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Keywords = PRMT5 inhibitors

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19 pages, 32151 KB  
Article
Acquired Resistance to the PRMT5 Inhibitor Confers Collateral Sensitivity to MEK Inhibition in MTAP-Null Non-Small Cell Lung Cancer
by Rongjie Fu, Yalong Wang, Ishita Rehman, Ella Bedford, Sana Sharif, Nghi D. Nguyen, Reid T. Powell, Andrew Adams, Weijun Liu, Shuyue Wang, Wei He, Yue Lu, Bin Liu, Pooja Anil Shah, Jordi Rodon Ahnert, Taiping Chen, Weiyi Peng, Clifford C. Stephan, Xinli Liu, Mark T. Bedford and Han Xuadd Show full author list remove Hide full author list
Biomolecules 2026, 16(8), 1198; https://doi.org/10.3390/biom16081198 - 17 Aug 2026
Viewed by 316
Abstract
Protein arginine methyltransferase 5 (PRMT5) is a synthetic lethal target in methylthioadenosine phosphorylase-deleted (MTAP-null) cancers. Second-generation methylthioadenosine (MTA)-cooperative PRMT5 inhibitors preferentially target MTAP-null cells while largely sparing MTAP-wildtype (MTAP-WT) cells, thereby improving tumor selectivity over first-generation PRMT5 [...] Read more.
Protein arginine methyltransferase 5 (PRMT5) is a synthetic lethal target in methylthioadenosine phosphorylase-deleted (MTAP-null) cancers. Second-generation methylthioadenosine (MTA)-cooperative PRMT5 inhibitors preferentially target MTAP-null cells while largely sparing MTAP-wildtype (MTAP-WT) cells, thereby improving tumor selectivity over first-generation PRMT5 inhibitors. Despite encouraging efficacy and safety signals in early clinical studies, the modest objective response rates (ORRs) observed with these inhibitors suggest that intrinsic or acquired resistance may limit their clinical benefit. Here, we investigated acquired resistance to the MTA-cooperative PRMT5 inhibitor BMS-986504/MRTX1719 in MTAP-null non-small cell lung cancer (NSCLC) cells and sought to identify therapeutic vulnerabilities that emerge upon resistance. Using multiple in vitro-derived resistant models, we found that acquired resistance was accompanied by cross-resistance to mechanistically distinct PRMT5 inhibitors. Notably, this phenotype was not fully explained by altered PRMT5 activity or changes in MTA levels. High-throughput drug screening of paired sensitive and resistant cells revealed increased sensitivity to MEK inhibitors following acquisition of MRTX1719 resistance in KRAS-wildtype NSCLC cells. Consistently, resistant cells exhibited rewired MAPK-related transcriptional programs. Together, these findings identify MEK inhibition as a reproducible collateral vulnerability associated with acquired MRTX1719 resistance in MTAP-null NSCLC models and support further evaluation of MEK inhibition as a potential treatment-switching strategy following resistance. Full article
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18 pages, 4337 KB  
Article
Protein Arginine Methyltransferase-5 Inhibition Induces Growth Arrest and Death in Triple-Negative Breast Cancer Cells
by Majdi Al-Alawneh, Fareed Ahmad, Abdallah Musa Abdallah, Samir Jaoua and Saïd Sif
Future Pharmacol. 2026, 6(3), 40; https://doi.org/10.3390/futurepharmacol6030040 - 24 Jul 2026
Viewed by 333
Abstract
Background: PRMT5, or protein arginine methyltransferase 5, is recognized as an epigenetic regulator that suppresses gene transcription through symmetric dimethylation of histone arginine residues, including histone H4 arginine 3 (H4R3me2s) and histone H3 arginine 8 (H3R8me2s), modifications associated with chromatin condensation and [...] Read more.
