bioRxiv Science⌕ Search

Biology subjects

DESSEN, P.

Publications and source records attributed to DESSEN, P..

2 recordsLinked to original sources

Connecting mitochondrial metabolism and mitotic fidelity to control vulnerability of high grade serous ovarian cancer patients to taxane-based chemotherapy

High-grade serous ovarian carcinoma (HGSOC), which accounts for approximately 75% of ovarian cancer cases, is associated with poor clinical outcome. Although most patients initially achieve a complete response to conventional chemotherapy, HGSOC almost invariably develops chemoresistance. There is therefore an urgent need to identify predictive biomarkers of treatment response. Here, through integrative analyses of molecular and clinical data from HGSOC patient cohorts, we identify syntabulin (SYBU), a microtubule-associated protein originally described as a regulator of mitochondrial transport along neuronal microtubules, as a critical determinant of chemosensitivity in HGSOC. Low SYBU expression in tumors correlates with higher tumor grade and increased aggressiveness, yet paradoxically with enhanced sensitivity to chemotherapy. SYBU-deficient cancer cells display impaired oxidative phosphorylation and a metabolic shift toward glycolysis characteristic of the Warburg effect, together with mitotic defects such as chromosome lagging that promote aneuploidy. Mechanistically, syntabulin forms a complex with the mitochondrial outer membrane porin VDAC1 and the inner membrane protein MIC60, a major regulator of mitochondrial cristae organization. Functionally, the syntabulin-MIC60 axis controls cristae architecture and mitotic fidelity, thereby connecting mitochondrial metabolism to cell division. These findings highlight new therapeutic vulnerabilities to overcome chemoresistance in ovarian cancer. SIGNIFICANT STATEMENTOvarian cancer remains the deadliest gynecologic malignancy, largely due to the systematic emergence of resistance to chemotherapy. Identifying molecular mechanisms involved in response to treatment is therefore a major clinical challenge. Here, we uncover an unexpected role for the mitochondrial protein syntabulin in regulating chemotherapy sensitivity in high-grade serous ovarian cancer. We demonstrate that syntabulin coordinates cancer cell mitotic progression with mitochondrial structure and metabolism through interactions with cristae-shaping proteins. These findings reveal a previously unrecognized link between mitotic regulation and mitochondrial architecture, and identify syntabulin as a potential therapeutic target in ovarian cancer to induce vulnerability to taxane-based chemotherapy.

cancer biology↗

DiPRO1 dependent transcriptional and epigenetic regulation distinctly controls the fate of muscle and mesenchymal cancer cells.

We have recently identified the uncharacterized ZNF555 protein as a component of a productive complex, which is involved in the morbid function of the 4qA locus in facioscapulohumeral dystrophy. As a result of our current findings, ZNF555 is hereinafter referred to as DiPRO1 (Death, Differentiation and PROliferation related PROtein 1). In this study, we provide substantial evidence that DiPRO1 plays a role in human myoblast differentiation. It acts on regulatory binding regions of SIX1, which is a master regulator of myogenesis. We further describe the relevance of DiPRO1 in mesenchymal tumors, such as rhabdomyosarcoma (RMS) and Ewing sarcoma. DiPRO1 plays a repressor role in these tumors via the epigenetic regulators TIF1B and UHRF1 in order to maintain methylation of regulatory cis-elements and promoters. Loss of DiPRO1 eradicates cancer cells, by switching on a distinct transcriptional and epigenetic program. It consists of mimicking the host defense against the virus response by awakening the retrotransposable repeats (RE) and the ZNP/KZFP gene family. DiPRO1 also contributes to the balance of cellular decisions toward inflammation and/or apoptosis by controlling TNF- via NF-kappaB signaling. Finally, we demonstrate that mesenchymal cancer tumors are vulnerable in response to si/shDiPRO1-based nanomedicines, positioning DiPRO1 as a potential new target for therapeutic intervention. Summary O_FIG O_LINKSMALLFIG WIDTH=196 HEIGHT=200 SRC="FIGDIR/small/523169v1_ufig1.gif" ALT="Figure 1"> View larger version (49K): org.highwire.dtl.DTLVardef@146f1e5org.highwire.dtl.DTLVardef@b3265borg.highwire.dtl.DTLVardef@19b52fcorg.highwire.dtl.DTLVardef@654f6d_HPS_FORMAT_FIGEXP M_FIG C_FIG

molecular biology↗