Cancer Discovery
● American Association for Cancer Research (AACR)
All preprints, ranked by how well they match Cancer Discovery's content profile, based on 66 papers previously published here. The average preprint has a 0.09% match score for this journal, so anything above that is already an above-average fit. Older preprints may already have been published elsewhere.
Roger, E.; Mummey, H. M.; Zimmer, E.; Srinivasan, D.; Härle, A.; Moubri, L.; Beutel, A. K.; Singh, R.; Ekizce, M.; Melzer, M. K.; Lee, Y.; Silva, A.; Härle, L.; Engleitner, T.; Arnold, F.; Morawe, M.; Naggay, B.; Schneider, J.; Gilberg, L.; Mosler, J. P.; Ludwig, C.; Meng, C.; Hirschenberger, M.; Hunszinger, V.; Kluck, K.; Kirchner, M.; Volckmar, A.-L.; Wirth, M.; Alhamdani, M. S. S.; Hoheisel, J. D.; Löhr, J.- M.; Seufferlein, T.; Abaei, A.; Kemkemer, R.; Rad, R.; Budczies, J.; Mulaw, M.; Hermann, P. C.; Hänle, M.; Sparrer, K. M.; Halbrook, C. J.; Gaulton, K. J.; Steinestel, K.; Stenzinge
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The tumor microenvironment (TME) actively contributes to pancreatic ductal adenocarcinoma (PDAC) pathogenesis through dynamic bidirectional tumor-stroma interactions. Here, we demonstrate that homologous recombination-defective (HRD) tumor epithelium reprograms the TME in a genotype-specific manner to enhance cancer aggressiveness. Using genetically engineered mouse models, pancreatic stellate cell (PSC) and cancer-associated fibroblast (CAF) co-culture systems, single-nucleus multiomics, and human PDAC models, we show that tumoral loss of ATM serine/threonine kinase drives CAFs toward SMA+ myofibroblastic differentiation, independently of P53 status. These myCAFs, in turn, promote cancer aggressiveness and chemoresistance. Mechanistically, ATM deficiency increases reactive oxygen species and contractility signaling, enhancing TGF-{beta}1 secretion. Pharmacological TGF-{beta} inhibition reverses myCAF differentiation, sensitizes tumors to chemotherapy, and impairs tumor progression in both murine and human ATM-null models. Our findings reveal that ATM-deficient tumors shape a cancer-promoting niche via TGF-{beta} signaling and identify dual targeting of intrinsic and extrinsic vulnerabilities as a promising precision oncology strategy. SIGNIFICANCEHRD pancreatic cancers reprogram the tumor microenvironment in a genotype-specific manner through TGF-{beta}-driven myCAF-enrichment. Targeting this stromal axis alongside platinum-based chemotherapy improves therapeutic efficacy in ATM-deficient models. These findings highlight the need to integrate epithelial genotype and stromal context for truly personalized treatment strategies in PDAC.
Baselli, G. A.; Alekseenko, A.; Liano-Pons, J.; Sinanis, L.; Rrapaj, E.; Arsenian-Henriksson, M.; Pelechano, V.
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Phenotypic plasticity allows cancer cells to evade therapy, yet the transient nature of state transitions has made their molecular drivers difficult to define. Here, we present a single-cell framework that leverages the temporal delays between mRNA and protein accumulation to directly capture cells undergoing phenotypic switching. Applying this strategy to the K562 leukemia model, which alternates between CD24- and stem-like CD24+ states, we identify transitioning cells and derive a transcriptional signature linking cell-cycle progression and mitochondrial remodeling to plasticity. Genome-wide CRISPR screening confirms key regulators of plasticity, including BCR-ABL1 and mitochondrial homeostasis genes. We summarize the transition-associated program into a score that predicts imatinib response in chronic myeloid leukemia, stratifies survival in acute myeloid leukemia, and retains prognostic value across 31 TCGA tumor types. Spatial transcriptomics reveals localized plasticity hotspots in solid tumors. Together, this framework exposes the molecular basis of cancer plasticity and enables its quantification across tumors.
Dorbin, D.; Herrera, J.; Davidson, R.; Chandrashekar, N. K.; Scheuber, G.; Jayakrishnan, P.; Rajesh, C.; Johnson, G.; Yuan, J.; Sochor, M.; Langenheim, J. F.; Aldakkak, M.; Messerly, C.; Wittmann, J.; Szabo, A.; Sayahpour, F. A.; Atallah, N. L.; Peterson, F. C.; Volkman, B. F.; Ali, M.; Ke, E.; Evans, D. B.; Tsai, S.; Lytle, N. K.; Seo, Y. D.; Kurzrock, R.; Hobbs, G. A.; Kamgar, M.; McFall, T.
