Lethal prostate cancer migrates through hypoxic regions and contractile muscle using mechanosensitive integrin receptors (specifically, β1 integrin heterodimers) to escape the organ. Kindlin-2 (K2) binds and activates β1 integrin for focal adhesion (FA) assembly and is central to these functions. In live cells, we assessed K2's role in tumor cell-cell and cell-ECM (extracellular matrix) resistance and capacitance using electric cell-substrate impedance sensing (ECIS) in hypoxia (1% oxygen), before and after wounding. Reduction of K2 expression by 44% (DU145-shK2) increased the wound closure rates detected by ECIS under hypoxia-133% for cell-ECM adhesion and 127% for cell-cell adhesion. Despite increased response rates, restoration of cell-cell resistance after the wound to the pre-wound levels did not occur under hypoxia if K2 was limited. Since the wound closure rate was accelerated when K2 was limited under hypoxia, we determined the dynamics and size of integrin:K2 complexes and K2-containing FA structures under hypoxia. During the early response to hypoxia (4-8 h), α6β1:K2 complexes increased 2-fold and then returned to normal levels. The α5β1:K2 complexes remained constant until increasing at 12-16 h in hypoxia. High-resolution immunofluorescence microscopy confirmed α6β1:K2 colocalization at lamellipodial protrusions during the early response to hypoxia, with elevated α5β1:K2 complexes observed in FAs 12 h post exposure. FA abundance increased 2-fold as determined by paxillin staining, but FA size decreased up to 45% in hypoxia, persisting up to 16 h. Our collective findings suggest that under hypoxia, the biophysical cell-cell and cell-ECM interactions of cancer cells depend on K2, contain dynamic assemblies of α6β1 and α5β1 integrin:K2 complexes, and favor smaller and more numerous FAs.
Abstract Prostate cancer (PCa) progression is critically driven by the tumor microenvironment (TME), which imposes selective pressures and dictates specialized invasive behaviors, such as perineural and lymphovascular invasion. We hypothesized that heterogeneity within the tumor allows for the selection of functionally specialized cancer cell clones based on their proximity to TME niches. Using Spatial Transcriptomics, we profiled cancer cell populations at three critical invasive fronts: near nerves, vessels, and the prostatic pseudo-capsule from 55 human prostate tissue datasets. Differential expression analysis revealed distinct, niche-specific functional signatures: neurotropic clones near nerves exhibited a loss of prostate identity and a gain of neural adhesion genes (e.g., NCAM1, NTN1) consistent with perineural invasion; perivascular clones showed upregulation of ECM remodeling and an EMT-like state (e.g., ANXA2, CCN1), suggesting priming for intravasation; and pseudo-capsule-adjacent clones displayed a highly proliferative phenotype (e.g., CCND1, CDK4). These results demonstrate that the TME drives the functional specialization of PCa cells, refining our understanding of invasion and nominating several niche-specific pathways as potential therapeutic targets. Studies are currently ongoing to validate these signatures, refine heterogeneity scoring, and cross-link the identified genes with pharmacological databases for future in-vitro inhibition assays. Citation Format: Rafael Sainz, Kelvin W. Pond, Beatrice S. Knudsen, Gregory C. Rogers, Noel E. Warfel, Anne E. Cress. Proximity-based gene expression profiling identifies multi-pathway activation in perivascular, perineural, and pseudo-capsule adjacent human prostate cancer cells [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2026; Part 1 (Regular Abstracts); 2026 Apr 17-22; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2026;86(7 Suppl):Abstract nr 6233.
PIM kinases are overexpressed in castration resistant prostate cancer (CRPC) and many small molecule PIM kinase inhibitors (smPIM inhibitors) have been designed to block the catalytic activity of PIM. However, smPIM inhibitors have shown limited efficacy in solid tumors. Notably, all these inhibitors share the common property that they increase total PIM protein levels, which limits their efficacy because PIM1 has kinase-independent pro-survival effects. Here, we identify high mobility box group 1 (HMGB1) as a novel PIM1 binding partner. Stabilization of PIM1 by smPIM inhibitors increases the cytosolic accumulation of HMGB1, which leads to activation of mitophagy and suppresses oxidative-stress induced cell death. Knockdown of PIM1/2/3 and/or HMGB1 sensitizes cancer cells to smPIM inhibitors. In contrast, treatment with a PIM PROTAC (PIMTAC) that we developed overcomes the kinase-independent pro-survival effects of PIM1 and is more effective than smPIM inhibitors in vitro and in vivo. These results uncover a mechanism of resistance that has limited the success of smPIM inhibitors and provides compelling evidence that targeted degradation of PIM is needed to realize its potential as an anti-cancer target.
