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Boopathi, R.

Publications and source records attributed to Boopathi, R..

2 recordsLinked to original sources

Aurora kinase A mediated phosphorylation of mPOU is critical for skeletal muscle differentiation

Aurora kinases are Ser/Thr-directed protein kinases which play pivotal roles in mitosis. Recent evidences highlight the importance of these kinases in non-mitotic biological events like skeletal myogenesis. Our earlier study identified POU6F1 (or mPOU) as a novel Aurora kinase A (AurkA) substrate. Here, we report that AurkA phosphorylates POU6F1 at Ser197 and inhibits its DNA binding ability. Delving into POU6F1 physiology, we find that the phospho-mimic (S197D) POU6F1 mutant exhibits enhancement, while wild type (WT) or phospho-deficient (S197A) mutant shows retardation in C2C12 myoblast differentiation. Interestingly, POU6F1 depletion phenocopies S197D-POU6F1 overexpression in the differentiation context. Collectively, our results signify mPOU as a negative regulator of skeletal muscle differentiation and strengthens the importance of AurkA in skeletal myogenesis.

cell biology

The Largest Subunit of Human TFIIIC Complex, TFIIIC220, a Lysine Acetyltransferase Targets Histone H3K18

TFIIIC is a multisubunit complex that recognizes promoter elements and recruits TFIIIB and RNA polymerase III. Human TFIIIC complex possess lysine acetyltransferase activity which is critical in relieving chromatin mediated repression for RNA polymerase III-mediated transcription; two subunits of the TFIIIC complex, TFIIIC110 and TFIIIC90, were shown to acetylate H3 in vitro. Here we show that the largest and DNA binding subunit of TFIIIC complex, TFIIIC220, possesses intrinsic lysine acetyltransferase activity and acetylates histone H3K18 residue. By employing homology search we have identified the potential catalytic domain of TFIIIC220 which efficiently acetylate core histones in vitro. Point mutations at the critical residues of the identified acetyltransferase domain drastically reduces the acetyltransferase activity. Significantly, knockdown of TFIIIC220 in HepG2 cell line dramatically reduces global H3K18 acetylation level suggesting that TFIIIC220 is a crucial KAT to maintain acetylation homeostasis in the cell.

molecular biology