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Clinical-grade RAS inhibitors raise an unresolved question as to whether KRAS-alleles impose constraints on adaptive resistance that can be exploited therapeutically. Using daraxonrasib (RMC-6236), a multi-selective RAS(ON) inhibitor, we compared resistance mechanisms between KRASG12D and KRASG12R, alleles with fundamentally different RAS network dynamics. Daraxonrasib inhibited KRASMUT primarily through steric occlusion of effector binding, while engaging RASWT only modestly ([~]20%). KRASG12R is marked by its inability to transactivate RASWT, and it was observed that daraxonrasib resistant KRASG12R PDAC cells utilize EGFR/RASWT-GTP signaling as the dominant adaptive route. In contrast, KRASG12D resistance arose through retained KRASG12D-GTP signaling, with a decrease of cyclophilin A (CypA) protein, the binding partner required for daraxonrasib activity. The shift from KRASG12R dependence to the EGFR/RASWT conferred sensitivity to trametinib. We confirmed this clinically: a KRASG12R PDAC patient who progressed after 10 months on daraxonrasib showed intratumoral EGFR/RASWT activation, and rapid 3D-bioprinted patient-derived toroid modeling predicted sensitivity to trametinib-based combination therapy. Given the aggressive disease trajectory and lack of response to the two immediately preceding lines of therapy, sixth-line trametinib-based combination therapy achieved approximately 5 months of disease control. This patient ultimately achieved 40 months of overall survival, far exceeding the 8-12 month median for metastatic PDAC. Collectively, these data establish a framework in which allele-specific RAS network topology dictates the adaptive resistance landscape, enabling rational selection of targeted therapies with meaningful clinical benefit in metastatic PDAC. STATEMENT OF SIGNIFICANCEDaraxonrasib resistance mechanisms have allele-specific routes: CypA becomes downregulated in KRASG12D and reliance on EGFR/RASWT in KRASG12R. Rapid patient-derived toroids identified sixth-line targeted therapy strategies with an overall survival of 40 months.
Nussbaum, D. P.; Martz, C. A.; Waters, A. M.; Barrera, A.; Rutter, J. C.; Cerda-Smith, C. G.; Stewart, A. E.; Wu, C.; Cakir, M.; Levandowski, C. B.; Kantrowitz, D. E.; McCall, S. J.; Pierobon, M.; Petricoin, E.; Smith, J. J.; Reddy, T. E.; Der, C. J.; Taatjes, D. J.; Wood, K. C.
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Acquired resistance remains a major challenge for therapies targeting oncogene activated pathways. KRAS is the most frequently mutated oncogene in human cancers, yet strategies targeting its downstream signaling kinases have failed to produce durable treatment responses. Here, we developed multiple models of acquired resistance to dual-mechanism ERK/MAPK inhibitors across KRAS-mutant pancreatic, colorectal, and lung cancers, and then probed the long-term events enabling survival against this novel class of drugs. These studies revealed that resistance emerges secondary to large-scale transcriptional adaptations that are diverse and tumor-specific. Transcriptional reprogramming extends beyond the well-established early response, and instead represents a dynamic, evolved population-level process that is refined to attain a stably resistant phenotype. Mechanistic and translational studies reveal that resistance to dual-mechanism ERK/MAPK inhibition is broadly susceptible to manipulation of the epigenetic machinery, and that Mediator kinase, in particular, can be co-targeted at a bottleneck point to prevent diverse, tumor-specific resistance programs.
Min, J.; Schweizer, L.; Zonderland, G.; Selvanesan, B. C.; Oldenburg, L.; Bae, S.-W.; Kim, B. J.; Swanson, B. J.; Klute, K. A.; Caffrey, T. C.; Grandgenett, P. M.; Hollingsworth, M. A.; Ummat, I.; Strauss, M. T.; Mund, A.; Maitra, A.
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Pancreatic ductal adenocarcinoma (PDAC) evolves through non-invasive precursor lesions, yet its earliest molecular events remain unclear. We established the first spatially resolved proteomic atlas of these lesions using Deep Visual Proteomics (DVP). AI-driven computational pathology classified normal ducts, acinar-ductal metaplasia (ADM), and pancreatic intraepithelial neoplasia (PanIN) from cancer-free organ donors (incidental, "iPanINs") and PDAC patients (cancer-associated, "cPanINs"). Laser microdissection of 96 discrete regions containing as few as 100 phenotypically matched cells and ultrasensitive mass spectrometry quantified a total of 8,512 proteins from formalin-fixed tissues. Distinct molecular signatures stratifying cPanINs from iPanINs, and remarkably, many cancer-associated proteins already marked histologically normal epithelium. Four core programs - stress adaptation, immune engagement, metabolic reprogramming, mitochondrial dysfunction - emerged early and intensified during progression. By integrating DVP with AI-guided tissue annotation, we demonstrate that molecular reprogramming precedes histological transformation, creating opportunities for earlier detection and interception of a near-uniformly lethal cancer. SignificanceOur spatially-resolved proteomics atlas uncovers distinct molecular signatures in pancreatic cancer adjacent precursor lesions, clearly diverging from those in incidental, cancer-free pancreatic lesions. Our deep proteomics dataset offers a valuable resource for identifying novel biomarkers and therapeutic targets, informed by the earliest cancer-associated molecular events in archival pancreatic tissues.
