic response marker in AUGMENT-101</td>
</tr>
<tr>
<td>HOXB Cluster</td>
<td>RNA-seq</td>
<td>Reflects menin-KMT2A transcriptional dependency and decreases with effective inhibition</td>
<td>Investigational</td>
</tr>
<tr>
<td>MEIS1</td>
<td>RNA-seq</td>
<td>Surrogate indicator of HOX pathway suppression and early molecular response</td>
<td>Validated</td>
</tr>
<tr>
<td>MEN1 (M327, G331, T349, S160)</td>
<td>PCR, NGS, ddPCR</td>
<td>Predicts and monitors on-therapy resistance; emerges prior to morphologic relapse</td>
<td>Validated</td>
</tr>
<tr>
<td>PRC1.1 complex (BMI1, PCGF1, RING1A/B)</td>
<td>ChIP-seq, ATAC-seq (research)</td>
<td>Loss indicates menin-independent chromatin accessibility and <italic>MYC</italic>-mediated resistance</td>
<td>Preclinical</td>
</tr>
<tr>
<td>MYC</td>
<td>RNA-seq</td>
<td>Overexpression after menin inhibition signals epigenetic escape; rationale for MYC co-targeting</td>
<td>Investigational</td>
</tr>
<tr>
<td><italic>KMT2A</italic> rearrangement (<italic>KMT2A</italic>r)</td>
<td>FISH, RT-PCR, NGS</td>
<td>Diagnostic; identifies canonical menin-dependent AML; monitors persistence post-therapy</td>
<td><italic>Validated</italic></td>
</tr>
<tr>
<td><italic>NPM1</italic> mutation</td>
<td>PCR, NGS, ddPCR</td>
<td>Diagnostic; tracks MRD; predicts response to menin inhibition</td>
<td><italic>Validated</italic></td>
</tr>
<tr>
<td><italic>NUP98</italic> rearrangement</td>
<td>FISH, RNA-seq</td>
<td>Expanding indication; predicts potential menin-sensitive subset</td>
<td><italic>Emerging evidence</italic></td>
</tr>
<tr>
<td><italic>TP53</italic> mutation</td>
<td>NGS</td>
<td>Associated with attenuated venetoclax synergy and possibly reduced menin inhibitor efficacy</td>
<td><italic>Exploratory</italic></td>
</tr>
<tr>
<td><italic>RAS</italic> pathway mutations (<italic>NRAS</italic>, <italic>KRAS</italic>, <italic>FLT3</italic>-TKD)</td>
<td>NGS</td>
<td>May drive primary resistance or relapse through alternative signaling</td>
<td><italic>Investigational</italic></td>
</tr>
<tr>
<td><italic>XPO1</italic>-mediated <italic>NPM1</italic> localization</td>
<td>Immunofluorescence, subcellular fractionation</td>
<td>Correlates with sustained HOX/MEIS activation and menin dependence</td>
<td><italic>Preclinical</italic></td>
</tr>
<tr>
<td>MRD transcript detection (<italic>KMT2A</italic>-fusion, <italic>NPM1</italic>, <italic>HOXA9</italic>)</td>
<td>ddPCR, qPCR, flow cytometry</td>
<td>Tracks residual disease and early relapse; integrates with treatment decision algorithms</td>
<td><italic>Validated</italic> (ELN-aligned)</td>
</tr>
<tr>
<td>Circulating tumor DNA (ctDNA) for <italic>MEN1</italic>/<italic>KMT2A</italic></td>
<td>NGS-based ctDNA panels</td>
<td>Non-invasive monitoring of clonal evolution and emerging resistance</td>
<td><italic>Investigational</italic></td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<fn id="table-5fn1" fn-type="other">
<p>Note: RNA-seq, RNA sequencing; qPCR, quantitative polymerase chain reaction; NGS, next generation sequencing; ddPCR, droplet digital polymerase chain reaction; ChIp-seq, chromatin immunoprecipitation sequencing; ATAC-seq, assay for transposase-accessible chromatin with sequencing; FISH, fluorescence <italic>in situ</italic> hybridization; RT-PCR, reverse transcription-polymerase chain reaction; PCR, polymerase chain reaction; ctDNA, circulating tumor DNA; AML, acute myeloid leukemia; MRD, minimal residual disease.</p>