Background: PRMT5, or protein arginine methyltransferase 5, is recognized as an epigenetic regulator that suppresses gene transcription through symmetric dimethylation of histone arginine residues, including histone H4 arginine 3 (H4R3me2s) and histone H3 arginine 8 (H3R8me2s), modifications associated with chromatin condensation and transcriptional repression. PRMT5-mediated methylation has been associated with recruitment of polycomb repressive complex 2 (PRC2) and enhancer of zeste homolog 2 (EZH2)-mediated H3K27me3 deposition, contributing to stable repression of tumor suppressor genes and apoptosis-related effectors in breast cancer. Methods: The molecular and functional impacts of PRMT5 inhibition were studied in TNBC cell lines with a pharmacological inhibitor (CMP5). Cellular responses were evaluated using a viability assay, qPCR, Western blotting, Annexin V/PI staining, and transwell migration/proliferation assays. Results: PRMT5 inhibition substantially reduced TNBC viability in a time- and dose-dependent manner. EZH2 was downregulated, whereas the tumor suppressor retinoblastoma-like protein 2 (RBL2) was induced, concomitant with low expression of Cyclin D1. These changes were accompanied by upregulation of pro-apoptotic effectors (Caspase-3, Caspase-10, death-associated protein 1 (DAP1), and BCL2-associated x protein (BAX) and repression of the pro-survival B-cell lymphoma 2 (BCL2), consistent with apoptosis-associated molecular responses. Functionally, CMP5 treatment was associated with reduced migratory behavior in TNBC cells under the experimental conditions tested. Conclusions: These findings suggest that PRMT5 inhibition by CMP5 is associated with reduced TNBC cell viability, impaired migration, increased expression of apoptosis-associated regulators and enhanced apoptotic cell death as measured by Annexin V/PI analysis in vitro. Further mechanistic and in vivo studies are required to clarify the therapeutic relevance of PRMT5 inhibition in TNBC. Full article
(This article belongs to the Section Molecular, Cellular and Biochemical Pharmacology)
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18 pages, 964 KB  
Review
PRMT5 as a Key Driver of Stemness and Metastatic Potential in Triple-Negative Breast Cancer
by Jae Jin Jeong, Mauli Maniar, Shahrzad Ghane, Sakshi Deshpande, Claire Ellis and Ashakumary Lakshmikuttyamma
Biomolecules 2026, 16(6), 916; https://doi.org/10.3390/biom16060916 - 20 Jun 2026
Viewed by 832
Abstract
Protein arginine methyltransferase 5 (PRMT5) mediates arginine methylation of a wide range of proteins and plays context-dependent oncogenic or tumor-suppressive roles. In cancer, PRMT5 represses several tumor suppressor genes, including E-cadherin, TP53BP1, ST7, PTEN, and RB (retinoblastoma). Elevated PRMT5 expression has been reported [...] Read more.
Protein arginine methyltransferase 5 (PRMT5) mediates arginine methylation of a wide range of proteins and plays context-dependent oncogenic or tumor-suppressive roles. In cancer, PRMT5 represses several tumor suppressor genes, including E-cadherin, TP53BP1, ST7, PTEN, and RB (retinoblastoma). Elevated PRMT5 expression has been reported across multiple cancer types, notably triple-negative breast cancer (TNBC). In TNBC, high PRMT5 levels are associated with enhanced cancer stem cell self-renewal, increased tumor growth and metastasis, and reduced patient survival. Mechanistically, PRMT5 promotes breast cancer stem cell maintenance and proliferation through stabilization of the transcription factors KLF4 and KLF5. Disruption of the PRMT5–KLF4 axis results in significant tumor reduction in TNBC models. Moreover, increased PRMT5 expression has been linked to resistance to chemotherapy and immunotherapy in TNBC. Notably, PRMT5 inhibitors demonstrate synergistic anticancer activity when combined with inhibitors of key oncogenic signaling pathways, including EGFR, PARP, and AKT. While several PRMT5 inhibitors are currently being evaluated in clinical trials for other malignancies, no clinical trials have yet been initiated specifically for TNBC. Full article
(This article belongs to the Special Issue Genetics and Epigenetics of Breast Cancer)
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15 pages, 2018 KB  
Case Report
Peri-Implant Gingival Undifferentiated SWI/SNF Complex-Deficient Tumor with Molecularly Confirmed Biallelic SMARCA4 Inactivation: Diagnostic Pitfalls and Genomic Characterization
by Haim Ohayon, Ahmad Hija, Amir Bilder, Tal Capucha, Sharon Akrish, Amir Wolff and Omri Emodi
Diagnostics 2026, 16(11), 1732; https://doi.org/10.3390/diagnostics16111732 - 4 Jun 2026
Viewed by 670
Abstract
Background and Clinical Significance: SWI/SNF chromatin remodeling complex-deficient malignancies constitute an aggressive group of undifferentiated tumors defined by inactivation of core subunits including SMARCA4 (BRG1) or SMARCB1 (INI1). In the head and neck, these tumors predominate in the sinonasal tract; oral cavity [...] Read more.
