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Biology subjects

Terrazas, L. I.

Publications and source records attributed to Terrazas, L. I..

2 recordsLinked to original sources

Integrated genomic and epigenetic profiling reveals RAS pathway as a key driver of odontogenic tumors

Odontogenic tumors (OTs) are highly proliferative lesions with a low number of driving mutations, suggesting that concurrent alternative molecular mechanisms could support their extensive proliferation capacity. In this study, we analyzed 94 tissue samples from 79 patients with OTs and 15 healthy controls to explore their genetic and epigenetic alterations. Whole Exome Sequencing identified the BRAF V600E mutation in 75% of patients. A mutational hotspot analysis of six key genes (NRAS, EGFR, BRAF V600E, SMO L412, SMO W535, KRAS Q22K, PTCH1 R602*, and PTCH1 W129) revealed a high mutational rate, particularly in BRAF (91%), with 90% of BRAF V600E-positive patients being ameloblastomas. DNA methylation in the promoters of nine tumor-related genes (RB1, RASSF1A, BRCA1, BRCA2, MSH2, MLH1, MGMT, TIMP3, BRAF) was assessed in 67 OT patients and 15 controls. Five CpG sites showed significant hypermethylation (p<0.05; FDR q<0.05), notably in RASSF1A (cg50378469, cg50378539) and TIMP3 (cg33197381, cg33197394, cg33197400). Somatic hypermethylation of the full promoter was detected in RASSF1A (8 patients, mean methylation: 17.5%), BRCA1 (3 patients, mean methylation: 11.7%), and MLH1 (1 patient, mean methylation: 2%). Interestingly, 76.5% of BRAF V600E-positive patients had RASSF1A promoter hypermethylation. A strong correlation between BRAF V600E mutation and RASSF1A hypermethylation was detected. Our results might imply a synergistic effect of the BRAF V600E mutation and RASSF1A hypermethylation as determinants in the RAS pathway. These findings, together with observations from other studies, suggest that the RAS pathway is a key axis in OT biology.

genomics↗

A PTP1B-Cdk3 signaling axis promotes cell cycle progression of human glioblastoma cells through an Rb-E2F dependent pathway

Protein tyrosine phosphatase 1B (PTP1B) plays a key role in developing different types of cancer. However, the molecular mechanism underlying this effect is unclear. To identify possible molecular targets of PTP1B that mediate its positive role in tumorigenesis, we undertook a SILAC-based phosphoproteomic approach, which allowed us to identify the Cyclin-dependent kinase 3 (Cdk3) as a novel PTP1B substrate. Molecular docking studies revealed stable interactions between the PTP1B catalytic domain and Cdk3. In addition, we observed that PTP1B dephosphorylates a Cdk3 derived peptide at Tyrosine residue 15 in vitro and interacts with endogenous Cdk3 in the nucleus and cytoplasm of human glioblastoma (GB) cells. Finally, we found that the pharmacological inhibition of PTP1B or its depletion with siRNA leads to cell cycle arrest with the diminished activity of Cdk3, the consequent hypophosphorylation of Rb, and the down-regulation of E2F and its target genes Cdk1, Cyclin A, and Cyclin E1. These data delineate a novel signaling pathway from PTP1B to Cdk3 required for efficient cell cycle progression in an Rb-E2F dependent manner in human GB cells and suggest new therapeutic strategies for treating these tumors.

cancer biology↗