Mitochondrial dysfunction and cytoskeletal disorganization are widely recognized hallmarks of neurodegenerative diseases such as Alzheimer's disease (AD), Parkinson's disease (PD), Huntington's disease (HD), and amyotrophic lateral sclerosis (ALS). Although these disorders differ in clinical presentation and etiology, accumulating evidence points to a shared cellular vulnerability at the intersection of mitochondrial dynamics and actin cytoskeletal regulation. In this review, we examine the emerging role of actin-mitochondria crosstalk as a convergent mechanism in neurodegeneration. We discuss how disruptions in actin filament remodeling, mitochondrial fission and fusion, organelle transport, and mitophagy contribute to neuronal dysfunction and loss across these diseases. Particular attention is given to disease-specific pathways, including cofilin-actin rod formation in AD, α-synuclein-driven actin disruption in PD, mutant huntingtin's effects on mitochondrial fragmentation in HD, and profilin-1-associated mitochondrial defects in ALS. By synthesizing findings from diverse models, we highlight how perturbations in the cytoskeleton-mitochondria interface may act as an upstream trigger and amplifier of neurodegenerative cascades. We also outline key knowledge gaps and propose future directions for research, with an emphasis on targeting actin-mitochondrial interactions as a potential therapeutic strategy across multiple neurodegenerative conditions.
Chemoresistance is a major cause of cancer deaths. One understudied mechanism of chemoresistance is quiescence. We used single-cell culture to identify and isolate patient-derived proliferating and quiescent ovarian cancer cells (qOvCa). RNA-seq analysis indicated that hundreds of genes that are differentially expressed in qOvCa cells are transcriptional targets of the Myocardin-Related Transcription Factor-A/Serum Response Factor (MRTFA/SRF) pathway, and both genetic disruption and pharmacologic inhibition of MRTFA/SRF interaction (with the inhibitor CCG257081) induced quiescence across multiple cancer types. MRTFA/SRF inhibition-mediated quiescence is p27/Kip1 dependent and associated with a downregulation of cell cycle regulators, NCL, MYH9, and alterations in the proteasome. We show that the MRTFA/SRF axis plays a dual role in chemotherapy resistance, with both pathway inhibition and activation contributing to chemotherapy resistance in vitro and in patient samples. CCG081 treatment results in a proteasome-dependent downregulation of the stem-cell marker CD133. Suggesting a critical role for the proteasome in quiescent cells, CCG081 therapy sensitized OvCa cells to proteasome inhibitors. In vivo, we found that CCG257081 therapy could be used to induce tumor growth-arrest and delay disease growth to improve overall survival. Moreover, we found that dual therapy with CCG081 and proteasome inhibition further improved outcomes, leading to undetectable tumors in ∼20% of mice. Together, these data suggest that the MRTFA/SRF pathway is a critical regulator of quiescence in cancer and a potential therapeutic target.
Chromophobe renal cell carcinoma (ChRCC) accounts for 5% of all renal cancer cases. Despite its generally indolent behavior and low mutational burden, there is no targeted therapy for metastatic ChRCC. Profilin-1 (Pfn1), a cytoskeletal regulator of actin and tubulin dynamics, has emerged as a potential oncogenic driver in several cancers including RCC, but its role in ChRCC, remains undefined. We observed elevated Pfn1 expression in stage IV ChRCC patients, implicating Pfn1 in advanced disease progression. To investigate this, we manipulated Pfn1 expressions in two ChRCC cell lines UOK276 and RCJ41M. Pfn1 knockdown (KD) significantly reduced proliferation, invasion, and colony formation, whereas Pfn1 overexpression (OE) in UOK276 enhanced ChRCC aggressive phenotypes. Pharmacological inhibition of Pfn1 significantly suppressed proliferation and clonogenic growth in both cell lines. Additionally, Pfn1 KD increased intracellular ROS accumulation, while overexpressed reduced ROS levels, linking cytoskeletal regulation to oxidative stress control. Together, these findings position Pfn1 as a critical mediator of ChRCC progression, linking cytoskeletal remodeling to aggressive tumor behavior. This work highlights Pfn1 as a potential therapeutic target and establishes a framework for cytoskeletal-focused strategies in advanced ChRCC.
