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Vidhipriya, K.

Publications and source records attributed to Vidhipriya, K..

2 recordsLinked to original sources

A PKM2-YAP reciprocal repartitioning modulates invasion of breast cancer cells

Invasive cancer cells exhibit distinct morphomigrational and metabolic traits when confronted with biophysically variant matrix microenvironments enroute metastasis. Whether dynamical shifts in such traits are interlinked through a common molecular program remains ill-understood. Using triple negative breast cancer cell lines on Collagen I substrata coated hydrogels recapitulating stiffness values of non-cancerous breast tissue and the desmoplasia of tumors, we observed greater cell shape polarization and migration in the latter. Associated lower lactate and pyruvate levels in such conditions motivated us to examine their pyruvate kinase M2 expression, which showed nuclear and cytoplasmic localization in softer and stiffer environments respectively. Pharmacologically impairing PKM2 activity in stiffer substrata decreased migration and shape polarization of cancer cells while increasing lactate and pyruvate levels. In contrast, increasing its activity on softer substrata attenuated cancer cell migration and elongation. We assayed for localization of the mechanosensory protein YAP upon PKM2 activity modulation: PKM2 activation increased nuclear YAP localization on soft substrata. Pharmacologically inhibiting YAP on stiff substrata not just decreased migration but also increased nuclear localization of PKM2 and lactate and pyruvate levels. We propose that a reciprocal repartitioning of PKM2-YAP interlinks the cognate metabolic and migrational states of cancer cells; targeting such positive feedback may hold the key to future therapeutic strategies.

cancer biology↗

Dicarbonyl stress debilitates mesothelial defense against metastasizing ovarian cancer

Chronic metabolic disorders and aging result in accumulation of active dicarbonyls that glycate biomolecules rendering them dysfunctional. Although metabolic aberrations are known to be epidemiologically associated with faster cancer progression, cell biological determinants of such associations remain elusive. The formation of micro-metastases in epithelial ovarian cancer involves its colonization of visceral peritonea through clearance of mesothelia that line the coelom. In this study, we observe that cocultures of immortalized human coelomic MeT-5A mesothelia with human ovarian cancer cells OVCAR-3 and SK-OV-3 show greater infiltration by the latter when exposed to increasing concentrations of the dicarbonyl methylglyoxal (MG). Treatment with increasing concentrations of MG caused death and senescence within human and murine serosal mesothelia. Cells showed higher levels of advanced glycation end products, dysregulated occludens junction protein ZO-1, and disrupted localization of cortical filamentous actin and its regulator ezrin, indicating poor inter-cell adhesion. Time lapse imaging also showed impaired migration for MG-treated single mesothelia and for their collective monolayers. Agent-based computer modeling of coculture dynamics predicted that a combined effect of confluence and migration allows inter-adherent mesothelia to contain the spread of colonizing cancer cells, which was confirmed through coculture time lapses of cancer colonization within higher and lower mesothelial densities. We found ovarian cancer cells showed higher levels of glyoxalase-1 (GLO-1) enzyme, which catabolizes MG, suggesting how they escaped its cytotoxic effects. Consistent with this, treatment of OVCAR-3 with MG concurrently with pharmacological inhibition of GLO-1 showed greater cell death. Our results suggest dicarbonyl stress helps colonizing cancer cells overcome the resistance of natural homoeostatic barriers and its inhibition may, in supplementation with chemotherapy, stem metastasis.

cancer biology↗