Chromosomal instability (CIN) is a hallmark of prostate cancer that strongly correlates with metastatic burden and appears prominently in both primary cancer and metastatic disease. Low Gleason score primary prostate tumors display pervasive centrosome loss, a known mechanistic driver of CIN, that disrupts normal spindle assembly and increases mitotic errors. Previously, we found that transient depletion of centrosomes in immortalized, non-tumorigenic prostate epithelial cells (PrEC) induced a burst of CIN, generating cell lines capable of forming xenograft tumors. We used a multi-omics approach that integrates genomic and transcriptomic data to identify the oncogenic alteration signatures caused by transient centrosome loss. We identified a consensus set of focal copy-number variations (CNVs) induced by centrosome loss in cultured cells that are also detectable within a subset of samples from a prostate cancer patient cohort. Using this CNV signature, we were able to derive a unique transcriptomic signature (CIN9) from prostate cancer patient samples that showed strong predictive value for adverse clinical outcomes. Our experimental system uses centrosome loss to promote a punctuated burst of genomic crisis that is characteristic of genome evolution during prostate cancer progression. Consequently, this prostate cancer model produced recurrent structural variations that are detectable in patient samples and associate with worse outcomes.
Prostate cancer cell invasion into the surrounding muscle capsule, known as extracapsular extension (ECE), is associated with a significantly worse prognosis (5-year survival reduction: 98% to 31%). Using a live ECE mouse xenograft model with DU145 tumor cells, our group previously demonstrated that functional heterogeneity among adhesion subtypes within invasive clusters is essential for muscle invasion. Bulk RNA sequencing from three spatial compartments (pre-invasive, invasive, and post-invasive) revealed distinct gene expression profiles, with hypoxia-related and cell–cell/cell–ECM interaction genes prominently dysregulated in muscle-invasive disease. In this study, we sought to define the single-cell transcriptional heterogeneity across the three ECE compartments and compare these patterns to a human patient-derived xenograft (PDX) model. Spatial transcriptomic analysis (STA) was performed using the Bruker CosMx platform with a 6K gene panel. Data was preprocessed (quality control and dimensional reduction) and analyzed in R 4.4.0 using Seurat v5. Notable downstream analyses included unsupervised Louvain clustering, trajectory inference with Monocle 3, and cluster-specific differential gene expression. In the ECE model, STA resolved at least 11 distinct tumor cell identity clusters previously undetectable by bulk methods and revealed a clear spatial demarcation between pre-invasive and invasive populations crossing the muscle barrier. Trajectory analysis identified a pre-invasive population branching into two invasive fates with unique expression profiles. Dispersion scores, calculated using principal component embeddings, exhibited progressively increasing intracluster heterogeneity along one branch. Strong expression enrichment of the Prolaris 31-gene prognostic panel, a clinically established marker of aggressiveness, was observed at the bifurcation point of tumor evolution. STA of the human PDX model similarly revealed a high-dispersion invasive cluster branching into two fates, one exhibiting decreased heterogeneity consistent with specialization of invasive phenotypes. Together, these findings reveal, for the first time, that tumor invasion of the extracapsular muscle layer induces substantial transcriptional heterogeneity. This dynamic process highlights potential therapeutic vulnerabilities during the transition to extracapsular extension. Targeting tumor cells at this critical juncture may represent a key strategy for preventing ECE and improving prostate cancer outcomes. Supported by P30CA023074, University of Arizona Comprehensive Cancer Center Support Grant. Saptarshi Mallick, Rafael Sainz, Jayati Chakrabarti, Kendra D. Marr, Noel A. Warfel, Gregory C. Rogers, Beatrice S. Knudsen, Rashid Sayyid, Kelvin W. Pond, Anne E. Cress. Single cell spatial transcriptomics identifies unique cell populations driving muscle invasive prostate adenocarcinoma [abstract]. In: Proceedings of the AACR Special Conference in Cancer Research: Innovations in Prostate Cancer Research and Treatment; 2026 Jan 20-22; Philadelphia PA. Philadelphia (PA): AACR; Cancer Res 2026;86(2_Suppl):Abstract nr B045.
