Search bioRxiv⌕ Search

Biology subjects

LAGREE, V.

Publications and source records attributed to LAGREE, V..

2 recordsLinked to original sources

Wild-type and mutated beta-catenin differently repress RND3/RHOE expression in hepatocellular carcinoma

Background & AimsTumor development and progression are mainly driven by oncogenic mutations but are also regulated by physical factors, such as applied forces or microenvironment stiffness. Through its structural and transcriptional functions, {beta}catenin is a key factor that acts on both aspects to promote liver tumorigenesis, leading to hepatocellular carcinoma (HCC) development. However, the mechanisms by which these two functions regulate downstream targets remain poorly understood. Herein, we describe Rnd3, also called RhoE, an atypical member of the Rho GTPase family, as a common target of both functions of {beta}-catenin. We previously demonstrated that RND3 expression is downregulated in HCC, which correlates with intrahepatic metastasis. Yet, a molecular understanding of how Rnd3 expression is dysregulated in cancer is largely missing. Approach & ResultsUsing human HCC samples and cultured cell lines, we demonstrate that Rnd3 expression is regulated by {beta}-catenin pathways, regardless of their mutational status. Both the transcriptional and the structural activity of {beta}-catenin repress the expression of RND3. Indeed, we found that wild-type {beta}-catenin suppresses RND3 transcription through the Hippo pathway, whereas oncogenic {beta}-catenin downregulates RND3 expression through miRNA targeting its 3UTR. ConclusionRnd3 may constitute a key protein involved in the transcriptional program driven by oncogenic {beta}-catenin in HCC and as a mediator of the mechanosensitive response associated with cell-cell adhesion.

cancer biology↗

p190A/ARHGAP35 and p190B/ARHGAP5 proteins in endometrial cancer, a novel cancer-relevant paralog interplay

Endometrial cancer is one of the main gynecological malignancies worldwide, with an estimated 320, 000 new cases annually. Several studies highlight ARHGAP35 as a significantly mutated gene in these tumors. It encodes for the protein p190RhoGAP-A (p190A), which is a major regulator of the small GTPase family of proteins. ARHGAP5 is a paralog of ARHGAP35 that encodes the protein p190RhoGAP-B (p190B). By analyzing human endometrial cancer samples, we found a co-occurrence of mutations in ARHGAP35 and ARHGAP5 genes and we reported that both are less expressed at the mRNA level in tumoral samples compared to healthy tissues. We were interested in understanding the impact of p190A/B under-expression in endometrial cancer and the relationship between the two paralogs. To do so, we have used CRISPR/Cas9 technology to generate HEC-1-A knockout cells for p190A and p190B. We showed that removal of each paralog led to a similar actin remodeling phenotype with the formation of Cross-Linked Actin Networks (CLANs), dependent on the Rho/ROCK pathway. Moreover, proteomic analysis of p190A and p190B knockout cells highlighted similar affected cell functions. Finally, our study demonstrates a synthetic lethality between p190A and p190B where removal of both paralogs is deleterious in endometrial cancer cells, unveiling a potential actionable vulnerability.

cancer biology↗