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Newton, A. C.

Publications and source records attributed to Newton, A. C..

3 recordsLinked to original sources

Ca2+-dependent liquid-liquid phase separation underlies intracellular Ca2+ stores.

Endoplasmic/sarcoplasmic reticulum Ca2+ stores are essential to myriad cellular processes, however, the structure of these stores is largely unknown and existing models do not address all literature observations. We investigate CASQ1 - the major Ca2+ binding protein of skeletal muscle - and discover Ca2+-dependent liquid-liquid phase separation activity. The intrinsic disorder of CASQ1 underlies this activity and is regulated via phosphorylation by the secretory pathway kinase FAM20C. This divalent cation driven condensation demonstrates liquid-liquid phase separation occurs within the endoplasmic/sarcoplasmic reticulum, mechanistically explains efficient Ca2+ buffering and storage, and represents a largely unexplored mechanism of divalent-cation driven protein association.

biochemistry

Protein Kinase C gamma Mutations Drive Spinocerebellar Ataxia Type 14 by Impairing Autoinhibition

Spinocerebellar ataxia type 14 (SCA14) is a neurodegenerative disease caused by germline variants in the diacylglycerol (DG)/Ca2+-regulated protein kinase C gamma (PKC{gamma}), leading to Purkinje cell degeneration and progressive cerebellar dysfunction. The majority of the approximately 50 identified variants cluster to the DG-sensing C1 domains. Here, we use a FRET- based activity reporter to show that ataxia-associated PKC{gamma} mutations enhance basal activity by compromising autoinhibition. Although impaired autoinhibition generally leads to PKC degradation, the C1 domain mutations protect PKC{gamma} from phorbol ester-induced downregulation. Furthermore, it is the degree of disrupted autoinhibition, not changes in the amplitude of agonist- stimulated activity, that correlate with disease severity. This enhanced basal signaling rewires the brain phosphoproteome, as assessed by phosphoproteomic analysis of cerebella from mice expressing a human PKC{gamma} transgene harboring a SCA14 C1 domain mutation, H101Y. Validating that the pathology arises from disrupted autoinhibition, we show that the degree of impaired autoinhibition correlates inversely with age of disease onset in patients: mutations that cause high basal activity are associated with early onset, whereas those that only modestly increase basal activity, including a previously undescribed variant, D115Y, are associated with later onset. Molecular modeling indicates that almost all SCA14 variants that are not in the C1 domains are at interfaces with the C1B domain, and bioinformatics analysis reveals that variants in the C1B domain are under-represented in cancer. Thus, clustering of SCA14 variants to the C1B domain provides a unique mechanism to enhance PKC{gamma} basal activity while protecting the enzyme from downregulation, deregulating the cerebellar phosphoproteome. One Sentence SummarySCA14 driver mutations in PKC{gamma} impair autoinhibition, with defect correlating inversely with age of disease onset.

biochemistry

PHLPP1 Counter-regulates STAT1-mediated Inflammatory Signaling

Inflammation is an essential aspect of innate immunity but also contributes to diverse human diseases. Although much is known about the kinases that control inflammatory signaling, less is known about the opposing phosphatases. Here we report that deletion of the gene encoding PH domain Leucine-rich repeat Protein Phosphatase 1 (PHLPP1) protects mice from lethal lipopolysaccharide (LPS) challenge and live Escherichia coli infection. Investigation of PHLPP1 function in macrophages reveals that it controls the magnitude and duration of inflammatory signaling by dephosphorylating the transcription factor STAT1 on Ser727 to inhibit its activity, reduce its promoter residency, and reduce the expression of target genes involved in innate immunity and cytokine signaling. This previously undescribed function of PHLPP1 depends on a bipartite nuclear localization signal in its unique N-terminal extension. Our data support a model in which nuclear PHLPP1 dephosphorylates STAT1 to control the magnitude and duration of inflammatory signaling in macrophages.\n\nHIGHLIGHTSO_LIPHLPP1 controls the transcription of genes involved in inflammatory signaling\nC_LIO_LIPHLPP1 dephosphorylates STAT1 on Ser727 to reduce its transcriptional activity\nC_LIO_LIPHLPP1 has a nuclear localization signal and a nuclear exclusion signal\nC_LIO_LILoss of PHLPP1 protects mice from sepsis-induced death\nC_LI

biochemistry