Abstract Clear cell renal cell carcinoma (ccRCC) is the most aggressive subtype of renal cell carcinoma. TCGA analysis shows that high expression of the inhibitor of apoptosis protein survivin (BIRC5) correlates with advanced stage and poor prognosis. Recent work in our lab demonstrated that survivin promotes proliferation, migration, and mitochondrial remodeling in the RENCA RCC cell model, suggesting that survivin lies at the intersection of cell cycle and metabolic control. Preliminary RNA-seq analysis of survivin siRNA-treated RENCA cells indicated that immune-recruiting cytokines are upregulated upon survivin loss, which we validated in vitro. Because RENCA does not fully recapitulate ccRCC biology, we investigated how survivin loss influences mitochondrial homeostasis and the tumor–immune interface across VHL-deficient ccRCC models. We utilized a novel murine VHL-null ccRCC line (LVRCC), the VHL-proficient RENCA line, and the human VHL-deficient 786-O ccRCC line. Survivin was depleted by siRNA, followed by assessment of mitochondrial mass and immune cell recruitment using transwell co-culture assays. Notably, survivin knockdown in LVRCC cells produced a change in mitochondrial mass opposite to that observed in RENCA, a finding potentially related to VHL status. The VHL-deficient 786-O line exhibited phenotypes similar to LVRCC cells, including survivin-dependent growth. Survivin loss increased immune cell migration toward ccRCC cells, indicating that survivin restrains immune cell infiltration into the tumor microenvironment. Collectively, these data support survivin as an oncogenic driver and putative therapeutic target in ccRCC. Citation Format: Shivani S. Tuli, Yamato Murakami, Cais Vo, Yongho Bae, David Gau. Survivin regulates tumorigenesis and immunogenicity of ccRCC [abstract]. In: Proceedings of the AACR Special Conference in Cancer Research: Innovations in Kidney Cancer Research: From Molecular Insights to Therapeutic Breakthroughs; 2026 Mar 13-16; Philadelphia, PA. Philadelphia (PA): AACR; Cancer Res 2026;86(5_Suppl_2):Abstract nr B020.
Phosphatidylinositol (4,5)-bisphosphate (PIP2), the most abundant cellular poly-phosphoinositide (PPI) class of phospholipid, is a central plasma membrane (PM)-associated signaling hub that controls many cellular processes. In this study, we demonstrate that both deletion of the gene encoding actin-binding protein profilin 1 (Pfn1) and disruption of Pfn1-actin interaction leads to downregulation of PM PIP2 content in cells. This is also phenocopied when F-actin is depolymerized, implying that Pfn1-dependent PIP2 alteration is related to its actin-regulatory function. Phospholipase C (PLC) activity is crucial for Pfn1-deficient cells to exhibit the PIP2-related phenotype. These findings, taken together with biochemical signatures of elevated PIP2 hydrolysis (higher baseline PM diacylglycerol-to PIP2 ratio and protein kinase C activity) exhibited by Pfn1-deficient cells, imply that PLC-mediated PIP2 hydrolysis plays a role in Pfn1-dependent regulation of PM PIP2. Furthermore, we unexpectedly found that Pfn1 loss leads to dramatic alterations in several other important forms of lipids, revealing a previously unrecognized role of Pfn1 as a broad regulator of cellular lipid environment that extends beyond PPI control. In conclusion, our study establishes Pfn1 as an important regulator of cellular lipid homeostasis.
Angiogenesis plays a key role in the development and progression of renal cell carcinoma (RCC). Actin-binding protein profilin1 (Pfn1) is overexpressed in clear cell RCC predominantly in tumor-associated vascular endothelial cells (ECs). We previously demonstrated that EC-selective (over)expression of Pfn1 accelerates RCC progression, and conversely, genetic loss of EC-Pfn1 dramatically inhibits tumor angiogenesis impeding tumor initiation and/or progression in RCC, suggesting that Pfn1 could be an actionable therapeutic target in RCC. In this study, we demonstrate that 4,4'-((4-bromophenyl)methylene)bis(3,5-dimethyl-1H-pyrazole), a small molecule that we had previously identified as an inhibitor of Pfn1-actin interaction, directly binds to Pfn1 and attenuates tumor angiogenesis when directly administered into subcutaneous RCC tumors. Next, we undertook a chemical optimization approach to design and synthesize 4,4'-((4-(trifluoromethyl)phenyl)methylene)bis(3,5-dimethyl-1H-pyrazole), a structural analog of our originally identified inhibitor, that exhibits improved antiangiogenic efficacy in vitro and in vivo. Finally, we demonstrate that Pfn1 inhibitor is amenable to lipid microbubble encapsulation and release in the tumor microenvironment (TME) by ultrasound-mediated disruption of circulating microbubbles to achieve anti-angiogenic and anti-tumor benefit. In summary, our findings suggest that tumor-localized release of Pfn1 inhibitor could be a potential therapeutic strategy in RCC.