Bae, S.; Ohn, J.; Choi, H.; Lee, H. S.; Kim, B.; Kang, C. H.; Kim, H. J.; Na, K. J.; Kim, B. H.
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PurposeResidual ESCC after neoadjuvant CCRT reflects incomplete treatment response and carries a high risk of recurrence. We sought to define the spatial tumor microenvironmental features of CCRT-resistant residual ESCC -- using tumor regression grade (TRG) 2-3 tumors as a model of poor pathologic response -- with mechanistic refinement at single-cell resolution and outcome assessment in internal and external cohorts. Experimental DesignWe profiled post-CCRT ESCC tissue microarray (TMA) cores by Visium FFPE whole-transcriptome spatial transcriptomics and orthogonal Xenium single-cell-resolution in situ profiling on serial sections from the same TMA blocks. Spot-level cell-type composition was inferred by CellDART deconvolution against a published ESCC single-cell RNA sequencing (scRNAseq). Local malignant-cell-enriched regions were defined by CancerFinder. We additionally re-analyzed the scRNAseq dataset to characterize SPP1 and CXCL5 macrophage states and their ligand-receptor signaling using CellChat. Outcome associations were evaluated in the SNUH cohort and externally tested in the TCGA ESCC cohort. ResultsTRG 2-3 residual tumors exhibited effector immune-cell exclusion from malignant-cell-enriched regions, SPP1/CXCL5 macrophage accumulation, microvascular rarefaction, and proliferative-metabolic reprogramming. Single-cell re-analysis confirmed that CXCL5 macrophages constitute a transcriptional subset of the broader SPP1 macrophage population. CellChat showed that SPP1 macrophages dominantly signal through SPP1-CD44 and SPP1-integrin axes to stromal and epithelial targets, and additionally engage immunosuppressive NECTIN2-TIGIT, CD86-CTLA4, and LGALS9-HAVCR2 programs with CD8 T cells, providing a mechanistic context for local immune exclusion. Visium LIANA and Xenium distance-gradient profiling localized SPP1-associated signaling preferentially to tumor cells and CAFs. Higher SPP1 expression and lower endothelial abundance were associated with shorter disease-free survival in the SNUH cohort. Higher SPP1 expression was also associated with shorter disease-free survival in the independent TCGA ESCC cohort. ConclusionsCCRT-resistant residual ESCC is characterized by a spatially organized tumor microenvironmental niche centered on SPP1-associated macrophage programs and microvascular rarefaction. These spatially resolved findings identify candidate macrophage- and vasculature-targeted axes for overcoming treatment resistance. Translational RelevancePatients with esophageal squamous cell carcinoma (ESCC) who harbor residual disease after neoadjuvant chemoradiotherapy (CCRT) remain at high risk of recurrence, yet the spatial biology of this resistant residual state has been poorly defined. Here, we combine Visium whole-transcriptome and Xenium single-cell-resolution spatial transcriptomics with single-cell RNA-seq re-analysis and external TCGA context to define the tumor microenvironmental architecture of CCRT-resistant residual ESCC. The resistant niche is characterized by effector immune-cell exclusion from malignant-cell-enriched regions, accumulation of SPP1/CXCL5 macrophage programs that signal to tumor cells and cancer-associated fibroblasts through SPP1-CD44 and SPP1-integrin axes, microvascular rarefaction, and proliferative-metabolic reprogramming. These findings define a coordinated spatial tumor microenvironmental signature of CCRT-resistant residual ESCC and nominate macrophage-tumor/stromal interactions and vascular injury as biologic axes that may help guide future strategies to overcome treatment resistance.
Nadorp, B.; Lasry, A.; Loghavi, S.; Patel, R.; Mansour, H.; Kelly, B. J.; Walker, C. J.; Buss, J.; Boateng, I.; Al-Santli, W.; Ciantra, Z.; Austin, R.; Heyrosa, A.; Desai, H.; Laganson, A.; Abaza, H.; Procell, L.; Patel, T.; Kaffenberger, B.; Wijeratne, S.; Guillamot, M.; Velegraki, M.; Chiriboga, L.; Li, Z.; Abruzzo, L.; Pollyea, D.; McMahon, C.; Shanaah, A.; Byrd, J.; Shih, A.; Levine, R.; Papapetrou, E.; Tsirigos, A.; Mardis, E.; Mims, A.; Aifantis, I.; Eisfeld, A.-K.
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Myeloid sarcoma, an aggressive extramedullary subtype of acute myeloid leukemia (AML), occurs in [~]10% of patients, and has not yet been included in large-scale genomic studies. The critical biological changes that drive tumor evolution are unknown, its detection in asymptomatic patients remains a clinical challenge, and treatment options are limited as patients are often excluded from clinical trials, rendering it a neglected disease entity. Based on comprehensive multi-omic profiling, we demonstrate that myeloid sarcoma evolves from medullary AML with distinct sitespecific clonal evolution patterns. Additionally, we show that circulating tumor DNA sequencing can serve as a non-invasive method for molecular profiling of myeloid sarcoma, offering a novel avenue in molecular diagnostics. We characterize unique transcriptional profiles of myeloid sarcoma, reflecting immune evasion and adaptation to an extramedullary microenvironment. We provide evidence for a key role of RAS pathway activation and demonstrate in murine models of myeloid sarcoma that RAS inhibition effectively reduces tumor burden. Overall, our data highlight key differences between medullary AML and myeloid sarcoma including universal molecular evolution and RAS pathway activation as hallmarks of the disease and nominate RAS inhibition as a promising therapeutic strategy for patients with myeloid sarcoma.