Integrin β4 (ITGB4) mediates lung endothelial cell (EC) inflammation attenuated by simvastatin, an HMG CoA-reductase inhibitor. The cytoplasmic domain of ITGB4 is predicted to bind kindlin-2. Kindlin-2 expression is mediated by SMURF1, an E3 ubiquitin ligase that promotes kindlin-2 ubiquitination and degradation. We hypothesized that increased kindlin-2 expression via the inhibition of SMURF1 mediates EC inflammatory responses relevant to acute lung injury (ALI). To investigate this, human lung ECs were treated with simvastatin (5 µM, 16 h) prior to the immunoprecipitation of kindlin-2 and Western blotting for ITGB4. Next, ECs were treated with a SMURF1 inhibitor, A01, and increased kindlin-2 expression was confirmed. In assays of barrier function, kindlin-2 was silenced (siRNA) in ECs prior to thrombin and measurements of transendothelial resistance (TER) and FITC-dextran transwell flux. Repeat assessments of barrier function were performed in A01-treated ECs. Finally, mice were pretreated with A01 prior to LPS; bronchoalveolar lavage (BAL) fluid was collected, and their lungs were used for histology. Simvastatin increased ITGB4:kindlin-2 association, while A01 increased kindlin-2 expression. Thrombin-induced EC barrier disruption was both increased after kindlin-2 silencing and decreased by A01. Finally, murine ALI was significantly attenuated by A01. Our findings suggest that the augmentation of kindlin-2 may serve as a novel ALI therapeutic strategy.
Immune checkpoint inhibitors (ICI) have changed the treatment paradigm for many cancers but have not shown benefit in prostate cancer. Chronic inflammation contributes to the immunosuppressive prostate tumor microenvironment and is associated with poor response to ICIs. The primary source of inflammatory cytokine production is the inflammasome. In this study, we identify the proviral integration site for Moloney murine leukemia virus (PIM) kinases as regulators of inflammasome activation in tumor-associated macrophages (TAM). The analysis of clinical data from a cohort of patients with treatment-naïve, hormone-responsive prostate cancer revealed that tumors from patients with high PIM1/2/3 displayed an immunosuppressive tumor microenvironment characterized by high inflammation and a high density of repressive immune cells, most notably TAMs. Macrophage-specific knockout of PIM reduced tumor growth in syngeneic models of prostate cancer. Transcriptional analyses indicated that eliminating PIM from macrophages enhanced the adaptive immune response and increased cytotoxic immune cells. Combined treatment with PIM inhibitors and ICIs synergistically reduced tumor growth. Immune profiling revealed that PIM inhibitors sensitized prostate cancer tumors to ICIs by increasing tumor suppressive TAMs and increasing the activation of cytotoxic T cells. Our data implicate macrophage PIM as a driver of inflammation that limits ICI potency and provide preclinical evidence that PIM inhibitors are an effective strategy to improve the ICI efficacy in prostate cancer.
In 2024, prostate cancer (PCa) remains the most common non-skin cancer in males within the United States, with an estimated 299,010 new cases, the highest increase incident trend rate (3.8%) of all cancers, and one of the eight deadliest. PCa cases are projected to double from 1.8 million to 2.9 million per year between 2020 and 2040. According to the National Comprehensive Cancer Network (NCCN) treatment guidelines, most cases (65%) are intermediate risk (Gleason sum score <7 [3 + 4, 4 + 3], prostate organ-confined, and PSA < 20) with treatment options limited to active surveillance, external beam radiation, and/or surgery to prevent metastasis in the long term (>10 years). It is increasingly recognized that the two most common subtypes of intermediate risk PCa are cribriform architecture (CA) and intraductal carcinoma of the prostate (IDC-P), which can occur together, and both are associated with increased metastatic risk, biochemical recurrence, and disease-specific mortality. Both subtypes display hypoxia, genomic instability, and are identified as Gleason 4 in pathology reports. However, since false negatives are common (up to 50%) in these subtypes on biopsy, more research is needed to reliably detect these subtypes that have an increased risk for invasive disease. We note that even with mpMRI-guided biopsies, the sensitivity is 54% for cribriform architecture and only 37% for IDC-P. The presence of these PCa subtypes in biopsy or radical prostatectomy (RP) tissue can exclude patients from active surveillance and from designation as intermediate risk disease, further underscoring the need for increased molecular understanding of these subtypes for diagnostic purposes. Understanding the heterogeneity of intermediate risk primary PCa phenotypes, using computational pathology approaches to evaluate the fixed biopsy specimen, or video microscopy of the surgical specimen with AI-driven analysis is now achievable. New research associating the resulting phenotypes with the different therapeutic choices and vulnerabilities will likely prevent extracapsular extension, the definition of high-risk disease, and upstaging of the final pathologic stage.