Background and Clinical Significance: SWI/SNF chromatin remodeling complex-deficient malignancies constitute an aggressive group of undifferentiated tumors defined by inactivation of core subunits including SMARCA4 (BRG1) or SMARCB1 (INI1). In the head and neck, these tumors predominate in the sinonasal tract; oral cavity presentations are exceedingly rare, with reported cases predominantly representing metastatic disease. Peri-implant gingival masses in clinical practice are overwhelmingly reactive, but their occasional malignant nature mandates timely biopsy and thorough pathologic workup. We report the first comprehensively molecularly characterized case of a peri-implant gingival SWI/SNF complex-deficient tumor with confirmed biallelic SMARCA4 inactivation. Case Presentation: A 75-year-old man presented with a one-week history of a rapidly enlarging exophytic erythematous peri-implant gingival mass in the right posterior mandible (region 44–47). Incisional biopsy demonstrated an undifferentiated high-grade tumor with epithelioid, plasmablastoid, and focally rhabdoid morphology with necrosis. Immunohistochemistry showed complete loss of BRG1 (SMARCA4) with retained INI1 (SMARCB1), EMA positivity, Ki-67 of approximately 100%, and negativity across all lineage-specific markers (hematolymphoid, epithelial, melanocytic, endothelial, squamous). Comprehensive next-generation sequencing (Oncomine Comprehensive Assay Plus) confirmed biallelic SMARCA4 inactivation via a truncating nonsense mutation (p.Trp1346Ter; VAF 73.85%) combined with copy number loss, establishing the molecular mechanism underlying BRG1 protein loss. Co-occurring alterations included homozygous CDKN2A/CDKN2B deletion, MTAP loss (9p21.3), clonal TP53 and KEAP1 mutations, and intermediate–high tumor mutational burden (13.3 mutations/Mb) with microsatellite stability. The patient initiated carboplatin–paclitaxel and achieved a partial response at one month with further shrinkage by four months. This case illustrates a rare oral cavity manifestation of SWI/SNF complex deficiency arising in a peri-implant location, with a diagnostic workup that required integration of immunohistochemistry and molecular profiling for definitive characterization. The MTAP deletion co-occurring with homozygous CDKN2A/B loss identifies a potentially actionable synthetic lethal vulnerability to MAT2A and PRMT5 inhibitors currently under clinical investigation. An occult primary site could not be fully excluded due to absence of a dedicated staging workup. Conclusions: Rapidly enlarging peri-implant gingival masses should prompt timely biopsy and SWI/SNF marker testing when histology is high-grade and lineage-ambiguous. NGS-based molecular profiling confirms diagnosis, elucidates mechanism, and reveals actionable targets in this rare tumor class. Full article
(This article belongs to the Section Pathology and Molecular Diagnostics)
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31 pages, 1210 KB  
Review
KRAS and Beyond: Emerging Targeted and Molecularly Stratified Strategies in Pancreatic Ductal Adenocarcinoma
by Alicia Y. Lefas, Hazel Lote and Ian Chau
Precis. Oncol. 2026, 1(2), 9; https://doi.org/10.3390/precisoncol1020009 - 18 May 2026
Viewed by 1405
Abstract
Pancreatic ductal adenocarcinoma (PDAC) is a highly lethal malignancy, with rising incidence and a 5-year survival rate of 13%. Late presentation, early metastasis, and intrinsic resistance constrain the efficacy of cytotoxic chemotherapy, which remains the backbone of PDAC treatment, with only modest survival [...] Read more.