Actin cytoskeleton plays an important role in various aspects of atherosclerosis, a key driver of ischemic heart disease. Actin-binding protein Profilin1 (Pfn1) is overexpressed in atherosclerotic plaques in human disease, and Pfn1, when partially depleted globally in all cell types, confers atheroprotection in vivo . This study investigates the impact of endothelial cell (EC)-specific partial loss of Pfn1 expression in atherosclerosis development. We utilized mice engineered for conditional heterozygous knockout of the Pfn1 gene in ECs, with atherosclerosis induced by depletion of hepatic LDL receptor by gene delivery of PCSK9 combined with high-cholesterol diet. Our studies show that partial depletion of EC Pfn1 has certain beneficial effects marked by dampening of select pro-atherogenic cytokines (CXCL10 and IL7) with concomitant reduction in cytotoxic T cell abundance but is not sufficient to reduce hyperlipidemia and confer atheroprotection in vivo . In light of these findings, we conclude that atheroprotective phenotype conferred by global Pfn1 haplo-insufficiency requires contributions of additional cell types that are relevant for atherosclerosis progression.
Chemoresistance is a major driver of cancer deaths. One understudied mechanism of chemoresistance is quiescence. We used single cell culture to identify, retrieve, and RNA-Seq profile primary quiescent ovarian cancer cells (qOvCa). We found that many qOvCa differentially expressed genes are transcriptional targets of the Myocardin Related Transcription Factor/Serum Response Factor (MRTF/SRF) pathway. We also found that genetic disruption of MRTF-SRF interaction, or an MRTF/SRF inhibitor (CCG257081) impact qOvCa gene expression and induce a quiescent state in cancer cells. Suggesting a broad role for this pathway in quiescence, CCG257081 treatment induced quiescence in breast, lung, colon, pancreatic and ovarian cancer cells. Furthermore, CCG081 (i) maintained a quiescent state in patient derived breast cancer organoids and, (ii) induced tumor growth arrest in ovarian cancer xenografts. Together, these data suggest that MRTF/SRF pathway is a critical regulator of quiescence in cancer and a possible therapeutic target.
Dysregulated actin cytoskeleton gives rise to aberrant cell motility and metastatic spread of tumor cells. This study evaluates the effect of overexpression of wild-type versus functional mutants of MRTF-A on migration and invasion of breast cancer (BC) cells. Our studies indicate that SRF's interaction is critical for MRTF-A-induced promotion of both two-dimensional and three-dimensional cell migration, while the SAP-domain function is important selectively for three-dimensional cell migration. Increased MRTF-A activity is associated with more effective membrane protrusion, a phenotype that is attributed predominantly to SRF's interaction with MRTF. We demonstrate formin-family protein mDia2 as an important mediator of MRTF-stimulated actin polymerization at the leading edge and cell migration. Multiplexed quantitative immunohistochemistry and transcriptome analyses of clinical BC specimens further demonstrate a positive correlation between nuclear localization of MRTF with malignant traits of cancer cells and enrichment of MRTF-SRF gene signature in pair-matched distant metastases versus primary tumors. In conclusion, this study establishes a novel mechanism of MRTF-dependent regulation of cell migration and provides evidence for the association between MRTF activity and increased malignancy in human BC, justifying future development of specific small molecule inhibitors of the MRTF-SRF transcriptional complex as potential therapeutic agents in BC.
Bone is a frequent site for breast cancer metastasis. The vast majority of breast cancer-associated metastasis is osteolytic in nature, and RANKL (receptor activator for nuclear factor κB)-induced differentiation of bone marrow-derived macrophages to osteoclasts (OCLs) is a key requirement for osteolytic metastatic growth of cancer cells. In this study, we demonstrate that Myocardin-related transcription factor (MRTF) in breast cancer cells plays an important role in paracrine modulation of RANKL-induced OCL differentiation. This is partly attributed to MRTFs' critical role in maintaining the basal cellular expression of connective tissue growth factor (CTGF), findings that align with a strong positive correlation between CTGF expression and MRTF-A gene signature in the human disease context. Luminex analyses reveal that MRTF depletion in breast cancer cells has a broad impact on OCL-regulatory cell-secreted factors that extend beyond CTGF. Experimental metastasis studies demonstrate that MRTF depletion diminishes OCL abundance and bone colonization of breast cancer cells in vivo, suggesting that MRTF inhibition could be an effective strategy to diminish OCL formation and skeletal involvement in breast cancer. In summary, this study highlights a novel tumor-extrinsic function of MRTF relevant to breast cancer metastasis.