Abstract Introduction: Castration-resistant prostate cancer (CRPC) is an incurable and lethal progression of the disease that does not respond to any treatment options. Cell adhesion to the extracellular matrix (ECM) activates survival pathways, allowing cancer cells to evade anti-cancer therapy, a phenomenon known as cell adhesion-mediated drug resistance. Bone, which is the primary site of prostate cancer metastasis, is known to be enriched in laminin, a ubiquitous ECM protein. In addition, laminin binding integrins, α6β1 and α3β1, are the major integrins expressed in CRPC, suggesting that laminin-dependent adhesion provides a survival advantage. Based on these findings, activation of the laminin-binding integrin, α6β1, is an intriguing factor mediating resistance to therapy in CRPC. PIM1 is an oncogenic Ser/Thr kinase that is elevated in CRPC and is known to promote resistance to therapy. In contrast, to many pro-survival kinases, PIM kinases do not possess any obvious regulatory domains. Current evidence suggests that PIM1 is constitutively active when it is expressed, so PIM1 expression level directly correlates with its catalytic activity. Despite this fact, little is known about the internal and external mechanisms that dictate PIM1 protein levels and spatial activation in cancer cells. Here, we identify PIM1 as a key survival signal that contributes to cell adhesion-mediated drug resistance. Experimental procedures: Supporting the importance of this signaling axis in human tumors, multiplex IHC of a TMA containing prostate adenocarcinoma and CRPC bone metastases to show that integrin α6 and PIM1 are coexpressed and spatially correlated in primary and metastatic prostate cancer. To examine the spatiotemporal dynamics of PIM1 during cell adhesion, We developed a kinase activity reporter (PIMKAR) to monitor PIM catalytic activity in live cells. Because we observed PIM was highly localized to the membrane in patient tumors, we tagged PIMKAR with a myristylation sequence to specifically measure PIM activity at the membrane vs cytosol. Immunofluorescence and biochemical techniques were used to demonstrate the effect of PIM1 on mitophagy and oxidative stress. Conclusions: We demonstrate that activation of integrin α6β1 downstream of cell adhesion stabilizes PIM1 by blocking its proteasomal degradation. The resulting upregulation of PIM1 serves to reduce oxidative stress through complementary mechanisms reducing mitochondrial fragmentation and increasing the removal of damaged mitochondria by increasing mitophagy. Mechanistically, PIM1 upregulates BNIP3 to enhance mitophagy and thereby reduce oxidative stress in the cell. Together, these results expand our understanding of the mechanisms regulating PIM1 activation and provide evidence for the use of PIM inhibitors in bone mCRPC and other cancers where laminin is a major component of the ECM Citation Format: Caitlyn Flores, Shailender Chauhan, Cynthia Miranti, Anne Cress, Gregory Rogers, Noel Warfel. PIM kinases drive cell adhesion mediated drug resistance in prostate cancer [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2024; Part 1 (Regular Abstracts); 2024 Apr 5-10; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2024;84(6_Suppl):Abstract nr 4618.