Pancreatic ductal adenocarcinoma (PDAC) is a highly lethal malignancy, with rising incidence and a 5-year survival rate of 13%. Late presentation, early metastasis, and intrinsic resistance constrain the efficacy of cytotoxic chemotherapy, which remains the backbone of PDAC treatment, with only modest survival gains and resistance nearly universal. Although KRAS mutations dominate tumour biology (~90% of cases), PDAC is a heterogeneous disease with distinct molecular subtypes that confer differential therapeutic vulnerabilities. Advances in comprehensive molecular profiling have catalysed a paradigm shift toward precision oncology in PDAC. In KRAS-mutant PDAC, mutation-specific inhibitors have established proof-of-concept, particularly in KRAS G12C disease, while next-generation approaches including KRAS G12D inhibitors, RAS-“ON” inhibitors, proteolysis-targeting chimeras (PROTACs), and KRAS-targeted vaccine strategies are expanding the therapeutic landscape. Combination strategies targeting upstream and downstream effectors of the RAS–MAPK pathway are also being explored to enhance the depth and durability of response. In parallel, KRAS-wild-type PDAC has emerged as a molecularly distinct subgroup enriched for rare but actionable alternative oncogenic fusion drivers including NRG1, NTRK, RET, ALK, and FGFR. Additional molecularly directed strategies targeting HER2 alterations, BRAF mutations, EGFR-dependent signalling, and tumour-selectively exposed surface antigens such as CLDN18.2 are under investigation across PDAC irrespective of KRAS mutation status. Synthetic lethal approaches, including targeting the PRMT5/CDKN2A/MTAP axis, represent a further emerging therapeutic strategy. Germline homologous recombination repair defects, particularly involving BRCA1/2 and PALB2, further define clinically important subsets with sensitivity to platinum chemotherapy and PARP inhibition. This review summarises current and emerging targeted and molecularly directed therapeutic strategies in PDAC, emphasising the importance of molecular stratification and recent advances shaping precision oncology in this historically treatment-refractory disease. Full article
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18 pages, 1697 KB  
Article
Development and Validation of an LC-MS/MS Method for the Quantitation of JNJ-64619178 (JNJ) in Mouse Plasma: Characterization of In Vitro and In Vivo Pharmacokinetic Properties
by Nusrat Ahmed, Pratiksha Kshirsagar, Ling Ding, Daryl J. Murry, Nagendra K. Chaturvedi and Yashpal S. Chhonker
Molecules 2026, 31(9), 1396; https://doi.org/10.3390/molecules31091396 - 23 Apr 2026
Viewed by 954
Abstract
Overexpression of protein arginine methyltransferase 5 (PRMT5) is pivotal in MYC-driven primary medulloblastoma tumors, suggesting PRMT5 as a potential therapeutic target. JNJ, a potent PRMT5 inhibitor currently in clinical trials, notably for non-Hodgkin lymphoma and lung cancer, was evaluated in this study. We [...] Read more.
Overexpression of protein arginine methyltransferase 5 (PRMT5) is pivotal in MYC-driven primary medulloblastoma tumors, suggesting PRMT5 as a potential therapeutic target. JNJ, a potent PRMT5 inhibitor currently in clinical trials, notably for non-Hodgkin lymphoma and lung cancer, was evaluated in this study. We report a validated LC–MS/MS bioanalytical method for quantifying JNJ in plasma and tissue matrices. The method demonstrated acceptable sensitivity, selectivity, and robustness in accordance with regulatory guidelines. The assay was linear over the range 0.2–500 ng mL−1 (r2 = 0.99), with plasma recovery exceeding 84% using only 100 µL of sample. Precision (%RSD < 15%) and accuracy (~91–108%) were within acceptable limits. JNJ showed >94% plasma protein binding and moderate Caco-2 permeability (3.4 ± 0.4 × 10−6 cm s−1). Hepatic intrinsic clearance was higher in mouse liver microsomes than in human (41 ± 19 vs. 7 ± 0.6 mL min−1 kg−1). Following oral dosing in mice (10 mg kg−1), Tmax was 30 min with a Cmax of 2781 ± 1033 ng mL−1. Oral bioavailability was low (15%). The validated method was successfully applied to in vitro and in vivo studies and will guide dosing in animal models of medulloblastoma. Full article
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15 pages, 3926 KB  
Article
Inactivation of PRMT5 by PARP Inhibitors Confers High Susceptibility in MTAP-Deficient Cancers
by Qi Liu, Yuling Sheng, Folan Lin, Haoyuan Tan, Yanyun Chang, Xiaopeng Lu, Hao Chen and Changzheng Du
Cancers 2026, 18(9), 1335; https://doi.org/10.3390/cancers18091335 - 22 Apr 2026
Viewed by 758
Abstract
Background: Methylthioadenosine phosphorylase (MTAP) deficiency caused by homozygous deletion is prevalent in solid tumors and contributes to malignant progression, thereby rendering cancer cells vulnerable to dysfunction of protein arginine methyltransferase 5 (PRMT5). This study aimed to investigate whether Poly (ADP-ribose) polymerase (PARP) inhibitors [...] Read more.