Lu, M.-J.; Busquets, J.; Impedovo, V.; Chang, Y.-T.; Matsui, W.; Tiziani, S.; Cambronne, X. A.
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SLC25A51 imports oxidized NAD+ into the mitochondrial matrix and is required for sustaining oxidative metabolism in human mitochondria. We observed that higher expression of SLC25A51 correlated with poorer survival in Acute Myeloid Leukemia (AML) patient data. Given AMLs dependency on oxidative cell metabolism, we sought to determine the role SLC25A51 may serve in this disease. We found that depleting SLC25A51 in AML cells led to increased apoptosis, as well as prolonged survival in a xenograft model. Metabolic flux analyses indicated that depletion of SLC25A51 shunted flux away from oxidative pathways and promoted glutamine utilization for reductive carboxylation to support aspartate production. Consequently, SLC25A51 loss sensitized AML cells to glutamine deprivation and glutaminase inhibitor CB-839. Together, the work highlights connections between SLC25A51 and oxidative mitochondrial flux in AML. We identified a rationale for targeting SLC25A51 in myeloid cancers with potential for a therapeutic window, especially when coupled with glutaminase inhibition. Statement of significanceThis investigation describes an approach to directly modulate the tricarboxylic acid cycle as a potential vulnerability in oxidative tumors. Using AML models, the work is an inaugural look into SLC25A51s role supporting oxidative mitochondrial metabolism and identifies SLC25A51 levels as a potential marker for stratification of AML.
Brakefield-Laird, L.; Budhraja, A.; Hall, P. M.; brewington, d.; Moore, J.; lott, j.; Ni, Y.; Voronin, D.; Grant-Chapman, O.; Mukiza, T.; Wright, T.; Wang, Y.-D.; Radko-Juettner, S.; Pruett-Miller, S.; Pounds, S.; Vogel, P.; Opferman, J. T.
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MCL-1 (myeloid cell leukemia-1) promotes survival and confers therapeutic resistance in acute myeloid leukemia (AML), particularly in high-risk subtypes harboring KMT2A rearrangements (KMT2A-r). Clinical trials of patients with hematological malignancies treated with MCL-1 inhibitor monotherapy have revealed dose-limiting toxicity and poor response rates. Therefore, we sought to identify combinatorial treatment approaches to enhance the efficacy of MCL-1 inhibitors with the goal of improving response rates and limiting toxicities. Here, we report the inhibition of electron transport chain (ETC) complex I (CI) function as a synthetic lethal partner for MCL-1 inhibition. Co-targeting CI and MCL-1 synergistically reduces the viability in AML cell lines and patient-derived xenograft (PDX) samples in vitro, while significantly prolonging survival in mice bearing PDX AML, indicating the preclinical potential for combinatorial therapy. These findings provide a mechanistic rationale and preclinical evidence for dual inhibition of MCL-1 and CI as a therapeutic strategy, offering a potential path to overcome resistance to single-agent MCL-1 inhibitors and improve outcomes for patients with high-risk AML. Mechanistically, we reveal that CI inhibition induces the activation of the integrated stress response (ISR), resulting in ATF4 activation downstream of the eIF2 kinase, HRI. The activation of HRI by CI inhibition is dependent on the mitochondrial stress messenger, DELE1. Together, these results indicate that co-inhibition of MCL-1 and ETC CI function has the potential for improving responses in patients with KMT2A-r AML.
Braxton, A. M.; Kiemen, A. L.; Grahn, M. P.; Forjaz, A.; Babu, J. M.; Zheng, L.; Jiang, L.; Cheng, H.; Song, Q.; Reichel, R.; Graham, S.; Damanakis, A. I.; Fischer, C. G.; Mou, S.; Metz, C.; Granger, J.; Liu, X.-D.; Bachmann, N.; Almagro-Perez, C.; Jiang, A. C.; Yoo, J.; Kim, B.; Du, S.; Foster, E.; Hsu, J. Y.; Rivera, P. A.; Chu, L. C.; Liu, F.; Niknafs, N.; Fishman, E.; Yuille, A.; Roberts, N. J.; Thompson, E. D.; Scharpf, R. B.; Cornish, T. C.; Jiao, Y.; Karchin, R.; Hruban, R. H.; Wu, P.-H.; Wirtz, D.; Wood, L. D.