</fn>
</table-wrap-foot>
</table-wrap>
<p>RNA-Seq is indispensable for quantifying <italic>HOX</italic> and <italic>MEIS1</italic> gene expression and identifying transcriptional changes associated with response or resistance. DNA sequencing, particularly through NGS panels, enables the detection of <italic>KMT2A</italic>r, <italic>NPM1</italic>m, <italic>MEN1</italic> mutations, and clonal evolution. Fluorescence <italic>in situ</italic> hybridization (FISH) is a complementary tool for confirming <italic>KMT2A</italic> rearrangements at the chromosomal level [<xref ref-type="bibr" rid="ref-78">78</xref>]. MRD assessment via sensitive methods such as flow cytometry, droplet digital PCR (ddPCR), or quantitative PCR also provides valuable insight into treatment depth and relapse risk [<xref ref-type="bibr" rid="ref-35">35</xref>,<xref ref-type="bibr" rid="ref-78">78</xref>]. For MRD detection and early relapse prediction, ddPCR offers high sensitivity to capture low-frequency resistant clones or residual leukemic burden, particularly in settings where other tests may lack sufficient resolution [<xref ref-type="bibr" rid="ref-79">79</xref>]. As menin inhibitors are adopted into clinical practice, it is imperative to continue clinical and translational research to refine and optimize the use of menin inhibitors further. Biomarkers need their prognostic and predictive values validated, which can then be applied to further develop interventions and circumvent emerging resistance.</p>
</sec>
</sec>
<sec id="s6">
<label>6</label>
<title>Future Directions</title>
<p>Menin inhibitors have demonstrated promising therapeutic activity in patients with R/R <italic>KMT2A</italic>r AML and have since expanded their use to include those with <italic>NPM1</italic> mutations and <italic>NUP98</italic> rearrangements. Clinical trials have enrolled a substantial proportion of older adults, many of whom were unfit for intensive chemotherapy, and have reported meaningful ORR with manageable toxicity profiles. The efficacy and safety profiles of menin inhibitors in pediatric patients appear comparable to those observed in adults. However, pediatric cohorts have constituted only a small subset of the study populations. Thus, the efficacy and long-term effects of menin inhibitors in children remain to be fully elucidated. Given the mechanism of action and adverse events observed in clinical studies, potential long-term risks may include cardiotoxicity and sustained cytopenias. Therefore, ongoing surveillance and long-term follow-up of menin inhibitor-treated pediatric patients are warranted.</p>