Background: Methylthioadenosine phosphorylase (MTAP) deficiency caused by homozygous deletion is prevalent in solid tumors and contributes to malignant progression, thereby rendering cancer cells vulnerable to dysfunction of protein arginine methyltransferase 5 (PRMT5). This study aimed to investigate whether Poly (ADP-ribose) polymerase (PARP) inhibitors could exploit this vulnerability through PRMT5 inactivation in MTAP-deficient tumors. Methods: PRMT5 activity was assessed in vitro and in vivo following PARP inhibitor treatment. The antitumor effects of PARP inhibitors alone or in combination with either the MTAP inhibitor MTDIA or the PRMT5 inhibitor EPZ015666 were evaluated in solid tumor models, including MTAP-deficient tumor models in vivo. Results: PARP inhibitors effectively inactivated PRMT5 in vitro and in vivo and exacerbated DNA double-strand breaks induced by PARP inhibition. Moreover, PARP inhibitors showed significant synergistic effects when combined with either MTDIA or EPZ015666 in solid tumor models. MTAP-deficient tumors exhibited increased vulnerability to olaparib in vivo, and combined treatment with olaparib plus MTDIA or EPZ015666 produced improved therapeutic outcomes compared with olaparib alone. Conclusions: These findings identify PARP inhibitors as a potential therapeutic strategy for MTAP-deficient tumors through targeted inactivation of PRMT5 and support further evaluation of PARP inhibitor-based combination therapies in this molecular context. Full article
(This article belongs to the Special Issue PARP Inhibitors in Cancers: 2nd Edition)
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14 pages, 1770 KB  
Article
Real-World Prevalence and Structural Validation of the Canonical 9p21 MTAP–CDKN2A/B Deletion in Non-NSCLC Solid Tumors
by Miran Han, Eunbyeol Lee, Ji Eun Shin, Minsuk Kwon, Jung Yong Hong, Seung Tae Kim, Soomin Ahn, Kyoung-Mee Kim, Jeeyun Lee and Sung Hee Lim
Cancers 2026, 18(6), 893; https://doi.org/10.3390/cancers18060893 - 10 Mar 2026
Viewed by 1331
Abstract
Background: Deletion of the MTAP gene at chromosome 9p21.3 defines a therapeutically actionable molecular subset of cancers due to synthetic lethal vulnerability to PRMT5 and MAT2A inhibition. The real-world prevalence and genomic context of MTAP deletion in diverse solid tumors remain incompletely [...] Read more.
Background: Deletion of the MTAP gene at chromosome 9p21.3 defines a therapeutically actionable molecular subset of cancers due to synthetic lethal vulnerability to PRMT5 and MAT2A inhibition. The real-world prevalence and genomic context of MTAP deletion in diverse solid tumors remain incompletely characterized. Methods: We retrospectively analyzed 579 solid tumor specimens subjected to next-generation sequencing-based copy-number profiling. The prevalence of MTAP deletion and its co-occurrence with CDKN2A and CDKN2B were evaluated, and genomic deletion patterns across chromosome 9 were systematically assessed. Results: MTAP deletion was detected in 14 cases (2.4%, 95% confidence interval [CI], 1.45–4.02%), with enrichment in sarcoma, pancreatic cancer, and urothelial carcinoma. Concurrent CDKN2A loss was observed in 92.9% of MTAP-deleted tumors, and 64.3% showed additional CDKN2B loss, indicating a coordinated focal deletion event at 9p21.3. Statistical analyses confirmed strong genomic associations between MTAP and neighboring tumor suppressor genes. Across the full cohort, deletion frequency peaked at the 9p21 locus, and among MTAP-deleted tumors, co-deletion frequency decreased with increasing genomic distance. All MTAP-deleted tumors were microsatellite stable and low tumor mutational burden (TMB-low). Conclusions: Our findings demonstrate that MTAP deletion is an infrequent but genomically coherent event in solid tumors, characterized by a canonical 9p21 co-deletion pattern. This real-world analysis underscores the importance of comprehensive genomic profiling to identify patients who may benefit from emerging MTAP-directed therapies. Full article
(This article belongs to the Section Molecular Cancer Biology)
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13 pages, 796 KB  
Review
Targeting PRMT5 in Adult T-Cell Leukemia/Lymphoma: Opportunities and Challenges
by Kyle Ernzen and Amanda R. Panfil
Viruses 2026, 18(1), 94; https://doi.org/10.3390/v18010094 - 9 Jan 2026
Viewed by 1154
Abstract
Adult T-cell leukemia/lymphoma (ATLL) is an aggressive T-cell malignancy caused by persistent infection with human T-cell leukemia virus type 1 (HTLV-1). ATLL remains difficult to treat despite intensive chemotherapy, antiviral therapy, and hematopoietic stem cell transplantation. The limited durability of current treatment strategies [...] Read more.
