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Ortega-Sabater, C.

Publications and source records attributed to Ortega-Sabater, C..

2 recordsLinked to original sources

Pro-tumor and prothrombotic activities of hepsin in colorectal cancer cells and suppression by venetoclax

Hepsin is a type II transmembrane serine protease whose expression has been linked to greater tumorigenicity and worse prognosis in different tumors such as prostate and gastric cancer. Recently, our group described hepsin expression in the primary biopsy as a potential biomarker of thrombosis and metastasis in localized colorectal cancer patients. Here we explored the role of hepsin in this tumor. Hepsin overexpression increased Caco-2 cell migration and invasion, higher phosphorylation of Erk1/2 and STAT3 and led to more thrombin generation in plasma. Indeed, our study revealed higher plasma levels of hepsin in metastatic colorectal cancer patients, which was associated with a greater tendency toward thrombosis. By virtual screening of a FDA-approved drug library, we identified venetoclax as a potent hepsin inhibitor, reducing the metastatic and prothrombotic phenotype of Caco-2 cells, but not of other colorectal cancer cells without hepsin expression. Interestingly, pre-treating Caco-2 cells overexpressing hepsin with venetoclax reduced its in vivo invasiveness. Taken together, our results demonstrate that elevated hepsin levels correlate with a more aggressive and prothrombotic tumor phenotype. Likewise, they evidence an antitumor role for venetoclax as a hepsin inhibitor. This lays the groundwork for molecular targeted therapy for colorectal cancer.

cancer biology↗

Stochastic fluctuations drive non-genetic evolution of proliferation in clonal cancer cell populations

Evolutionary dynamics allows us to understand many changes happening in a broad variety of biological systems, ranging from individuals to complete ecosystems. It is also behind a number of remarkable organizational changes that happen during the natural history of cancers. These reflect tumour heterogeneity, which is present at all cellular levels, including the genome, proteome and phenome, shaping its development and interrelation with its environment. An intriguing observation in different cohorts of oncological patients is that tumours exhibit an increased proliferation as the disease progresses, while the timescales involved are apparently too short for the fixation of sufficient driver mutations to promote an explosive growth. Here we discuss how phenotypic plasticity, emerging from a single genotype, may play a key role and provide a ground for a continuous acceleration of the proliferation rate of clonal populations with time. We address this question by combining the analysis of real time growth of non-small-cell lung carcinoma cells (line NCI-H460) together with stochastic and deterministic mathematical models that capture proliferation trait heterogeneity in clonal populations to elucidate the contribution of phenotypic transitions on tumour growth dynamics.

cancer biology↗