<p>Thus far, acute adverse events from menin inhibitor use seem to have been manageable. One of the growing concerns of menin inhibitors, though, is acquired resistance to menin inhibitors. Recent data from Bourgeois et al. have provided key insights into the impact of <italic>MEN1</italic> mutations on the efficacy of menin inhibitors [<xref ref-type="bibr" rid="ref-80">80</xref>]. Specific <italic>MEN1</italic> mutations have been shown to mediate resistance, with important implications for patient selection and therapeutic sequencing. The Met327 mutation in MEN1 leads to class-wide resistance across all menin inhibitors studied, significantly impairing drug binding. Other mutations, including Cys334, Glu368, and Val372, show selective resistance to individual compounds, suggesting drug-specific vulnerabilities. Proliferation assays in <italic>MEN1</italic>-mutated MOLM13 cells revealed 10x shifts in GI50 for JNJ and Sumitomo agents, and 30&#x00D7;&#x2013;75&#x00D7; shifts for KO-539, DSP-5336, and SNDX-5613 [<xref ref-type="bibr" rid="ref-80">80</xref>]. These findings suggest that <italic>MEN1</italic> mutational profiling may be warranted in patients receiving menin inhibitors, especially in relapsed/refractory settings. Ongoing drug development should aim to address class resistance and develop next-generation agents with efficacy in MEN1-mutant contexts.</p>
<p>Combination therapies with BCL2, FLT3, and IDH1/IDH2 inhibitors have been proposed to combat acquired resistance to menin inhibitors. However, their combined use may introduce additional complications inherent to each agent, particularly in increased QTc prolongation and differentiation syndrome. Given the heterogeneous nature of leukemic cell populations, drugs like venetolax can impose a selection pressure and allow cells that can bypass the drug&#x2019;s main mechanism of action to survive and proliferate [<xref ref-type="bibr" rid="ref-66">66</xref>]. Previous studies have shown that AML patients with <italic>TP53</italic> mutations have poor response to venetoclax, which can even reduce its synergistic effects with revumenib [<xref ref-type="bibr" rid="ref-81">81</xref>,<xref ref-type="bibr" rid="ref-82">82</xref>]. Rather, a myeloid cell leukemia sequence 1 (MCL1) inhibitor was proposed to work more effectively with revumenib in <italic>TP53</italic> mutant <italic>KMT2A</italic>r cells [<xref ref-type="bibr" rid="ref-81">81</xref>]. Currently, there are no clinical trials reporting the efficacy of menin inhibitors in <italic>KMT2A</italic>r AML patients with concurrent <italic>TP53</italic> mutations. Though some trials have included patients with <italic>TP53</italic> mutations, efficacy results for this subgroup have not been separately reported. <italic>TP53</italic> mutations are known to confer resistance to many targeted therapies, thus menin inhibitor efficacy and the combination therapies to use with this co-mutation should be explored further.</p>
<p>In addition, the combined use of menin inhibitors with FLT3 or IDH1/IDH2 inhibitors have the potential to exacerbate the acute toxicities seen with menin inhibitor monotherapy in clinical trials, particularly QTc prolongation and differentiation syndrome. Since even the mildest presentation of differentiation syndrome can progress quickly, it is up to providers to monitor patients carefully and adjust dosages as needed, especially when using combined therapies. To further assess the efficacy of combination therapy vs. monotherapy, a comparison of median OS would be useful. While monotherapy with menin inhibitors shows a median OS of &#x007E;6&#x2013;8 months (<xref ref-type="table" rid="table-6">Table 6</xref>), the combination therapy mOS is still unknown, given the early stages of their clinical trials. As menin inhibitor use is studied in triple therapy combinations with HMA/Ven, there is also interest to explore quadruple therapy in <italic>FLT3-</italic>mutated or <italic>IDH1/2</italic>-mutated patients. Though there may be a significant improvement in efficacy, toxicities will need to be closely monitored.</p>