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Pancreatic intraepithelial neoplasia (PanIN) is a precursor to pancreatic cancer and represents a critical opportunity for cancer interception. However, the number, size, shape, and connectivity of PanINs in human pancreatic tissue samples are largely unknown. In this study, we quantitatively assessed human PanINs using CODA, a novel machine-learning pipeline for 3D image analysis that generates quantifiable models of large pieces of human pancreas with single-cell resolution. Using a cohort of 38 large slabs of grossly normal human pancreas from surgical resection specimens, we identified striking multifocality of PanINs, with a mean burden of 13 spatially separate PanINs per cm3 of sampled tissue. Extrapolating this burden to the entire pancreas suggested a median of approximately 1000 PanINs in an entire pancreas. In order to better understand the clonal relationships within and between PanINs, we developed a pipeline for CODA-guided multi-region genomic analysis of PanINs, including targeted and whole exome sequencing. Multi-region assessment of 37 PanINs from eight additional human pancreatic tissue slabs revealed that almost all PanINs contained hotspot mutations in the oncogene KRAS, but no gene other than KRAS was altered in more than 20% of the analyzed PanINs. PanINs contained a mean of 13 somatic mutations per region when analyzed by whole exome sequencing. The majority of analyzed PanINs originated from independent clonal events, with distinct somatic mutation profiles between PanINs in the same tissue slab. A subset of the analyzed PanINs contained multiple KRAS mutations, suggesting a polyclonal origin even in PanINs that are contiguous by rigorous 3D assessment. This study leverages a novel 3D genomic mapping approach to describe, for the first time, the spatial and genetic multifocality of human PanINs, providing important insights into the initiation and progression of pancreatic neoplasia.
Yu, D.-M.; Lee, E.; Starrett, G. J.; Zhai, Z.; Dowell, E.; Walsh, K.; Day, A. T.; Palsgrove, D.; Bishop, J.; Marchione, D.; Asgari, M.; Chung, S. S.; High, W.; Teng, J.; Wissell, J.; Wilky, B.; Dlass, D.; Hosler, G. A.; Wang, R. C.
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Despite extensive sequencing, the genetic etiology of sporadic angiosarcoma remains poorly defined (1-3). Maffucci syndrome, characterized by vascular tumors and elevated cancer risk, is driven by mosaic gain-of-function mutations in IDH1/2 (4,5), though these have not been reported in sporadic angiosarcoma. We identify recurrent, low-variant allele frequency hotspot mutations in IDH1/2 in over half of sporadic angiosarcomas. Mutations were validated by Sanger sequencing and immunohistochemistry. Mutant IDH1 endothelial cells promote tumorigenesis through non-cell-autonomous mechanisms, secreting 2-hydroxyglutarate (2-HG) to increase growth factor and endothelial-to-mesenchymal transition gene expression, activate pAkt/pERK signaling, induce DNA methylation changes, and promote anchorage-independent growth, which are reversed by the mutant IDH1 inhibitor ivosidenib. Patients with mosaic IDH1 mutations show reduced serum 2-HG and marked tumor regression following ivosidenib treatment. The clinical efficacy of ivosidenib in vascular tumors with subclonal IDH1 mutations suggests that low VAF IDH1/2 mutations may be a targetable vulnerability in sporadic angiosarcoma. (6,7) Statement of SignificanceWe identify recurrent, low-VAF IDH1/2 mutations in angiosarcoma and provide evidence that these subclonal mutations promote tumorigenesis through non-cell-autonomous mechanisms. Vascular tumors driven by subclonal IDH1 mutations responded dramatically to ivosidenib, thus revealing a novel treatment for a subset of vascular tumors.
Wan, L.; Lin, K.-T.; Rahman, M. A.; Wang, Z.; Jensen, M. A.; Park, Y.; Tuveson, D. A.; Krainer, A. R.
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The gene encoding KRAS GTPase is recurrently mutated in pancreatic ductal adenocarcinoma (PDAC), triggering the formation of precursor lesions, i.e., acinar-to-ductal metaplasia (ADM) and pancreatic intraepithelial neoplasia (PanIN). However, the majority of pancreatic cells from KC (LSL-KrasG12D/+; Pdx-1-Cre) mice expressing the KrasG12D mutation remain morphologically normal for a long time, suggesting the existence of compensatory feedback mechanisms that buffer aberrant KrasG12D signaling, and that additional steps are required for disrupting cell homeostasis and promoting transformation. Here we report a feedback mechanism in which the ubiquitously expressed splicing factor SRSF1--which is associated with cell transformation in multiple cell types--is downregulated in the majority of morphologically normal pancreas cells with the KrasG12D mutation. Conversely, increasing SRSF1 expression disrupts cell homeostasis by activating MAPK signaling, in part by regulating alternative splicing and mRNA stability of interleukin 1 receptor type 1 (Il1r1). This disruption in homeostasis in turn accelerates KrasG12D-mediated PDAC initiation and progression. Our results demonstrate the involvement of SRSF1 in the pancreatic-cell homeostatic response against the KrasG12D mutation, dysregulation of which facilitates PDAC initiation. One-Sentence SummarySplicing factor SRSF1 is involved in KRASG12D feedback regulation and pancreatic-cancer tumorigenesis.
