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IGF1R is an entry receptor for respiratory syncytial virus 期刊论文
NATURE, 2020, 583 (7817) : 615-+
作者:  Pasquina-Lemonche, L.;  Burns, J.;  Turner, R. D.;  Kumar, S.;  Tank, R.;  Mullin, N.;  Wilson, J. S.;  Chakrabarti, B.;  Bullough, P. A.;  Foster, S. J.;  Hobbs, J. K.
收藏  |  浏览/下载:21/0  |  提交时间:2020/07/03

Respiratory syncytial virus enters cells by binding to cell-surface IGFR1, which activates PKC zeta and induces trafficking of the NCL coreceptor to the RSV particles at the cell surface.


Pneumonia resulting from infection is one of the leading causes of death worldwide. Pulmonary infection by the respiratory syncytial virus (RSV) is a large burden on human health, for which there are few therapeutic options(1). RSV targets ciliated epithelial cells in the airways, but how viruses such as RSV interact with receptors on these cells is not understood. Nucleolin is an entry coreceptor for RSV2 and also mediates the cellular entry of influenza, the parainfluenza virus, some enteroviruses and the bacterium that causes tularaemia(3,4). Here we show a mechanism of RSV entry into cells in which outside-in signalling, involving binding of the prefusion RSV-F glycoprotein with the insulin-like growth factor-1 receptor, triggers the activation of protein kinase C zeta (PKC zeta). This cellular signalling cascade recruits nucleolin from the nuclei of cells to the plasma membrane, where it also binds to RSV-F on virions. We find that inhibiting PKC zeta activation prevents the trafficking of nucleolin to RSV particles on airway organoid cultures, and reduces viral replication and pathology in RSV-infected mice. These findings reveal a mechanism of virus entry in which receptor engagement and signal transduction bring the coreceptor to viral particles at the cell surface, and could form the basis of new therapeutics to treat RSV infection.


  
Structural basis of ligand recognition and self-activation of orphan GPR52 期刊论文
NATURE, 2020
作者:  Liu, Guoxia;  Papa, Arianne;  Katchman, Alexander N.;  Zakharov, Sergey I.;  Roybal, Daniel;  Hennessey, Jessica A.;  Kushner, Jared;  Yang, Lin;  Chen, Bi-Xing;  Kushnir, Alexander;  Dangas, Katerina;  Gygi, Steven P.;  Pitt, Geoffrey S.;  Colecraft, Henry M.;  Ben-Johny, Manu;  Kalocsay, Marian;  Marx, Steven O.
收藏  |  浏览/下载:11/0  |  提交时间:2020/07/03

Structures of the orphan G-protein-coupled receptor GPR52 in ligand-free, G-protein-coupled and ligand-bound states reveal that extracellular loop 2 occupies the orthosteric binding pocket and functions as a built-in agonist to activate the receptor.


GPR52 is a class-A orphan G-protein-coupled receptor that is highly expressed in the brain and represents a promising therapeutic target for the treatment of Huntington'  s disease and several psychiatric disorders(1,2). Pathological malfunction of GPR52 signalling occurs primarily through the heterotrimeric G(s) protein(2), but it is unclear how GPR52 and G(s) couple for signal transduction and whether a native ligand or other activating input is required. Here we present the high-resolution structures of human GPR52 in three states: a ligand-free state, a G(s)-coupled self-activation state and a potential allosteric ligand-bound state. Together, our structures reveal that extracellular loop 2 occupies the orthosteric binding pocket and operates as a built-in agonist, conferring an intrinsically high level of basal activity to GPR52(3). A fully active state is achieved when G(s) is coupled to GPR52 in the absence of an external agonist. The receptor also features a side pocket for ligand binding. These insights into the structure and function of GPR52 could improve our understanding of other self-activated GPCRs, enable the identification of endogenous and tool ligands, and guide drug discovery efforts that target GPR52.


  
Pivotal roles of environmental sensing and signaling mechanisms in plant responses to climate change 期刊论文
GLOBAL CHANGE BIOLOGY, 2018, 24 (12) : 5573-5589
作者:  Bigot, Servane;  Buges, Julie;  Gilly, Lauriane;  Jacques, Cecile;  Le Boulch, Pauline;  Berger, Marie;  Delcros, Pauline;  Domergue, Jean-Baptiste;  Koehl, Astrid;  Ley-Ngardigal, Bera;  Loup Tran Van Canh;  Couee, Ivan
收藏  |  浏览/下载:11/0  |  提交时间:2019/04/09
abiotic stress  global change  multiple stress  oxidative stress  plant acclimation  signal transduction  stress resilience  stress sensors