<table-wrap id="table-6">
<label>Table 6</label>
<caption>
<title>Comparative analysis of menin inhibitors in clinical trials</title>
</caption>
<table>
<colgroup>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/> </colgroup>
<thead>
<tr>
<th>Agent</th>
<th>Phase</th>
<th>ORR (%)</th>
<th>CR/CRh (%)</th>
<th>mDoR (Months)</th>
<th>mOS (Months)</th>
<th>Patients to alloHCT</th>
</tr>
</thead>
<tbody>
<tr>
<td>Ziftomenib [<xref ref-type="bibr" rid="ref-42">42</xref>,<xref ref-type="bibr" rid="ref-43">43</xref>]</td>
<td>Phase 1</td>
<td>17%</td>
<td>11%</td>
<td>3.1</td>
<td>5.4</td>
<td>0</td>
</tr>
<tr>
<td>Bleximenib [<xref ref-type="bibr" rid="ref-47">47</xref>&#x2013;<xref ref-type="bibr" rid="ref-49">49</xref>]</td>
<td>Phase 1</td>
<td>46%</td>
<td>21%</td>
<td>6.5</td>
<td>6.0</td>
<td>7 (1 responder)</td>
</tr>
<tr>
<td>Enzomenib [<xref ref-type="bibr" rid="ref-51">51</xref>]</td>
<td>Phase 1</td>
<td>59%</td>
<td>23%</td>
<td>NR</td>
<td>NR</td>
<td>NR</td>
</tr>
<tr>
<td>Revumenib [<xref ref-type="bibr" rid="ref-37">37</xref>&#x2013;<xref ref-type="bibr" rid="ref-39">39</xref>,<xref ref-type="bibr" rid="ref-53">53</xref>]</td>
<td>Phase 2</td>
<td>64%</td>
<td>23%</td>
<td>6.4</td>
<td>8.0</td>
<td>39 (responders)</td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<fn id="table-6fn1" fn-type="other">
<p>Note: Summary of efficacy outcomes from early-phase clinical trials of key menin inhibitors: ziftomenib, bleximenib, enzomenib, and revumenib targeting relapsed/refractory AML with <italic>KMT2A</italic> rearrangement and/or <italic>NPM1</italic> mutation. NR, Not Reported; mDoR, Median Duration of Response; mOS, Median Overall Survival.</p>
</fn>
</table-wrap-foot>
</table-wrap>
<p>The use of menin inhibition in the maintenance setting is also being explored, both for post-induction maintenance and post-transplant maintenance. Given the oral route of administration and relatively well-tolerated safety profile, continued single-agent maintenance may prove to be an effective method to reduce relapse rates, however there is currently no long-term safety or efficacy data. AML with <italic>KMT2A</italic>r or <italic>NPM1</italic>m has substantial relapse risk even after transplant. Early evidence supports maintenance therapy post-transplant. In an MSKCC study, 9 patients received revumenib after allogeneic SCT (for 23 to 588 days) as maintenance [<xref ref-type="bibr" rid="ref-83">83</xref>]. CRc was maintained in 6 of 9 patients after HSCT and maintenance revumenib. One patient with reported MRD after HSCT converted to MRD-negative status following initiation of revumenib maintenance therapy. Overall, MRD-negative remissions were maintained in 5 patients as of the data cutoff.Besides the next generation of menin inhibitors, menin degraders are also being researched. Efforts are exploring proteolysis-targeting chimeras that lead to menin degradation rather than inhibition. A menin degrader could eliminate menin protein entirely, potentially overcoming high menin levels or mutations that affect only the binding site. Preclinical degraders against menin have shown potent cell killing in MLL-r models, but none are in clinical trials yet. Degraders also introduce novel risks, such as off-target ubiquitination.</p>