Mamdouh, A. M.; Lim, F. Q.; Mi, Y.; Olesinski, E. A.; Chan, C. G. T.; Jasdanwala, S.; Lin, X. X.; Wang, Y.; Tan, J. Y. M.; Bhatia, K. S.; Sapozhnikova, V.; Wang, C.; Mahesh, A. N.; Tan, D. E. L.; Chitkara, N.; Mertins, P.; Hogdal, L.; Brown, B. D.; Haferlach, T.; Lobry, C.; Lindsley, C.; Puissant, A.; Ho, H. K.; Das, S.; Letai, A.; Kornblau, S. M.; Krönke, J.; Ayoub, E.; Itahana, K.; Andreeff, M.; Bhatt, S.
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TP53 mutations across multiple cancers, including acute myeloid leukemia (AML), are associated with poor outcomes irrespective of treatment modality. However, druggable vulnerabilities beyond canonical p53 targets remain largely unexplored. We identify BIRC5 (encodes survivin), an inhibitor of the apoptosis protein (IAP) family, as a novel vulnerability in TP53 mutant AML using an unbiased, comprehensive multiomics approach -- whole-genome CRISPR knockout screen, bulk and single-cell RNA-seq, proteomics, and high-throughput drug screen. Mechanistically, BIRC5 deletion in AML restored caspase-9 and -3/7 activity and downregulated other IAPs, implicating BIRC5 as the central post-mitochondrial regulator for blocking apoptosis. p53 stabilization suppressed BIRC5 selectively in TP53 wild-type AML, explaining BIRC5 upregulation in TP53 mutant lines and AML primary tumors (n > 700). Longitudinal single-cell RNAseq (n = 22 pairs) revealed expansion of BIRC5high stem and progenitor leukemia clones in TP53 mutant AML patients post-VenAza therapy. Survivin and IAP inhibitors emerged as top combination partners with VenAza in TP53 mutant AML cells and showed potent in vivo leukemic blast inhibition in cell line and patient-derived xenograft models along with primary tumors. Beyond AML, BIRC5 was upregulated broadly across 17 of 25 TP53 mutant cancers in the TCGA cohort, and combination with survivin inhibitors overcame chemotherapy resistance in TP53 deficient triple negative breast and colorectal cancers. These findings define BIRC5 as a critical, targetable dependency and unveil survivin/IAP inhibition as a promising therapeutic axis to overcome p53-related resistance across both hematologic and solid malignancies. Key PointsO_LIBIRC5 upregulation is a novel dependency in TP53 mutant AML that mediates therapy resistance by evasion of apoptosis. C_LIO_LICombination with Survivin/IAP inhibitors overcomes venetoclax/azacitidine resistance in TP53 mutant AML. C_LI
Singhal, A.; Ryan, K.; Rose, S.; Styers, H.; Kim, J.; Pasnuri, N.; Moore, A.; Llamosas, J.; Chen, E.; Adams, J.; Nandula, A.; Sharma, R.; Li, Z.; Nawy, T.; Yan, Y.; Tezcan, N.; Basturk, O.; Sherman, M. H.; Pe'er, D.; Tammela, T.
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Intra-tumoral heterogeneity is a cardinal feature of solid tumors, yet how distinct cancer cell states functionally contribute to malignant and stromal diversity in situ remains poorly understood. Using mouse models to lineage-trace or genetically ablate the two predominant cancer cell states in autochthonous pancreatic ductal adenocarcinoma (PDAC), we discover that basal cancer cells are highly plastic, whereas classical cancer cells exhibit limited plasticity. Strikingly, ablation of the basal, but not the classical, state induced rapid and durable tumor collapse, driven by loss of immunosuppressive cancer-associated fibroblasts, macrophage repolarization, and reprogramming of the tumor cytokine milieu, culminating in tumor destruction by cytotoxic lymphocytes. Knockout of a single cytokine, GM-CSF, specifically in basal cells recapitulated macrophage repolarization and lymphocyte recruitment observed upon basal state ablation and shrank tumors. These results reveal the basal cell state controls an immunosuppressive cell circuit critical for PDAC maintenance, motivating therapeutic targeting of the basal cells.
Magallon-Lorenz, M.; Fernandez-Rodriguez, J.; Mazuelas, H.; Uriarte-Arrazola, I.; Ortega-Bertran, S.; Creus-Bachiller, E.; Farres-Casas, J.; Mendez, A.; Rodriguez, E.; Sunol, M.; Rovira, C.; Arnau, R.; Silva, T.; Lopez-Gutierrez, J. C.; Castaneda, A.; Granada, I.; Hernandez-Gallego, A.; Tapia, G.; Saigi, M.; Cucurull, M.; Blanco, I.; Valverde, C.; Romagosa, C.; Salvador, H.; Lazaro, C.; Carrio, M.; Serra, E.; Gel, B.
