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Saiz-Pardo, M.

Publications and source records attributed to Saiz-Pardo, M..

2 recordsLinked to original sources

CRISPR screening reveals SYCP3 as a key driver of metastasis in prostate cancer

Prostate cancer (PCa) is a prevalent male cancer with high survival rates, except in advanced or metastatic stages, for which effective treatments are lacking. Metastatic PCa involves complex mechanisms including loss of tumor suppressor genes and DNA repair molecules, which impacts therapy responses. We have reanalyzed data from a CRISPR/Cas9 genome wide screening previously performed to identify essential regulators of invasive abilities of the metastatic cell line DU145 identifying SYCP3 as a regulator of metastatic invasion. Subsequent analyses of tumor samples demonstrated that SYCP3 expression is frequently upregulated in PCa tumors from patients in advanced stages. Furthermore, SYCP3 genetic depletion significantly reduced the invasive and migratory abilities of DU145 cells and increased their adhesion capacity. Additionally, and due to the implication of SYCP3 on DNA repair processes, we have analyzed the role of SYCP3 on the cellular response to radiotherapy (RT) and found that its depletion induced RT resistance, suggesting a role for SYCP3 in DNA damage response and genomic instability. All these data support a role for SYCP3 in PCa metastasis and provides opportunities for personalized medicine.

cancer biology↗

CRISPR/Cas9 screenings unearth protein arginine methyltransferase 7 as a novel driver of metastasis in prostate cancer

Owing to the inefficacy of available treatments, the survival rate of patients with metastatic prostate cancer (mPCa) is severely decreased. Therefore, it is crucial to identify new therapeutic targets to increase their survival. This study aim was to identify the most relevant regulators of mPCa onset by performing two high-throughput CRISPR/Cas9 screenings. Furthermore, some of the top hits were validated using small interfering RNA (siRNA) technology, with protein arginine methyltransferase 7 (PRMT7) being the best candidate. Its inhibition or depletion via CRISPR significantly reduced mPCa cell capacities in vitro. Moreover, PRMT7 ablation reduced mPCa appearance in chicken chorioallantoic membrane and mouse xenograft assays. Molecularly, PRMT7 reprograms the expression of several adhesion molecules through methylation of several transcription factors, such as FoxK1 or NR1H2, which results in primary tumor PCa cell adhesion loss and motility gain. Importantly, PRMT7 is upregulated in advanced stages of Spanish PCa tumor samples and PRMT7 pharmacological inhibition reduces the dissemination of mPCa cells. Thus, here is shown that PRMT7 is a potential therapeutic target and biomarker of mPCa.

cancer biology↗