Abstract Aggressive human prostate tumors traverse a contractile smooth muscle pseudo-capsule, in a process termed extracapsular extension (ECE), defining the pT3 pathologic stage associating with increased biochemical recurrence, bone metastases, and cancer-specific mortality. While T3 lesions can be detected by non-invasive mpMRI imaging, how the tumor invades into and through the contractile muscle is unknown. Using a mouse xenograft model system of ECE, we investigated the transcriptomic consequences of human tumor invasion into and through the contractile smooth muscle of the mouse diaphragm. Both human and mouse gene transcripts were documented and analyzed. Tumor cells were intraperitoneally injected into male NSG mice and 6 weeks later, three tumor compartments (pre-invasive, muscle-invasive, and super-invasive cells that had reached the superior diaphragm surface) were analyzed for differential bulk human and mouse gene expression. Whole genome transcriptomic sequencing and GO pathway analysis revealed that approximately 414 human genes were differentially expressed between the non- invasive, muscle-resident, and super-invasive tumor populations and at least 5 enriched pathways were involved. The unique expression gene patterns of muscle-resident tumor cells were reversible when compared to the pre-invasive and super-invasive expression patterns. Significant increases in g-H2AX and nuclear deformation were observed in the muscle-resident tumor clusters as compared to the non-invasive tumor mass. No differences in tumor cell proliferation, as detected by Ki67 staining, were found between the tumor clusters in the three compartments. Immunohistochemistry staining for a damage response cytokeratin (KRT6A) and integrin (CD49f) revealed heterogeneity within the muscle resident tumors as compared to the non- invasive cells. Taken together, these data suggest a hostile contractile muscle environment elicits specific responses by the invading tumor. Single cell analysis within each of the tumor compartments is currently underway to define the spatial heterogeneity of gene expression in invasive tumor cell clusters within the contractile muscle. A dynamic reciprocity of the tumor/muscle microenvironment is suggested by the analysis of the bulk transcriptomic sequencing demonstrating a significant increase in mouse muscle bio-synthetic gene transcription as a consequence of the human tumor penetrating the tissue. Taken together, these data indicate that human tumors, during the act of traversing the contractile muscle layer, respond to this unique microenvironment by transiently altering transcription, while sustaining nuclear damage which results in the reprogramming of the muscle. This new information suggests that novel tumor or muscle biomarkers might indicate early muscle invasion events and assist new high-resolution image analysis for precision diagnostic and/or therapeutic decisions. (Supported in part by P30 CA23074; F30 CA143924, UACC Team Science Award). Citation Format: Kendra D Marr, Beatrice S Knudsen, Rafael Sainz, Kelvin W Pond, Noel E Warfel, Belinda E Sun, Anne E Cress. Tumor muscle invasion promotes tumor heterogeneity and normal muscle reprogramming [abstract]. In: Proceedings of the AACR Special Conference: Liquid Biopsy: From Discovery to Clinical Implementation; 2024 Nov 13-16; San Diego, CA. Philadelphia (PA): AACR; Clin Cancer Res 2024;30(21_Suppl):Abstract nr A055.
Abstract Hypoxia is a physiologically relevant feature of the prostate microenvironment that promotes migration and invasion resulting in extracapsular extension, the first step toward metastatic progression. Prostate cancer invasion depends on integrins as mechanosensing membrane receptors during creation of membrane lamellipodial protrusions and focal adhesions (FAs). The objective of this study was to determine the molecular events that promote membrane protrusions under hypoxia and whether this was dependent upon kindlin-2, an essential integrin adapter that marks activated β1 integrin heterodimers. DU145 cells depleted of one copy of FERMT2+/- (50% kindlin-2 expression) by CRISPR/Cas9 or DU145 FERMT2wt (normal kindlin-2 expression) were grown under acute exposure to hypoxia (1% O2) and compared to cells grown under normal tissue culture conditions. Immunofluorescence microscopy experiments were performed to analyze the spatial temporal expression of kindlin-2 complexes. Kindlin-2 complexes were confirmed by immunoprecipitation using an anti-kindlin-2 3A3-antibody from Sigma-Aldrich. Colocalization was determined by obtaining 2D immunofluorescence microscopy images analyzed using ImageJ 2.1.0/1.53c and Nikon NIS-Elements 5.30.04. Under hypoxic conditions, analysis over four time points (4h, 8h, 12h & 16h) increased the number and area of FAs (marked by paxillin (PXN)) containing kindlin-2 in a time-dependent manner by 2-fold and 1.5-fold, respectively, but not in DU145 FERMT2+/- cells. Additionally, hypoxia increased membrane area, perimeter, and the plasma membrane intensity of kindlin-2 exclusive of FAs in DU145 FERMT2wt cells which was maximal after 8 hours of hypoxia. Interestingly, limiting the kindlin-2 expression in FERMT2+/- cells resulted in a loss of hypoxia-induced lamellipodial protrusions (marked by lamellipodin (RAPH1)) containing kindlin-2 while hypoxia-induced kindlin-2 FA changes were preserved. The current working hypothesis is that lamellipodial protrusions are dependent upon kindlin-2 expression whereas the established FAs are stable under conditions of reduced kindlin-2 expression in hypoxia. This data suggests that an early stage of migration, lamellipodial extensions are sensitive to kindlin-2 availability. Further studies are required to determine the dynamic interplay between protrusive events and focal adhesions in relation to kindlin-2 for prostate cancer cells to migrate and invade. Citation Format: Colin Nelson, Daniel Hernandez-Cortes, Kendra D. Marr, Jaime MC Gard, Allan I. Paxson, William L. Harryman, Natalya K. Seppanen, John M. Ryniawec, Anne E. Cress. Lamellipodial protrusions induced by hypoxia depend upon kindlin-2 in prostate cancer cells [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2024; Part 1 (Regular Abstracts); 2024 Apr 5-10; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2024;84(6_Suppl):Abstract nr 5418.