Abstract Background Dendritic cell (DC)-based vaccines have been previously shown to promote therapeutic T cell responses in both preclinical tumor models and in cancer patients, where extended patient overall survival has been noted in many cases. The goal of the present study is to develop a novel DC-based vaccine as an effective immuno-oncology (IO) agent for the prevention/treatment of kidney cancer. We previously demonstrated that actin-binding protein profilin1 (Pfn1) is overexpressed in tumor-associated vascular endothelial cells (ECs), where it may serve as a prognostic factor in human clear cell renal cancer (ccRCC). We further established a direct causal relationship between EC Pfn1 dysregulation, immune microenvironment alterations, and tumor progression in mouse models of RCC. The current work specifically explores whether Pfn1-targeted DC-based vaccines are effective in preventing orthotopic RCC in mice. Methods To generate Pfn1-targeted DC vaccines, we harvested and matured DCs from Balb/C mouse bone marrow-derived precursor cells in cultures containing rmIL4 and rmGM-CSF. DCs loaded with individual Pfn1 synthetic peptides (these sequences were identified using three MHC class I/II peptide-binding algorithms) were injected into syngeneic mice on days 0, 7 and 14. Spleens were harvested from immunized mice on day 21 to isolate CD4+ and CD8+ T cells, with T cells then stimulated with unmanipulated DCs or DCs pulsed with individual immunizing peptides to detect specific T cell activation, as measured by IFN-gamma release quantitated by ELISA. Tissue histology was performed to assess immune-related adverse events (iRAE) in vaccinated mice as a safety index. For cancer studies, Balb/c mice were immunized with DCs loaded with pooled Pfn1 peptides a few days prior to establishing either subcutaneous or orthotopic RCC tumors. Tumor-bearing mice were subjected to an identical booster vaccine prior one week later in advance of euthanasia and study end-point analyses. Results Our studies show that vaccination of Balb/c mice with DCs pulsed with Pfn1 peptides elicit specific CD4+ and/or CD8+ T cell responses without promoting irAEs. When applied in the prophylactic setting, DC-Pfn1 peptide vaccines substantially slow the growth of subcutaneous RCC tumors. In support of these findings, we have also developed preliminary data supporting the therapeutic effects of DC/Pfn1-peptide vaccines in a murine orthotopic model of RCC. Conclusions In summary, our studies provide first evidence for Pfn1-targeted IO agent in the cancer setting. Given that the survival benefit for dual immune-check point inhibitors (ICI)/anti-angiogenic therapy remains modest and is limited to a small minority of ccRCC patients, Pfn1-targeted vaccines could represent a novel therapeutic agent for improved patient outcomes when applied alone or in combination with in-clinic ICI agents. DOD CDMRP Funding: yes
Overexpression of actin-binding protein profilin-1 (Pfn1) correlates with advanced disease features and adverse clinical outcome of patients with clear cell renal carcinoma, the most prevalent form of renal cancer. We previously reported that Pfn1 is predominantly overexpressed in tumor -associated vascular endothelial cells in human clear cell renal carcinoma. In this study, we combined in vivo strategies involving endothelial cell-specific depletion and overexpression of Pfn1 to demonstrate a role of vascular endothelial Pfn1 in promoting tumorigenicity and enabling progressive growth and metastasis of renal carcinoma cells in a syngeneic orthotopic mouse model of kidney cancer. We established an important role of endothelial Pfn1 in tumor angiogenesis and further identified endothelial Pfn1-dependent regulation of several pro(VEGF, SERPINE1, CCL2) and anti-angiogenic factors (platelet factor 4) in vivo. Endothelial Pfn1 overexpression increases tumor infiltration by macrophages and concomitantly diminishes tumor infiltration by T cells including CD8+ T cells in vivo, correlating with the pattern of endothelial Pfn1dependent changes in tumor abundance of several prominent immunomodulatory cytokines. These data were also corroborated by multiplexed quantitative immunohistochemistry and immune deconvolution analyses of RNA-seq data of clinical samples. Guided by Upstream Regulator Analysis of tumor transcriptome data, we further established endothelial Pfn1induced Hif1 alpha elevation and suppression of STAT1 activation. In conclusion, this study demonstrates for the first time a direct causal relationship between vascular endothelial Pfn1 dysregulation, immunosuppressive tumor microenvironment, and disease progression with mechanistic insights in kidney cancer. Our study also provides a conceptual basis for targeting Pfn1 for therapeutic benefit in kidney cancer.
