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Gao, E.

Publications and source records attributed to Gao, E..

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Global impact of phosphorylation on protein endurance

Post-translational modifications such as phosphorylation can have profound effects on the physicochemical and biological properties of proteins. However, high-throughput and systematic approaches have not yet been developed to assess the effects of specific modification types and sites on protein lifetime, which represents a key parameter for understanding signaling rewiring and drug development. Here we describe a proteomic method, DeltaSILAC, to quantify the impact of site-specific phosphorylation on the endurance of thousands of proteins in live cells. Being configured on the reproducible data-independent acquisition mass spectrometry (DIA-MS), the pulse labeling approach using stable isotope-labeled amino acids in cells (SILAC), together with a novel peptide-level matching strategy, this multiplexed assay revealed the global delaying effect of phosphorylation on protein turnover in growing cancer cells. Further, we identified local sequence and structural features in proximity to the phosphorylated sites that could be associated with protein endurance alterations. We found that phosphorylated sites accelerating protein turnover are functionally selected for cell fitness and evolutionarily conserved. DeltaSILAC provides a generalizable approach for prioritizing the effects of phosphorylation sites on protein lifetime in the context of cell signaling and disease biology, which is highly complementary to existing methods. Finally, DeltaSILAC is widely applicable to diverse post-translational modification types and different cell systems.

systems biology

Activation or inhibition of PPARα-mediated fatty acid β-oxidation does not active cardiomyocyte proliferation in normal or infarcted adult mice

ObjectivesPPAR genes are known as the important regulators of fatty acid oxidation and energy homeostasis. PPAR is highly expressed in the embryonic and adult heart. Previous studies from infant mouse hearts have suggested that activation of PPAR using GW7647 treatment or cardiac-restricted activation of PPAR using MHC-PPAR transgenic mice enhanced fatty acid {beta}-oxidation and promoted cardiomyocyte proliferation rate in the postnatal day 4 mouse heart. Here, we further investigate the impact of PPAR-mediated fatty acid {beta}-oxidation on cardiomyocyte proliferation in the adult mouse heart.\n\nMethods and ResultsAdult wild-type (C57BL/6J) mice were subjected to five injections of GW7647, a highly specific PPAR agonist, or vehicle (saline). Cardiomyocyte proliferation was analyzed by quantification of DNA synthesis via ethynyldeoxyuridine (EdU) incorporation and quantification of cells undergoing mitosis using phosphorylated histone H3 (PH3). GW7647 treatment resulted in activation of PPAR target genes associated with fatty acid metabolism and {beta}-oxidation, validating its biological activity. However, GW7647 treatment did not active cardiomyocyte proliferation in the normal heart. In parallel, mice were subjected to myocardial infarction (MI) using permanent coronary artery occlusion. Both GW7647-treatd wild-type mice and MHC-PPAR transgenic mice showed no significant differences in cardiomyocyte DNA synthesis and mitosis compared with vehicle-treated wild-type mice after MI. Furthermore, inhibition of PPAR-mediated fatty acid {beta}-oxidation using etomoxir (ETO) treatment had no impact on cardiomyocyte proliferation in both normal and infarcted hearts of wild-type mice compared with vehicle treatment.\n\nSummaryThese findings suggest that activation or inhibition of PPAR-mediated fatty acid {beta}-oxidation did not active cardiomyocyte proliferation in normal or infarcted hearts of adult mice. Any effects on cardiac function observed following PPAR activation treatment is independent of enhanced cardiomyocyte renewal in the adult heart.

cell biology