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与家族性高胆固醇血症相关的前蛋白转化酶枯草溶菌素9(PCSK9)及其突变体的结构和生物物理研究。

Structural and biophysical studies of PCSK9 and its mutants linked to familial hypercholesterolemia.

作者信息

Cunningham David, Danley Dennis E, Geoghegan Kieran F, Griffor Matthew C, Hawkins Julie L, Subashi Timothy A, Varghese Alison H, Ammirati Mark J, Culp Jeffrey S, Hoth Lise R, Mansour Mahmoud N, McGrath Katherine M, Seddon Andrew P, Shenolikar Shirish, Stutzman-Engwall Kim J, Warren Laurie C, Xia Donghui, Qiu Xiayang

机构信息

Pfizer Inc., Eastern Point Road, Groton, Connecticut 06430, USA.

出版信息

Nat Struct Mol Biol. 2007 May;14(5):413-9. doi: 10.1038/nsmb1235. Epub 2007 Apr 15.

Abstract

Proprotein convertase subtilisin kexin type 9 (PCSK9) lowers the abundance of surface low-density lipoprotein (LDL) receptor through an undefined mechanism. The structure of human PCSK9 shows the subtilisin-like catalytic site blocked by the prodomain in a noncovalent complex and inaccessible to exogenous ligands, and that the C-terminal domain has a novel fold. Biosensor studies show that PCSK9 binds the extracellular domain of LDL receptor with K(d) = 170 nM at the neutral pH of plasma, but with a K(d) as low as 1 nM at the acidic pH of endosomes. The D374Y gain-of-function mutant, associated with hypercholesterolemia and early-onset cardiovascular disease, binds the receptor 25 times more tightly than wild-type PCSK9 at neutral pH and remains exclusively in a high-affinity complex at the acidic pH. PCSK9 may diminish LDL receptors by a mechanism that requires direct binding but not necessarily receptor proteolysis.

摘要

前蛋白转化酶枯草溶菌素9型(PCSK9)通过一种尚不明确的机制降低表面低密度脂蛋白(LDL)受体的丰度。人PCSK9的结构显示,在非共价复合物中,枯草溶菌素样催化位点被前结构域阻断,对外源配体不可接近,并且C末端结构域具有新的折叠形式。生物传感器研究表明,在血浆中性pH值下,PCSK9与LDL受体的细胞外结构域结合,解离常数(K(d))=170 nM,但在内体酸性pH值下,K(d)低至1 nM。与高胆固醇血症和早发性心血管疾病相关的功能获得性突变体D374Y,在中性pH值下与受体的结合比野生型PCSK9紧密25倍,并且在酸性pH值下仅以高亲和力复合物形式存在。PCSK9可能通过一种需要直接结合但不一定需要受体蛋白水解的机制减少LDL受体。

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