Actin-binding protein Profilin1 is an important regulator of actin cytoskeletal dynamics in cells and critical for embryonic development in higher eukaryotes. The objective of the present study was to examine the consequence of loss-of-function of Pfn1 in vascular endothelial cells (ECs) in vivo. We utilized a mouse model engineered for tamoxifen-inducible biallelic inactivation of the Pfn1 gene selectively in EC (Pfn1EC-KO). Widespread deletion of EC Pfn1 in adult mice leads to severe health complications presenting overt pathologies (endothelial cell death, infarct, and fibrosis) in major organ systems and evidence for inflammatory infiltrates, ultimately compromising the survival of animals within 3 weeks of gene ablation. Mice deficient in endothelial Pfn1 exhibit selective bias toward the proinflammatory myeloid-derived population of immune cells, a finding further supported by systemic elevation of proinflammatory cytokines. We further show that triggering Pfn1 depletion not only directly upregulates proinflammatory cytokine/chemokine gene expression in EC but also potentiates the paracrine effect of EC on proinflammatory gene expression in macrophages. Consistent with these findings, we provide further evidence for increased activation of Interferon Regulatory Factor 7 (IRF7) and STAT1 in EC when depleted of Pfn1. Collectively, these findings for the first time demonstrate a prominent immunological consequence of loss of endothelial Pfn1 and an indispensable role of endothelial Pfn1 in mammalian survival unlike tolerable phenotypes of Pfn1 loss in other differentiated cell types.
Renal cell carcinoma (RCC) is estimated to result in 79,000 new cases and 13,920 deaths in 2022. Clear cell renal cell carcinoma (ccRCC) is the most common subtype of RCC and is characterized by a highly vascularized tumor microenvironment (TME). While current anti-angiogenic therapies targeting VEGF signaling are initially effective, almost all patients develop resistance to these therapies. Therefore, there is a need to identify clinically relevant alternative molecular targets to suppress tumor angiogenesis and progression in ccRCC. We previously discovered transcriptional upregulation of actin-binding profilin1 (Pfn1) in tumor-associated vascular endothelial cells (EC) in ccRCC and higher expression of Pfn1 correlated with adverse clinical prognosis. The goal of the present work was to further explore whether genetic manipulation of Pfn1 specifically in EC has therapeutic benefit in kidney cancer. We found that triggering vascular endothelial Pfn1 gene deletion, either in a widespread manner or locally in a kidney-restricted manner, suppresses tumor initiation and/or growth progression of pre-established kidney tumors in syngeneic mouse models. Loss of endothelial Pfn1 dramatically impacts the TME characterized by prominent suppression of tumor angiogenesis with massive tumor cell death and reduction of tumor-infiltrating immune cells. By performing cytokine array and Luminex assays of tumor lysates, we further identified Pfn1-dependent downregulation of several pro-angiogenic cell-secreted factors and pro-inflammatory cytokines that are major drivers of tumor progression in RCC including VEGF, endothelin-1, Cyr61, Macrophage Inflammatory Protein, G-CSF and IL6 in vivo. As a clinical correlate for mouse model data, we performed multiplexed quantitative immunohistochemistry analyses of human ccRCC specimens constructed on tissue microarray which also showed a positive correlation between Pfn1 expression (either in endothelial cells or tumor cells) and tumor infiltration of predominantly macrophages. Furthermore, through small molecule screening, we identified a novel inhibitor of the Pfn1-actin interaction (Pfn1i) and showed its ability to inhibit tumor angiogenesis and growth aggressiveness of tumor cells resembling various genetic landscapes of human ccRCC. Collectively, these findings establish endothelial Pfn1 as a critical regulator of TME and tumor progression in RCC, and provide a proof-of-concept for targeting Pfn1 as a potentially novel therapeutic strategy in RCC. Citation Format: David M. Gau, Abigail Allen, Andrew Daoud, Jessica Kunkel, Stefan Duensing, Partha Roy. Genetic disruption of vascular endothelial profilin-1 impacts tumor microenvironment supressing tumorigenicity of renal cancer. [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2023; Part 1 (Regular and Invited Abstracts); 2023 Apr 14-19; Orlando, FL. Philadelphia (PA): AACR; Cancer Res 2023;83(7_Suppl):Abstract nr 4584.