Abstract Glyoxalase 1 (encoded by GLO1) is a glutathione-dependent enzyme detoxifying the glycolytic byproduct methylglyoxal (MG), an oncometabolite involved in metabolic reprogramming. Recently, we have demonstrated that GLO1 is overexpressed in human prostate cancer cells and patient tumors. In order to inform the ongoing debate on the role of GLO1 as an oncometabolic enabler of tumor glucose metabolism and malignant progression, we performed CRISPR/Cas9-based GLO1-deletion in human DU145-Luc2 malignant prostate cancer cells. NanoString nCounterTM ('PanCancer-Progression-Panel') comparative gene expression profiling (GLO1_KO versus GLO1_wt) revealed a significant downregulation of EMT-related pathways in GLO1_KO cells; concordantly, phenotypical screening indicated a pronounced attenuation of matrigel invasiveness observable in GLO1_KO cells. Likewise, inclusion of MG or a small molecule GLO1 inhibitor (TLSC-702) blocked invasiveness of DU145 GLO1_wt cells. Downregulation of EMT-related genes (including MMP3, SPP1, CXCL8) was accompanied by increased expression of TXNIP (thioredoxin-interacting protein), a master regulator of cellular energy metabolism and redox homeostasis. In a bioluminescent SCID mouse bone metastasis model (intracardial injection of DU145-Luc2 GLO1_wt and GLO1_KO cells), GLO1 expression was necessary to cause mandibular bone metastases (as evidenced by the complete absence of bone metastases after GLO1 deletion). Given the availability of drug-like small molecule inhibitors of GLO1 enzymatic activity these data suggest that GLO1 represents a novel molecular target for the pharmacological suppression of prostate cancer bone metastasis. Citation Format: Jana Jandova, Anne E. Cress, Georg T. Wondrak. Glyoxalase 1 (GLO1) as an oncometabolic enabler of prostate cancer progression: CRISPR/Cas9-based GLO1-deletion from human DU145-Luc2 cells blocks EMT and bone metastasis in SCID mice [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2024; Part 1 (Regular Abstracts); 2024 Apr 5-10; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2024;84(6_Suppl):Abstract nr 1798.
Abstract PURPOSE: This study aims to identify a causal mechanism of centrosome loss previously observed in primary prostate cancer. Prostate cancer progression is accompanied by bursts of chromosomal instability (CIN), including chromosomal translocations, oncogene amplifications, and chromothripsis. While high CIN correlates with most metrics of aggressive disease, we lack a mechanistic understanding of how CIN originates in prostate cancer. Recently, we discovered that cells in primary prostate tumors lack centrosomes, cytoplasmic organelles that ensure the fidelity of chromosome segregation by organizing the shape of the mitotic spindle. Experimental elimination of centrosomes in immortalized, non-tumorigenic prostate cell lines was sufficient to generate extensive CIN, resulting in oncogenic transformation of these lines when sub-cutaneously injected into NSG mice. Because we identified centrosome loss as a potential driver of CIN, we sought to understand mechanisms that can trigger centrosome loss in the prostate. Although centrosome loss naturally occurs during the development of some tissues, for example centrosome elimination during oogenesis, the mechanisms that trigger loss are not known. Therefore, we first investigated microenvironmental changes in early prostate cancer as a potential cause. Hypoxia, pathologically low oxygen concentration, is common in the aging prostate due to loss of vasculature and is associated with poor prostate cancer prognosis and high CIN. Therefore, we hypothesized that hypoxic exposure induces centrosome loss in prostate cells. Indeed, we found that exposure to 1% oxygen concentrations leads to progressive centrosome loss in non-tumorigenic, immortalized prostate epithelial cell lines. Using immunofluorescence of centrosomes in cultured cells, we found that hypoxia-induced centrosome loss is independent of HIF transcription but requires activation of the confluence-dependent Hippo signaling pathway. Mechanistically, we found that centrosome disassembly begins with the removal of the pericentriolar material (PCM), the outer shell of the centrosome that nucleates microtubules. We were able to block centrosome disassembly by over-expressing a constitutively-active