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Malignant peripheral nerve sheath tumors (MPNSTs) are aggressive soft-tissue sarcomas arising sporadically or in people with neurofibromatosis type 1 (NF1). Their marked heterogeneity challenges diagnosis and has hampered an integrative view of MPNST molecular pathogenesis. Here, a thorough whole-genome and transcriptome analysis of MPNSTs and the re-analysis of a large independent cohort allowed us to identify three molecular subtypes of MPNSTs (G1-G3) with distinct genomic identities and clinicopathological features. Furthermore, it provided a simple and unifying model of MPNST development, defining a distinct progression path for each group. This work uncovers new genomic aspects of MPNSTs, including the identification of recurrent copy-neutral loss of heterozygosity regions, distinct copy-number profiles among G1-G3, and CDKN2A-inactivating translocations in pre-malignant lesions (ANNUBPs). Altogether, these analyses overcome the dominant influence of PRC2 status in MPNST classification and provide a framework for their differential diagnosis and potential precision oncology treatment. SIGNIFICANCEMPNST is a highly heterogeneous soft-tissue sarcoma with difficult clinical management and no effective systemic therapies. This work defines three molecular subtypes of MPNSTs with distinct development paths and histological and clinical characteristics with potential impact on translational studies and subtype-tailored treatments.
Muroyama, Y.; Yanagaki, M.; Tada, H.; Ebata, A.; Ito, T.; Ono, K.; Tominaga, J.; Miyashita, M.; Suzuki, T.
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Secretory breast carcinoma (SBC) is typically indolent, yet mechanisms underlying aggressiveness and therapeutic resistance to tropomyosin receptor kinase inhibitors (TRKi) remain unclear. Autopsy-based longitudinal multi-organ high-dimensional profiling of metastatic TRKi-resistant SBC demonstrated histopathological heterogeneity, including secretory and squamous components, arising from a shared clonal origin. Integrated genomic and transcriptomic analyses revealed hierarchical transcriptional rewiring consistent with a lineage-plastic state, suggesting a potential link to tumor aggressiveness and therapeutic resistance.
Walker, C.; Wang, R.; Piyadasa, H.; Benard, B.; Pelz, C.; Eng, J.; Hawthorne, K.; Sears, R. C.; Gentles, A. J.; Risom, T.; Angelo, M.
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Bulk transcriptomic classifiers stratify pancreatic ductal adenocarcinoma (PDAC) into classical and basal-like subtypes with prognostic and therapeutic relevance, yet increasing evidence indicates that these epithelial programs frequently coexist within individual tumors. How these intermediate states affect the local tumor microenvironment remains poorly defined. Here, we integrate multiplexed ion beam imaging (MIBI) with bulk RNA sequencing to resolve epithelial subtype identity at the level of spatially contiguous cancer nests and quantify their associated microenvironments. Across 47 primary tumor samples from 34 patients, we identified classical, intermediate, and basal cancer cell states at single-cell resolution and delineated discrete cancer nests with mixed or dominant subtype compositions. Distance-resolved spatial analysis reveals that basal-rich cancer nests are surrounded by locally immunosuppressive microenvironments characterized by reduced expression of MHC class II and co-stimulatory molecules in proximal myeloid cells, independent of myeloid abundance. These regions are enriched in fibroblast-dominated neighborhoods and distinct cell-cell interaction architectures. Using EcoTyper analysis of two independent bulk RNA-seq cohorts, including an OHSU discovery cohort (N = 277 patients) and TCGA as a validation cohort (N = 147 patients), we identified poor-prognosis tumor ecotypes enriched for basal epithelial states that similarly exhibited depleted myeloid antigen presentation signatures, linking spatial niche phenotypes to transcriptional ecotypes and patient outcomes. Together, these findings demonstrate that epithelial subtype programs in PDAC are organized at the level of spatially defined cancer nests and that basal cancer programs reside within localized niches of myeloid antigen presentation dysfunction, linking intratumoral architecture to immune suppression and clinical prognosis.
Park, W.; Umeda, S.; Hilmi, M.; O'Connor, C. A.; Sharma, R.; Tezcan, N.; Zhang, H.; Zhu, Y.; Schwartz, C.; Yaqubie, A.; Varghese, A. M.; Soares, K.; Florou, V.; Kim, D.; Maron, S.; Argiles, G.; Balogun, F.; McIntyre, C.; Kim, D.; Yu, K. H.; Chou, J. F.; Hayashi, A.; Keane, F.; Khalil, D. N.; Chatila, W. K.; Capanu, M.; Chaligne, R.; Pishvaian, M. J.; Bandlamudi, C.; Lecomte, N.; Berger, M.; Basturk, O.; Balachandran, V.; Pe'er, D.; Rousseau, B.; Greenbaum, B.; Sfeir, A.; Iacobuzio-Donahue, C. A.; Riaz, N.; O'Reilly, E. M.
