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胆固醇依赖性鲨烯单加氧酶降解,胆固醇合成中 HMGR 以外的调控点。

Cholesterol-dependent degradation of squalene monooxygenase, a control point in cholesterol synthesis beyond HMG-CoA reductase.

机构信息

School of Biotechnology and Biomolecular Sciences, University of New South Wales, Sydney NSW 2052, Australia.

出版信息

Cell Metab. 2011 Mar 2;13(3):260-73. doi: 10.1016/j.cmet.2011.01.015.

Abstract

Exquisite control of cholesterol synthesis is crucial for maintaining homeostasis of this vital yet potentially toxic lipid. Squalene monooxygenase (SM) catalyzes the first oxygenation step in cholesterol synthesis, acting on squalene before cyclization into the basic steroid structure. Using model cell systems, we found that cholesterol caused the accumulation of the substrate squalene, suggesting that SM may serve as a flux-controlling enzyme beyond 3-hydroxy-3-methylglutaryl-coenzyme A reductase (HMGR, considered as rate limiting). Cholesterol accelerated the proteasomal degradation of SM which required the N-terminal domain, partially conserved in vertebrates but not in lower organisms. Unlike HMGR, SM degradation is not mediated by Insig, 24,25-dihydrolanosterol, or side-chain oxysterols, but rather by cholesterol itself. Importantly, SM's N-terminal domain conferred cholesterol-regulated turnover on heterologous fusion proteins. Furthermore, proteasomal inhibition almost totally eliminated squalene accumulation, highlighting the importance of this degradation mechanism for the control of SM and suggesting this as a possible control point in cholesterol synthesis.

摘要

对胆固醇合成的精细控制对于维持这种重要但潜在有毒脂质的体内平衡至关重要。鲨烯单加氧酶(SM)在胆固醇合成中催化第一个加氧步骤,在环化形成基本甾体结构之前作用于鲨烯。使用模型细胞系统,我们发现胆固醇导致底物鲨烯的积累,表明 SM 可能不仅作为 3-羟-3-甲基戊二酰辅酶 A 还原酶(HMGR,被认为是限速酶),而且作为流量控制酶发挥作用。胆固醇加速了 SM 的蛋白酶体降解,这需要 N 端结构域,该结构域在脊椎动物中部分保守,但在较低等生物中不存在。与 HMGR 不同,SM 的降解不是由 Insig、24,25-二氢羊毛甾醇或侧链氧化固醇介导的,而是由胆固醇本身介导的。重要的是,SM 的 N 端结构域赋予异源融合蛋白胆固醇调节的周转率。此外,蛋白酶体抑制几乎完全消除了鲨烯的积累,突出了这种降解机制对 SM 控制的重要性,并暗示这可能是胆固醇合成的一个可能的控制点。

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