</sec>
<sec id="s7">
<label>7</label>
<title>Conclusion</title>
<p>The development of menin inhibitors has introduced a new therapeutic opportunity for patients with <italic>KMT2A</italic>r and <italic>NPM1</italic>m AML. These subtypes were once considered biologically adverse but are now targetable through inhibition of the menin&#x2013;KMT2A interaction. Multiple agents, notably revumenib and ziftomenib, have demonstrated significant activity in relapsed or refractory AML and are advancing toward frontline use in combination regimens. Early results consistently show high response rates and the potential to bridge patients to curative therapies such as allogeneic transplantation.</p>
<p>However, resistance mechanisms, especially acquired <italic>MEN1</italic> mutations and epigenetic reprogramming, have already been discovered and are under further study. Emerging data suggest that combinations with agents such as venetoclax, hypomethylating agents, IDH1/IDH2 or FLT3 inhibitors, and even EZH2 inhibitors may mitigate resistance and extend therapeutic benefit. Biomarker-informed strategies, including serial monitoring of HOX/MEIS1 expression and clonal evolution through NGS and ddPCR, are essential for optimizing treatment and anticipating relapse. As the field continues to mature, menin inhibition is poised to become a strategy in the molecularly targeted management of AML and its use in combination or maintenance has the potential to provide significant clinical benefit.</p>
</sec>
</body>
<back>
<ack>
<p>Not Applicable.</p>
</ack>
<sec>
<title>Funding Statement</title>
<p>The authors received no specific funding for this study.</p>
</sec>
<sec>
<title>Author Contributions</title>
<p>The authors confirm contribution to the paper as follows: Conceptualization, Eric L. Tam, Tiffany Chen and Grace Kim; resources, Tiffany Chen, Grace Kim, Yekta Rahimi, Monisha Kamdar and Eric L. Tam; data curation, Tiffany Chen, Grace Kim, Yekta Rahimi, Monisha Kamdar and Eric L. Tam; writing&#x2014;original draft preparation, Tiffany Chen, Grace Kim, Yekta Rahimi, Monisha Kamdar, Eric L. Tam, Eduardo Fernandez-Hernandez, Karrune Woan and George Yaghmour; writing&#x2014;review and editing, Tiffany Chen, Grace Kim, Yekta Rahimi, Monisha Kamdar, Eric L. Tam, Eduardo Fernandez-Hernandez, Karrune Woan and George Yaghmour; supervision, Eric L. Tam; project administration, Eric L. Tam. All authors reviewed the results and approved the final version of the manuscript.</p>
</sec>
<sec sec-type="data-availability">
<title>Availability of Data and Materials</title>
<p>Not applicable.</p>
</sec>
<sec>
<title>Ethic Approval</title>
<p>Not applicable.</p>
</sec>
<sec sec-type="COI-statement">
<title>Conflicts of Interest</title>
<p>Eric L. Tam is a site principal investigator of KOMEN-007 and KOMEN-008. All other authors declare no conflicts of interest to report regarding the present study.</p>
</sec>
<app-group id="appg-1">