Adult T-cell leukemia/lymphoma (ATLL) is an aggressive T-cell malignancy caused by persistent infection with human T-cell leukemia virus type 1 (HTLV-1). ATLL remains difficult to treat despite intensive chemotherapy, antiviral therapy, and hematopoietic stem cell transplantation. The limited durability of current treatment strategies highlights the need for mechanism-based therapeutic approaches. Protein arginine methyltransferase 5 (PRMT5) is a type II arginine methyltransferase that regulates transcription, RNA splicing, DNA damage responses, and immune signaling through symmetric dimethylation of histone and non-histone substrates. PRMT5 is frequently overexpressed across hematologic and solid tumors. Preclinical studies indicate that PRMT5 expression is elevated during HTLV-1-mediated T-cell transformation and that pharmacologic inhibition of PRMT5 selectively impairs the survival and transformation of infected T cells in vitro and in vivo. In this review, we highlight the current understanding of PRMT5 biology in cancer, summarize preclinical studies supporting PRMT5 as a therapeutic target in ATLL, and discuss key challenges to future clinical translation. We also discuss emerging approaches such as rational combination therapies and tumor-selective PRMT5 inhibitors as potential paths toward treatment for ATLL. Full article
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16 pages, 379 KB  
Review
MTAP Deletion as a Therapeutic Vulnerability in Cancer: From Molecular Mechanism to Clinical Targeting
by Paweł Krawczyk and Kamila Wojas-Krawczyk
Int. J. Mol. Sci. 2025, 26(24), 11956; https://doi.org/10.3390/ijms262411956 - 11 Dec 2025
Cited by 4 | Viewed by 3822
Abstract
The MTAP (methylthioadenosine phosphorylase) gene, located on chromosome 9p21, plays a crucial role in the methionine salvage pathway and is frequently co-deleted with CDKN2A in various malignancies. Loss of MTAP expression leads to the accumulation of methylthioadenosine (MTA), which selectively inhibits protein arginine [...] Read more.
The MTAP (methylthioadenosine phosphorylase) gene, located on chromosome 9p21, plays a crucial role in the methionine salvage pathway and is frequently co-deleted with CDKN2A in various malignancies. Loss of MTAP expression leads to the accumulation of methylthioadenosine (MTA), which selectively inhibits protein arginine methyltransferase 5 (PRMT5) and creates a unique metabolic vulnerability in MTAP-deficient tumors. These alterations have emerged as promising therapeutic targets in precision oncology. Recent advances highlight the potential of exploiting MTAP loss through synthetic lethality approaches using PRMT5 and methionine adenosyltransferase 2A (MAT2A) inhibitors. Preclinical and early clinical data indicate that targeting these pathways can selectively impair tumor growth while sparing MTAP-proficient cells. Moreover, MTAP deletion has been associated with specific molecular and immunologic profiles that may influence treatment response and tumor microenvironment characteristics. This review summarizes current knowledge on the biological functions of MTAP, the mechanisms linking its loss to oncogenesis, and the evolving landscape of therapeutic strategies targeting MTAP-deficient cancers. Understanding these molecular dependencies offers novel opportunities for the development of precision-based therapies across diverse tumor types. Full article
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19 pages, 3511 KB  
Article
Enhancing CD8+ T Cells Infiltration Through the Protein Arginine Methyltransferase 5 (PRMT5)/CXCL10 Axis Restricts Cervical Cancer Progression
by Yongshuai Jiang, Yingying Wei, Ziyang Li, Zhenghang Huang, Junsheng Dong, Weijuan Gong and Li Qian
Biomolecules 2025, 15(12), 1717; https://doi.org/10.3390/biom15121717 - 10 Dec 2025
Cited by 1 | Viewed by 1209
Abstract
PRMT5, a type II methyltransferase catalyzing symmetric dimethylation of arginine residues, has emerged as a promising therapeutic target in various cancers. However, the precise mechanism by which PRMT5 mediated the tumor immune microenvironment, particularly CD8+ T cell recruitment in cervical cancer remains [...] Read more.