mutant of Polo-like Kinase 1, which normally strengthens the PCM during mitosis to promote centrosome maturation. Furthermore, centrosome loss was prevented by treatment with the Protein Phosphatase 2A (PP2A) inhibitor Okadaic Acid. Using RNAseq, we have identified potential PP2A regulatory subunits that are up-regulated in cells undergoing hypoxia-induced centrosome loss. Our model is that hypoxia induces dephosphorylation of the PCM, mechanically weakening the centrosome and leaving it vulnerable to disassembly. Together with previous findings, we conclude that hypoxia-induced centrosome disassembly is a plausible driver of CIN in early prostate cancer. Citation Format: John M. Ryniawec, Gregory C. Rogers, Anne E. Cress. Hypoxia-induced centrosome loss as a driver of chromosomal instability in prostate cancer [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2024; Part 1 (Regular Abstracts); 2024 Apr 5-10; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2024;84(6_Suppl):Abstract nr 371.
Abstract Prostate cancer (PCa) stands as the second leading cause of cancer death in American men, with overtreatment being common given the difficulty in distinguishing between indolent and aggressive cases. Unlike many cancers, PCa lacks hallmark mutations in key oncogenes and tumor-suppressor genes. Instead, PCa exhibit extensive genomic rearrangements and chromosomal instability (CIN). CIN occurs during PCa progression, producing ETS gene family fusions, PTEN loss and androgen receptor amplification. Importantly, the mechanism underlying CIN in PCa remains unclear. Previously, we found that cell within early-grade human primary prostate adenocarcinomas (PRAD) frequently lack centrosomes, and this frequency correlates with tumor grade. We demonstrated that transient removal of centrosomes within non-tumorigenic human prostate epithelial cells (hPrEC) induces CIN and was, strikingly, sufficient to transform subpopulations of cells capable of producing xenograft tumors in mice. To unravel the molecular mechanisms underlying this path to tumorigenesis, we isolated DNA and RNA from parental hPrECs, clonal lines subjected to transient centrosome loss, and xenograft tumor cells and performed whole genome sequencing (WGS) and bulk RNA-seq. This allowed us to characterize the genomic profiles induced by centrosome loss and to identify an associated mutational signature. We used MUTECT2 to identify single nucleotide variants. Kataegis loci were observed on multiple chromosomes in all transient centrosome removal samples. Copy number variations were also detected in these samples using FACETS and SEQUENZA. Next, we extracted the copy number (CN) signature with SigProfiler and Sigminer, comparing it to COSMIC CN signatures and WGS data from PRAD patients. Our results revealed that the transient centrosome loss signature bears similarity to CN signatures associated with chromothripsis, loss of heterozygosity, and homologous recombination repair deficiency. Patients with PRAD displaying the centrosome loss CN signature had a poorer prognosis. Additionally, our CN analysis discovered that centrosome loss induced mosaic loss of chromosome Y in our samples. To detect structural variations, we employed DELLY, MANTA, SVABA, revealing a high occurrence of both non-clustered and clustered translocations in transient centrosome loss samples. These translocations were validated in our RNA-seq data using STAR-Fusion. Ongoing analyses include inferring CNV from PCa scRNA-seq data, and determining cell populations with the centrosome loss CN-signature and their associated transcriptome features. This work unveils a comprehensive genomic profile stemming from centrosome loss and demonstrates its role in driving oncogenesis in PCa. These findings have the potential to establish centrosome loss as a hallmark in PCa stratification, and lead to a significant advancement in prostate tumor treatment. Citation Format: Jiawen Yang, Diogo de Oliveira Pessoa, John M. Ryniawec, Emily Loertscher, Anne E. Cress, Megha Padi, Gregory C. Rogers. Characterization of a centrosome loss-induced tumorigenic signature in prostate epithelial cells [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2024; Part 1 (Regular Abstracts); 2024 Apr 5-10; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2024;84(6_Suppl):Abstract nr 4349.