<app id="app-1">
<title>Appendix A</title>
<table-wrap id="table-7">
<label>Table A1</label>
<caption>
<title>Menin inhibitor clinical trials</title>
</caption>
<table>
<colgroup>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/>
<col align="center"/> </colgroup>
<thead>
<tr>
<th>Drug</th>
<th>Phase</th>
<th>NCT</th>
<th>Regimen</th>
<th>Diagnosis</th>
<th>Mutation</th>
<th>Population</th>
<th>Country/Region</th>
<th>Status</th>
</tr>
</thead>
<tbody>
<tr>
<td></td>
<td>Phase 1 (City of Hope)</td>
<td>NCT06575296</td>
<td>Monotherapy</td>
<td>AML, ALL (post allogeneic HSCT)</td>
<td><italic>KMT2A, NPM1</italic></td>
<td>&#x2265;2Y</td>
<td>USA</td>
<td>Recruiting</td>
</tr>
<tr>
<td></td>
<td>Phase 1/2 (Syndax Pharmaceuticals)</td>
<td>NCT04065399</td>
<td>Monotherapy (&#x002B;/&#x2212; CYP3A4 inhibitor)</td>
<td>AML, ALL</td>
<td><italic>KMT2A, NPM1, NUP98</italic></td>
<td>&#x2265;1M</td>
<td>USA, Australia, Canada, France, Germany, Israel, Italy, Lithuania, Netherlands, Puerto Rico, Spain</td>
<td>Recruiting</td>
</tr>
<tr>
<td></td>
<td>Phase 2 (M.D. Anderson)</td>
<td>NCT06229912</td>
<td>Monotherapy</td>
<td>AML, ALL</td>
<td><italic>KMT2A, NPM1, NUP98, NUP214</italic> (upregulation of HOX genes)</td>
<td>&#x2265;12Y</td>
<td>USA</td>
<td>Recruiting</td>
</tr>
<tr>
<td></td>
<td>Phase 1</td>
<td>NCT06222580</td>
<td>Combination: Revumenib &#x002B; Gilteritinib</td>
<td>AML</td>
<td><italic>KMT2A, NPM1, FLT3</italic></td>
<td>&#x2265;18Y</td>
<td>USA</td>
<td>Recruiting</td>
</tr>
<tr>
<td></td>
<td>Phase 1</td>
<td>NCT06313437</td>
<td>Combination: Revumenib &#x002B; Cytarabine/Daunorubicin &#x002B; Midostaurin</td>
<td>AML</td>
<td><italic>NPM1, FLT3</italic></td>
<td>&#x2265;18Y and &#x2264;75Y</td>
<td>USA</td>
<td>Recruiting</td>
</tr>
<tr>
<td></td>
<td>Phase 1 (National Cancer Institute)</td>
<td>NCT05886049</td>
<td>Combination: Revumenib &#x002B; Daunorubicin/Cytarabine</td>
<td>AML</td>
<td><italic>KMT2A, NPM1</italic></td>
<td>&#x2265;18Y and &#x2264;75Y</td>
<td>USA</td>
<td>Recruiting</td>
</tr>
<tr>
<td>Revumenib (SNDX-5613)</td>
<td>Phase 1</td>
<td>NCT06177067</td>
<td>Combination: Revumenib &#x002B;Azacitidine/<break/> Venetoclax</td>
<td>AML, ALAL</td>
<td><italic>KMT2A, NPM1, NUP98, NUP214</italic></td>
<td>&#x2265;1Y and &#x2264;30Y</td>
<td>USA</td>
<td>Recruiting</td>
</tr>
<tr>
<td></td>
<td>Phase 1</td>
<td>NCT07052994</td>
<td>Combination: Revumenib &#x002B; Daunorubicin/<break/> Cytarabine</td>
<td>AML, MPAL</td>
<td><italic>KMT2, NPM1, NUP98, UBTF-ITD</italic></td>
<td>&#x2265;6M and &#x2264;21Y</td>
<td>USA</td>
<td>Not Yet Recruiting</td>
</tr>
<tr>
<td></td>
<td>Phase 1</td>
<td>NCT06226571</td>
<td>Combination: Revumenib &#x002B; Cytarabine &#x002B; Daunorubicin OR Idarubicin</td>
<td>AML</td>
<td><italic>KMT2, NPM1, NUP98</italic></td>
<td>&#x2265;18Y and &#x2264;75Y</td>
<td>USA, Australia, Spain, UK</td>
<td>Recruiting</td>
</tr>
<tr>
<td></td>
<td>Phase 1/2 (M.D. Anderson)</td>
<td>NCT05360160</td>
<td>Combination: Revumenib &#x002B; Decitabine/Cedazuridine (ASTX727) &#x002B; Venetoclax</td>
<td>AML</td>
<td><italic>KMT2A, NPM1, NUP98</italic></td>
<td>&#x2265;12Y</td>
<td>USA</td>
<td>Recruiting</td>
</tr>
<tr>
<td></td>
<td>Phase 1/2 (M.D. Anderson)</td>
<td>NCT06284486</td>