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Pancreatic cancer (PC) is broadly resistant to immune checkpoint blockade, although a subset of homologous recombination-deficient (HRD) tumors exhibits durable immune engagement. The genomic features that distinguish these immune-responsive tumors from immune-inert HRD tumors remain poorly understood. Here we identify a microhomology-mediated end joining (MMEJ) repair scar, the MMEJ Deletion Footprint (MDF), as a genomic readout of POLQ-associated error-prone repair that enriches for frameshift indels. Across the multi-omic discovery cohort integrating tumor genomics, single-nucleus transcriptomics and spatial immune profiling, MDF-high HRD PC exhibited increased frameshift-indel-derived neoantigens and interferon programs. MDF was further associated with remodeling of the myeloid compartment toward MHC II-high dendritic cell-like antigen-presenting macrophage states and the immune synapse architecture marked by increased spatial interaction between APC-like macrophages and cytotoxic CD8+ T cells. These tissue-level features aligned with a functional trajectory shift of CD8+ T cells, consistent with effective anti-tumor immunity and was associated with favorable clinical outcomes of patients. Together, our findings position MMEJ-linked repair scarring as actionable biology that connects an HRD genotype to immune organization and suggests rational immunotherapy combinations that may enhance antigen presentation and myeloid activation to extend durable benefit in HRD-lineage cancers.
Liu, Q.; Gojsevic, M.; Varesi, A.; Subedi, A.; Xu, C.; Yeung, F. A.; Dinel, B.; Mbong, N.; Jin, L.; Mitchell, A.; Lim, C.; Boutzen, H.; Arruda, A.; Minden, M. D.; Lechman, E. R.; Raught, B.; Chan, S. N.; Bader, G. D.; Kaufmann, K. B.; Wang, J. C.
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Relapse in cancer is frequently driven by therapy-resistant quiescent cancer stem cells. Conventional chemotherapy has been designed to target proliferating tumor cells and is generally presumed to be ineffective against non-cycling cancer stem cells. Using acute myeloid leukemia (AML) as a model, we challenge this prevailing view by showing that inhibition of the mitotic master regulator Polo-like kinase 1 (PLK1), a kinase extensively pursued for antiproliferative cancer therapy, unexpectedly eradicates quiescent leukemia stem cells (LSC) through a mechanism distinct from its canonical mitotic function. In proliferating AML cells, PLK1 inhibition (PLK1i) induced G2/M arrest and mitotic catastrophe. In contrast, quiescent LSC underwent apoptosis independent of mitotic arrest, revealing a cell-state-dependent mode of drug action. Mechanistically, PLK1i initiated a multi-step process through disruption of a previously unrecognized, stem cell-specific interaction between PLK1 and MAP1A, resulting in perturbed vesicle trafficking and endolysosomal homeostasis characterized by altered receptor internalization, vesicle accumulation and lysosomal dysfunction, ultimately culminating in apoptotic cell death. Combinatorial pharmacologic perturbation studies established microtubule regulation as a critical determinant of quiescent LSC survival, while ex vivo and in vivo assays demonstrated depletion of functionally-defined LSC following PLK1i. These findings identify a previously unrecognized role for PLK1 in intracellular trafficking and establish MAP1A-dependent control of vesicle homeostasis as a mechanistic determinant of cancer stem cell survival. More broadly, this study demonstrates that classical antimitotic compounds, including microtubule-targeting agents and PLK1 inhibitors, can eradicate both cycling leukemic blasts and quiescent LSC through distinct, cell state-dependent mechanisms, challenging proliferation-centric models of chemotherapy action.
Pusch, F. F.; Dorado Garcia, H.; Xu, R.; Gürgen, D.; Bei, Y.; Brückner, L.; Röefzaad, C.; von Stebut, J.; Bardinet, V.; Chamorro Gonzalez, M. d. R.; Eggert, A.; Schulte, J. H.; Hundsdörfer, P.; Seifert, G.; Haase, K.; Schäfer, B.; Wachtel, M.; Kühl, A.; Ortiz, M.; Wengner, A. M.; Scheer, M.; Henssen, A. G.
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The small molecule inhibitor of ataxia telangiectasia and Rad3-related protein (ATR), elimusertib, is currently being tested clinically in various cancer entities in adults and children. Its preclinical anti-tumor activity in pediatric malignancies, however, is largely unknown. We here assessed the preclinical activity of elimusertib in >40 cell lines and >30 patient-derived xenograft (PDX) models derived from common pediatric solid tumor entities. Detailed in vitro and in vivo molecular characterization of the treated models enabled the evaluation of response biomarkers. Pronounced objective response rates were observed for elimusertib monotherapy in PDX, when treated with a regimen currently used in clinical trials. Strikingly, elimusertib outperformed standard of care chemotherapies, particularly in alveolar rhabdomysarcoma PDX. Thus, elimusertib has strong preclinical anti-tumor activity in pediatric solid tumor models, which may translate to clinically meaningful responses in patients. Statement of translational relevanceElimusertib is a small molecule inhibitor of ATR. ATR inhibitors have shown promising results as anticancer agents in adult cancers, but there is limited information on their effectiveness in pediatric solid tumors. Using a cohort of 32 patient-derived xenografts from pediatric solid tumors, we here evaluated the therapeutic potential of elimusertib in vivo. Elimusertib reduced tumor volume growth in all samples. Elimusertib had very limited toxicity and was potent even in tumors with preexisting chemoresistance. Our preclinical data indicates that elimusertib is a safe and potent therapeutic option for pediatric solid tumors. This data may serve as a rationale for the development of pediatric clinical trials for ATR inhibitors.