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Chen, X.-R.

Publications and source records attributed to Chen, X.-R..

3 recordsLinked to original sources

An Atomistic Description of Heterotypic Lipid Exchange by Sec14-like Phosphatidylinositol Transfer Proteins

Lipid transfer proteins (LTPs) are core regulators of the membrane dynamics, lipid signaling and intracellular communication networks that connect every organelle in the eukaryotic cell. ATP-independent lipid exchange reactions are a hallmark activity of these proteins. These remarkable reactions are essential for the important biological functions of LTPs but how lipid exchange is executed is not at all understood. Herein, we focus on phosphatidylinositol transfer proteins (PITPs) of the highly conserved and highly expanded Sec14/CRAL-Trio-like protein superfamily that potentiate phosphatidylinositol-4-phosphate (PtdIns4P) signaling in eukaryotic cells. Using an integrated structural approach, we describe in atomistic detail the lipid exchange reaction of Sec14-like PITPs. The molecular concepts we identify not only yield insights into how these PITPs integrate metabolic activity with PtdIns4P signaling in cells but also provide a framework for interpreting the functional mechanisms of other LTPs of the Sec14/CRAL-Trio superfamily.

biophysics↗

Molecular mechanism by which SARS-CoV-2 Orf9b suppresses the Tom70-Hsp90 interaction to evade innate immunity

The Tom70-Hsp90 interaction is critical for activating MAVS-mediated interferon (IFN) production. Upon RNA virus infection, cytosolic Hsp90 recruits key innate immune signaling proteins to MAVS on mitochondria through its interaction with Tom70. To evade this innate immune response, the SARS-CoV-2 protein Orf9b binds to Tom70, thereby disrupting the Tom70-Hsp90 interaction and suppressing IFN production. Despite its importance, the molecular mechanism underlying Orf9b-mediated inhibition of IFN signaling remains unclear. Here, using an integrative approach combining cryo-electron microscopy, 19F NMR spectroscopy, and isothermal titration calorimetry (ITC), we show that Orf9b inhibits Hsp90 binding to Tom70 through a bipartite mechanism. The helix and intrinsically disordered tail of Orf9b sterically block the access of two distinct structural units of Hsp90 to Tom70. We also find that Orf9b-mediated allosteric conformational changes in Tom70 do not contribute to the inhibition of the Hsp90 binding. Comprehensive structural, thermodynamic, and kinetic analyses further reveal that Orf9b primarily slows the association kinetics between Hsp90 and Tom70. Collectively, our results provide a high-resolution mechanistic framework for understanding Orf9b-mediated suppression of the host innate immune response.

biophysics↗

A novel bivalent interaction mode underlies a non-catalytic mechanism for Pin1-mediated Protein Kinase C regulation

Regulated hydrolysis of the phosphoinositide phosphatidylinositol(4,5)-bis-phosphate to diacylglycerol and inositol-1,4,5-P3 defines a major eukaryotic pathway for translation of extracellular cues to intracellular signaling circuits. Members of the lipid-activated protein kinase C isoenzyme family (PKCs) play central roles in this signaling circuit. One of the regulatory mechanisms employed to downregulate stimulated PKC activity is via a proteasome-dependent degradation pathway that is potentiated by peptidyl-prolyl isomerase Pin1. Here, we show that contrary to prevailing models, Pin1 does not regulate conventional PKC isoforms and {beta}II via a canonical cis-trans isomerization of the peptidyl-prolyl bond. Rather, Pin1 acts as a PKC binding partner that controls PKC activity via sequestration of the C-terminal tail of the kinase. The high-resolution structure of Pin1 complexed to the C-terminal tail of PKC{beta}II reveals that a novel bivalent interaction mode underlies the non-catalytic mode of Pin1 action. Specifically, Pin1 adopts a compact conformation in which it engages two conserved phosphorylated PKC motifs, the turn motif and hydrophobic motif, the latter being a non-canonical Pin1-interacting element. The structural information, combined with the results of extensive binding studies and in vivo experiments suggest that non-catalytic mechanisms represent unappreciated modes of Pin1-mediated regulation of AGC kinases and other key enzymes/substrates. Impact statementIntegrated biophysical, structural, and in vivo approaches demonstrate a non-canonical and non-isomerizable binding motif-dependent mode of protein kinase C regulation by the peptidyl-prolyl isomerase Pin1 in mammalian cells.

biophysics↗