<td>Combination: Revumenib &#x002B; Venetoclax</td>
<td>AML</td>
<td><italic>KMT2A, NPM1, NUP98</italic></td>
<td>&#x2265;12Y</td>
<td>USA</td>
<td>Recruiting</td>
</tr>
<tr>
<td></td>
<td>Phase 2 (Children&#x2019;s Oncology Group)</td>
<td>NCT05761171</td>
<td>Combination: Revumenib &#x002B; Fludarabine/Cytarabine</td>
<td>ALL</td>
<td><italic>KMT2A</italic></td>
<td>&#x2265;1M and &#x003C;6Y</td>
<td>USA, Canada</td>
<td>Recruiting</td>
</tr>
<tr>
<td></td>
<td>Phase 3</td>
<td>NCT06652438</td>
<td>Combination: Revumenib &#x002B; Azacitidine/Venetoclax</td>
<td>AML</td>
<td><italic>KMT2A, NPM1</italic></td>
<td>&#x2265;18Y</td>
<td>Germany, Netherlands, UK</td>
<td>Recruiting</td>
</tr>
<tr>
<td></td>
<td>Phase 3</td>
<td>NCT07211958</td>
<td>Combination: Intensive Chemotherapy &#x002B; Revumenib OR Placebo</td>
<td>AML</td>
<td><italic>NPM1</italic></td>
<td>&#x2265;12Y</td>
<td>N/A</td>
<td>Not Yet Recruiting</td>
</tr>
<tr>
<td></td>
<td>KO-MEN-001 Phase 1/2</td>
<td>NCT04067336</td>
<td>Monotherapy (&#x002B;/&#x2212; midazolam or itraconazole)</td>
<td>AML</td>
<td><italic>KMT2A, NPM1</italic></td>
<td>&#x2265;18Y</td>
<td>USA, Belgium, Canada, France, Germany, Italy, Poland, Spain, UK</td>
<td>Recruiting</td>
</tr>
<tr>
<td></td>
<td>Phase 2</td>
<td>NCT06930352</td>
<td>Monotherapy</td>
<td>AML (not eligible for standard therapy)</td>
<td><italic>KMT2A, NPM1</italic></td>
<td>&#x2265;18Y</td>
<td>USA</td>
<td>Not Yet Recruiting</td>
</tr>
<tr>
<td></td>
<td>KO-MEN-007 Phase 1</td>
<td>NCT05735184</td>
<td>Combination: Ziftomenib &#x002B; Venetoclax/Azacitidine OR Venetoclax OR Cytarabine/Daunorubicin</td>
<td>AML</td>
<td><italic>KMT2A, NPM1</italic></td>
<td>&#x2265;18Y</td>
<td>USA</td>
<td>Recruiting</td>
</tr>
<tr>
<td rowspan="2">Ziftomenib</td>
<td>Phase 1 (M.D. Anderson)</td>
<td>NCT06448013</td>
<td>Combination: Ziftomenib &#x002B; Venetoclax/Gemtuzumab</td>
<td>AML, MPAL</td>
<td><italic>KMT2A, NPM1, NUP98, UBTF-ITD</italic></td>
<td>&#x2265;3Y and &#x2264;21Y</td>
<td>USA</td>
<td>Recruiting</td>
</tr>
<tr>

<td>Phase 1</td>
<td>NCT06376162</td>
<td>Combination: Ziftomenib &#x002B; Cytarabine/Fludarabine</td>
<td>AML</td>
<td><italic>KMT2A, NPM1, NUP98</italic></td>
<td>&#x2264;21Y</td>
<td>USA, Austria, Canada, France, Netherlands, Spain</td>
<td>Recruiting</td>
</tr>
<tr>
<td></td>
<td>Phase 1</td>
<td>NCT06397027</td>
<td>Combination: Ziftomenib &#x002B; Venetoclax/Azacitidine</td>
<td>AML, MPAL</td>
<td><italic>KMT2A, NPM1, NUP98</italic></td>
<td>&#x2265;2Y and &#x2264;21Y</td>
<td>USA</td>
<td>Recruiting</td>
</tr>
<tr>
<td></td>
<td>Phase 1</td>
<td>NCT06769490</td>
<td>Combination: Ziftomenib &#x002B; Quizartinib</td>
<td>AML, MPAL</td>
<td><italic>KMT2A, NPM1, NUP98</italic></td>
<td>&#x2265;18Y</td>
<td>USA</td>
<td>Recruiting</td>
</tr>
<tr>
<td></td>
<td>Phase 1</td>
<td>NCT06001788</td>
<td>Combination: Ziftomenib &#x002B; Fludarabine/Idarubicin OR Cytarabine OR Gliteritinib</td>
<td>AML</td>
<td><italic>KMT2A, NPM1, FLT3</italic></td>
<td>&#x2265;18Y</td>
<td>USA, Italy, Spain</td>
<td>Recruiting</td>
</tr>
<tr>
<td></td>
<td>Phase 3</td>
<td>NCT07007312</td>
<td>Combination: Ziftomenib &#x002B; Venetoclax/Azacitidine OR Cytarabine/Daunorubicin</td>
<td>AML</td>
<td><italic>KMT2A, NPM1, FLT3</italic></td>
