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Roy, S. S.

Publications and source records attributed to Roy, S. S..

2 recordsLinked to original sources

Human Telomerase Expression is under Direct Transcriptional Control of the Telomere-binding-factor TRF2

Tight regulatory mechanisms to maintain repression of human Telomerase (hTERT), the sole protein that synthesizes telomeres, is crucial for normal adult somatic cells. In contrast, enhanced telomerase activity and resulting pathological maintenance of telomeres, is widely understood as causal in >90% of human cancers. These implicate underlying mechanisms connecting hTERT regulation and telomeres, possibly through telomeric proteins, that remain unclear. In light of of recent work by us and others showing non-telomeric function of the telomere-binding protein TRF2, here we examined whether and how TRF2 affected hTERT regulation. Direct binding of TRF2 - spanning [~]450 bp of the hTERT promoter from the Transcriptional Start Site (TSS) - led to TRF2-dependent recruitment of the polycomb repressor complex PRC2 in both normal and cancer cells. This induced repressor histone modifications resulting in TRF2-dependent hTERT repression. Mutations in the hTERT promoter, found frequently in aggressive glioblastoma and reported to destabilize the G-quadruplex structure, resulted in loss of TRF2 binding and consequent hTERT over-expression. Conversely, using G-quadruplex-stabilizing ligands we regained TRF2 binding, hTERT re-suppression, in highly proliferating glioblastoma cells with telomerase hyperactivation due to hTERT promoter mutations. Together, results herein demonstrate direct control of hTERT through TRF2 in a G-quadruplex-dependent manner - implicating mechanisms of how telomerase regulation might be linked to telomeres in normal and cancer cells.

cancer biology

Glucose metabolism distinguishes TE from ICM fate during mammalian embryogenesis

The mouse embryo undergoes compaction at the 8-cell stage and its transition to 16 cells generates polarity such that the outer apical cells are trophectoderm (TE) precursors and the inner cell mass (ICM) gives rise to the embryo. We report here, that this first cell fate specification event is controlled by glucose metabolism. Glucose does not fuel mitochondrial ATP (energy) generation and glycolysis is dispensable for blastocyst formation. Glucose does not help synthesize amino acids, fatty acids, and nucleobases. Instead, glucose metabolized by the hexosamine biosynthetic pathway (HBP) allows nuclear localization of YAP1, and the pentose phosphate pathway (PPP), along with sphingolipid (S1P) signaling, activates mTOR and allows translation of AP-2{gamma}. YAP1, TEAD4 and AP-2{gamma} physically interact to form a nuclear complex that controls TE-specific gene transcription. Glucose signaling has no role in ICM specification, but this cascade of events constituting \"Developmental Metabolism\" specifically controls the fate of TE cells.

developmental biology