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Swaney, D. L.

Publications and source records attributed to Swaney, D. L..

2 recordsLinked to original sources

Brown adipocyte NOSEMPE promotes nonmitochondrial thermogenesis and improves systemic metabolism through ATF4 activation

Mitochondrial transcription factor A (Tfam)-mediated mtDNA maintenance and transcription, as well as leucine-rich PPR motif-containing protein (Lrpprc)-mediated mtRNA maturation and translation are essential steps of mtDNA-encoded electron transport chain (ETC) protein expression. ETC is essential for mitochondrial thermogenesis, the process of oxygen-dependent heat production inside the mitochondria in brown adipocytes. Here we describe that Tfam or Lrpprc deficiency in brown adipocytes cause non-synchronized ETC mRNA and protein expression (NOSEMPE) and mitochondrial ETC imbalance, ultimately abolish mitochondrial thermogenesis. However, mice with NOSEMPE in brown adipocytes are cold resistant upon an acute 4{degrees}C cold challenge, because of augmented nonmitochondrial thermogenesis driven by the \"NOSEMPE[->]ATF4[->]proteome turnover\" pathway. Importantly, mice with either NOSEMPE or ATF4 overexpression in brown adipocytes are protected against high-fat-diet-induced metabolic abnormalities, indicating a positive association between nonmitochondrial thermogenesis in brown adipocytes and metabolic fitness. Thus, although brown adipocytes are defined by their unique ability to produce heat through mitochondrial respiration, our study demonstrates a novel cytosolic nonmitochondrial thermogenesis in brown adipocytes. Targeting this ATF4-dependent nonmitochondrial thermogenesis in brown adipocytes may represent a new therapeutic strategy for combating metabolic disorders.

physiology

The functional landscape of the human phosphoproteome

Protein phosphorylation is a key post-translational modification regulating protein function in almost all cellular processes. While tens of thousands of phosphorylation sites have been identified in human cells to date, the extent and functional importance of the phosphoproteome remains largely unknown. Here, we have analyzed 6,801 publicly available phospho-enriched mass spectrometry proteomics experiments, creating a state-of-the-art phosphoproteome containing 119,809 human phosphosites. To prioritize functional sites, 59 features indicative of proteomic, structural, regulatory or evolutionary relevance were integrated into a single functional score using machine learning. We demonstrate how this prioritization identifies regulatory phosphosites across different molecular mechanisms and pinpoint genetic susceptibilities at a genomic scale. Several novel regulatory phosphosites were experimentally validated including a role in neuronal differentiation for phosphosites present in the SWI/SNF SMARCC2 complex member. The scored reference phosphoproteome and its annotations identify the most relevant phosphorylations for a given process or disease addressing a major bottleneck in cell signaling studies.

genomics