<td>&#x2265;18Y</td>
<td>Not provided</td>
<td>Not Yet Recruiting</td>
</tr>
<tr>
<td rowspan="2">BN104</td>
<td>Phase 1/2 (BioNova Pharmaceuticals)</td>
<td>NCT06052813</td>
<td>Monotherapy</td>
<td>AML, ALL</td>
<td><italic>KMT2A, NPM1</italic></td>
<td>&#x2265;18Y</td>
<td>China</td>
<td>Recruiting</td>
</tr>
<tr>

<td>Phase 1/2</td>
<td>NCT06746519</td>
<td>Combination: BN104 &#x002B; Venetoclax/Azacitidine</td>
<td>AML</td>
<td><italic>KMT2A, NPM1, NUP98</italic></td>
<td>&#x2265;18Y</td>
<td>China</td>
<td>Recruiting</td>
</tr>
<tr>
<td></td>
<td>Phase 1/2 (Janssen R&#x0026;D)</td>
<td>NCT04811560</td>
<td>Monotherapy</td>
<td>AML, ALL</td>
<td>Phase 1: <italic>KMT2A, NPM1, NUP98, NUP214</italic>; Phase 2: <italic>KMT2A, NPM1</italic></td>
<td>Phase 1: &#x2265;12Y and &#x003C;18Y; Phase 2: &#x2265;18Y</td>
<td>USA, Australia, Brazil, Canada, China, France, Israel, Japan, Korea, Spain, Taiwan, UK</td>
<td>Recruiting</td>
</tr>
<tr>
<td>Bleximenib (JNJ-75276617)</td>
<td>Phase 1 (Janssen R&#x0026;D)</td>
<td>NCT05453903</td>
<td>Combination: Bleximenib &#x002B; Venetoclax/Azacitidine OR Cytarabine/Daunorubicin OR Idarubicin</td>
<td>AML</td>
<td><italic>KMT2A, NPM1, NUP98, NUP214</italic></td>
<td>&#x2265;12Y</td>
<td>US, Australia, Canada, France, Germany, Italy, Spain, UK</td>
<td>Recruiting</td>
</tr>
<tr>
<td></td>
<td>Phase 3</td>
<td>NCT06852222</td>
<td>Combination: Azacitidine/Venetoclax &#x002B; Bleximenib OR Placebo</td>
<td>AML</td>
<td><italic>KMT2A, NPM1</italic></td>
<td>&#x2265;18Y</td>
<td>USA, Australia, Belgium, Brazil, Canada, China, Czechia, Denmark, France, Germany, Greece, Israel, Italy, Japan, Poland, Portugal, South Korea, Spain, Taiwan, Turkey, UK</td>
<td>Recruiting</td>
</tr>
<tr>
<td>BMF-219</td>
<td>COVALENT-101 Phase 1 (Biomea Fusion)</td>
<td>NCT05153330</td>
<td>Monotherapy (&#x002B;/&#x2212; CYP3A4 inhibitor)</td>
<td>AML, ALL, DLBCL, MM, CLL/SLL</td>
<td><italic>KMT2A/MLL1, NPM1</italic></td>
<td>&#x2265;18Y</td>
<td>USA, Greece, Italy, Netherlands, Spain</td>
<td>Active, Not Recruiting</td>
</tr>
<tr>
<td>Enzomenib (DSP-5336)</td>
<td>Phase 1/2 (Sumitomo Pharma America)</td>
<td>NCT04988555</td>
<td>Monotherapy (&#x002B;/&#x2212; CYP3A4 inhibitor); Combination: Enzomenib &#x002B; Venetoclax/Azacitidine OR Gilteritinib</td>
<td>AML, ALL, MM, MDS</td>
<td><italic>MLL1, NPM1</italic></td>
<td>&#x2265;18Y</td>
<td>USA, Belgium, Canada, France, Italy, Japan, Korea, Singapore, Spain, Taiwan, UK</td>
<td>Recruiting</td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<fn id="table-7fn1" fn-type="other">
<p>Note: All up-to-date clinical trial information can be found on <ext-link ext-link-type="uri" xlink:href="http://clinicaltrials.gov">clinicaltrials.gov</ext-link>. AML, acute myeloid leukemia; ALL, acute lymphoblastic leukemia; HSCT, hematopoietic stem cell transplantation; ALAL, acute leukemia of ambiguous lineage; MPAL, mixed phenotype acute leukemia; DLBCL, diffuse large B-cell lymphoma; MM, multiple myeloma; CLL, chronic lymphocytic leukemia; SLL, small lymphocytic lymphoma; MDS, myelodysplastic syndrome; USA, United States of America; UK, United Kingdom.</p>
</fn>
</table-wrap-foot>
</table-wrap>
</app>
</app-group>
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