PRMT5, a type II methyltransferase catalyzing symmetric dimethylation of arginine residues, has emerged as a promising therapeutic target in various cancers. However, the precise mechanism by which PRMT5 mediated the tumor immune microenvironment, particularly CD8+ T cell recruitment in cervical cancer remains elusive. Analysis of data from The Cancer Genome Atlas (TCGA) revealed elevated PRMT5 mRNA levels in cervical cancer tissues, which correlated with reduced immune cell infiltration and poorer patient prognosis. To further investigate the role of PRMT5 in tumor development, a CD8 knockout (KO) mouse tumor model was utilized. Significant inhibition of tumor growth was observed in cervical cancer using a mouse model lacking PRMT5. Notably, this antitumor effect was attenuated in CD8 KO mice lacking functional CD8+ T cells. Mechanistically, RNA sequencing (RNA-seq) analysis was conducted to explore how PRMT5 regulates immune cell recruitment. Disruption of PRMT5 was found to increase the secretion of chemokine CXCL10 by tumor cells. CXCL10 binds to its receptor CXCR3, thereby recruiting T cells to the tumor. Furthermore, in CXCR3 KO mice, PRMT5 knockdown failed to enhance T cell infiltration into tumors. These findings indicate that PRMT5 knockdown promotes CD8+ T cell recruitment to the tumor microenvironment via CXCL10 signaling. Furthermore, the therapeutic efficacy of the selective PRMT5 inhibitor EPZ015666 was evaluated in a cervical cancer xenograft mouse model. Treatment with EPZ015666 effectively suppressed tumor growth. In summary, these findings elucidate a novel mechanism whereby PRMT5 depletion in cervical cancer cells triggers a CXCL10-mediated chemotactic response, enhancing CD8+ T cell infiltration and restricting tumor progression. Thus, our study provides compelling evidence supporting the potential targeting of PRMT5 as a viable immunotherapeutic strategy for cervical cancer. Full article
(This article belongs to the Section Molecular Medicine)
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30 pages, 1489 KB  
Review
MTAP-Null Tumors: A Comprehensive Review on Synthetic Vulnerabilities and Therapeutic Strategies
by Bavani Subramaniam, Wai Chin Chong, Aylar Babaei, Miriam Bornhorst, Chunchao Zhang, Roger Packer and Javad Nazarian
Cells 2025, 14(24), 1964; https://doi.org/10.3390/cells14241964 - 10 Dec 2025
Cited by 4 | Viewed by 2945
Abstract
Homozygous deletion of the 9p21.3 genomic locus spanning the CDKN2A/B and MTAP genes is an event affecting 15% of cancers. While CDKN2A is a well-established tumor suppressor gene, the role of MTAP in tumorigenesis varies across cancer types. MTAP codes for methylthioadenosine phosphorylase, [...] Read more.
Homozygous deletion of the 9p21.3 genomic locus spanning the CDKN2A/B and MTAP genes is an event affecting 15% of cancers. While CDKN2A is a well-established tumor suppressor gene, the role of MTAP in tumorigenesis varies across cancer types. MTAP codes for methylthioadenosine phosphorylase, a key enzyme in the methionine salvage pathway, and its loss has been associated with several downstream synthetic vulnerabilities. Despite multiple efforts to exploit MTAP loss for targeted therapies, none of these efforts have yielded substantial results in clinical trials. In this review, we consolidate the existing literature along with our systematic analysis to provide an updated perspective on the incidence of MTAP loss in different cancers and elucidate its impact on metabolism, immune microenvironment, and tumor progression. In addition, we summarize the therapeutic strategies that have been investigated preclinically on MTAP-null tumors before and after the advent of functional genomic screening tools. We further assess the current landscape of clinical trials investigating MTAP-targeted inhibitors, evaluating their limitations and potential avenues for improvement. The insights gained from this review will inform future research directions beyond the promising PRMT5/MAT2A axis for rational combination therapies that would work synergistically to eradicate this devastating disease. Full article
(This article belongs to the Section Cellular Metabolism)
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13 pages, 1636 KB  
Article
The Identification of a Sub-Micromolar Peptide-Based Protein Arginine Methyltransferase 1 (PRMT1) Inhibitor from a Plate-Based Screening Assay
by Tina M. Sawatzky, Sarah A. Mann, Jordan Shauna Tucker, Aida A. Bibart, Corey P. Causey and Bryan Knuckley
Biomolecules 2025, 15(11), 1494; https://doi.org/10.3390/biom15111494 - 23 Oct 2025
Cited by 1 | Viewed by 1778
Abstract
Post-translational modifications (PTMs) expand the structural diversity of proteins beyond the standard amino acids, influencing protein-protein interactions. Protein methylation, a prevalent PTM, involves the transfer of methyl groups from S-adenosylmethionine (SAM) to lysine and arginine residues. Arginine methylation is catalyzed by the Protein [...] Read more.
