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Biology subjects

Simo Riudalbas, L.

Publications and source records attributed to Simo Riudalbas, L..

2 recordsLinked to original sources

CDK4 Restricts Triple-Negative Breast Cancer Cell Migration via Phosphorylation-Driven Activation of Myo9b RhoGAP Function

Cyclin-Dependent Kinase 4 (CDK4) is a key regulator of cell cycle progression, driving the G0/G1-to-S phase transition through phosphorylation of Retinoblastoma 1 (RB1). Clinically, CDK4/6 inhibitors are under investigation in Triple Negative Breast Cancer (TNBC), a subtype characterized by invasiveness, aggressiveness and poor prognosis. While CDK4 is primarily targeted for its role in proliferation, emerging evidence suggests it may also regulate other cellular processes. In particular, the mechanisms by which CDK4 could influence cancer cell migration, remain largely unexplored, particularly in highly heterogenous cell line like MDA-MB-231. This study investigates whether CDK4 contributes to the regulation of TNBC cells migration and identifies the pathways involved in MDA-MB-231 cells, independently of its role in proliferation. We demonstrate that loss or inhibition of CDK4, using respectively CRISPR/Cas9 mediated CDK4 knockout and pharmacological CDK4/6 inhibitor, leads to enhanced migration capacities and reorganization of actin subcellular networks. Mechanistically, the absence of CDK4 results in decreased phosphorylation of Myo9b at serine 1935 (S1935), which enhances RhoA signaling, a key driver of cytoskeletal dynamics, leading to polarity defects and increased cell migration. These findings reveal a non-canonical function of CDK4 in limiting TNBC cell migration through the CDK4/CyclinD-Myo9b-RhoA signaling axis. This work highlights the broader cellular roles of CDK4 beyond its established function in proliferation and suggest that inhibition of Myo9b-RhoA pathway could reduce metastatic behaviour in TNBC treated with CDK4/6i, thereby informing future co-therapeutic strategies against aggressive cancer subtypes.

cell biology↗

POU5F1B is a human-restricted ROCK inhibitor-sensitive oncoprotein that restructures membrane nanodomains to increase cell adhesion

Evolution confers new species with distinctive biological features that can translate in either purely mechanistic speciation or novel phenotypes. Retrotransposition in the last Hominidae common ancestor of the pluripotency regulator POU5F1/OCT4 led to human POU5F1B, which promotes gastrointestinal cancer growth and metastasis through unknown mechanisms. Here, we show that POU5F1B fosters cell invasiveness by inducing plasma membrane remodeling. This ability exquisitely depends on a series of post-translational modifications. Ubiquitination of two lysine residues found exclusively in human POU5F1B results in its cytoplasmic retention, contrasting with the nuclear POU5F1. ZDHHC17-mediated S-acylation then triggers POU5F1B association with membrane nanodomains enriched in cell adhesion and signaling molecules. This is accompanied by the cell surface clustering and accelerated turnover of focal adhesion proteins, with enhanced cell invasiveness. Finally, screening for inducers of POU5F1B degradation, we found its stability to depend critically on Rho-associated protein kinases, revealing potential avenues for the treatment of POU5F1B-expressing tumors.

cancer biology↗