Post-translational modifications (PTMs) expand the structural diversity of proteins beyond the standard amino acids, influencing protein-protein interactions. Protein methylation, a prevalent PTM, involves the transfer of methyl groups from S-adenosylmethionine (SAM) to lysine and arginine residues. Arginine methylation is catalyzed by the Protein Arginine Methyltransferase (PRMT) family to yield mono- and dimethylarginine forms. PRMT1, the isozyme responsible for the majority of asymmetric dimethylation (ADMA) is implicated in various diseases, including cancer. Here, we report the synthesis and screening of a second-generation peptide library to identify novel PRMT1 substrates. The library, based on histone peptides, incorporated varying sequences of amino acids, facilitating substrate specificity studies. Screening identified 7 peptide sequences as exceptional PRMT1 substrates, which were confirmed by kinetic analysis. Consensus sequences revealed key recognition elements for PRMT1 catalysis, suggesting roles for small non-polar side chains and specific residues near the substrate arginine. Furthermore, we developed a peptide-based PRMT1 inhibitor by substituting the substrate arginine with a chloroacetamidine warhead. The inhibitor exhibited sub-micromolar inhibitory potency against PRMT1, surpassing previous peptide-based inhibitors. Our findings contribute to understanding PRMT1 substrate specificity and provide a scaffold for developing potent inhibitors targeting PRMT1 in diseases, including cancer. Full article
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26 pages, 644 KB  
Review
Therapeutic Targeting of Protein Lysine and Arginine Methyltransferases: Principles and Strategies for Inhibitor Design
by Isaac Micallef and Byron Baron
Int. J. Mol. Sci. 2025, 26(18), 9038; https://doi.org/10.3390/ijms26189038 - 17 Sep 2025
Cited by 3 | Viewed by 2645
Abstract
Standard cancer chemotherapy is increasingly being supplemented with novel therapeutics to overcome known chemoresistance pathways. Resistance to treatment is common across various tumour types, driven by multiple mechanisms. One emerging contributor is protein methylation, a post-translational modification mediated by protein methyltransferases (PMTs), which [...] Read more.
Standard cancer chemotherapy is increasingly being supplemented with novel therapeutics to overcome known chemoresistance pathways. Resistance to treatment is common across various tumour types, driven by multiple mechanisms. One emerging contributor is protein methylation, a post-translational modification mediated by protein methyltransferases (PMTs), which regulate protein function by adding methyl groups, mainly on lysine and arginine residues. Dysregulation of protein lysine methyltransferases (PKMTs) and protein arginine methyltransferases (PRMTs) has been linked to cancer progression and drug resistance, making them attractive therapeutic targets. Consequently, several small-molecule PMT inhibitors have been developed, with some progressing to clinical trials. However, many candidates showing promise in preclinical studies fail to demonstrate efficacy or safety in later stages, limiting clinical success. This gap highlights the need to rethink current approaches to PMT inhibitor design. A deeper understanding of PMT mechanisms, catalytic domains, and their roles in chemoresistance is essential for creating more selective, potent, and clinically viable inhibitors. This review will summarise major chemoresistance pathways and PMTs implicated in cancer, then explore current and prospective PMT inhibitor classes. Building on mechanistic insights, we propose strategies to develop next-generation inhibitors with improved therapeutic potential against chemoresistant cancers. Full article
(This article belongs to the Special Issue Protein Methyltransferases in Human Health and Diseases)
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24 pages, 4860 KB  
Review
Targeting PRMT5: Current Inhibitors and Emerging Strategies for Therapeutic Intervention
by Zhihang Shen and Chenglong Li
Processes 2025, 13(9), 2878; https://doi.org/10.3390/pr13092878 - 9 Sep 2025
Cited by 5 | Viewed by 7403
Abstract
Epigenetic dysregulation is a hallmark of tumorigenesis, with arginine methylation—a post-translational modification—emerging as a key regulatory mechanism in cancer biology. This modification, catalyzed by protein arginine methyltransferases (PRMTs), influences critical cellular processes, including proliferation, differentiation, transcription, RNA splicing, DNA repair, and immune signaling. [...] Read more.
Epigenetic dysregulation is a hallmark of tumorigenesis, with arginine methylation—a post-translational modification—emerging as a key regulatory mechanism in cancer biology. This modification, catalyzed by protein arginine methyltransferases (PRMTs), influences critical cellular processes, including proliferation, differentiation, transcription, RNA splicing, DNA repair, and immune signaling. Among the PRMT family, PRMT5 has garnered significant attention due to its elevated expression across various solid tumors and hematological malignancies, and its strong association with poor clinical outcomes. Notably, PRMT5 exhibits a unique vulnerability in methyl-thio-adenosine phosphorylase (MTAP)-deficient cancers, making it an attractive therapeutic target. Recent advances have led to the development of several PRMT5 inhibitors with diverse binding modes, some of which have progressed into clinical trials for advanced cancers. This review provides a structural and mechanistic overview of PRMT5, summarizes current inhibition strategies, and discusses the challenges and future directions in targeting PRMT5 for cancer therapy. Full article
(This article belongs to the Special Issue Pharmaceutical Development and Bioavailability Analysis, 2nd Edition)
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