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γ-分泌酶对底物的募集

Substrate recruitment by γ-secretase.

作者信息

Fukumori Akio, Feilen Lukas P, Steiner Harald

机构信息

Department of Aging Neurobiology, National Center for Geriatrics and Gerontology, Morioka-cho 7-430, 474-8511, Obu, Japan; Department of Mental Health Promotion, Osaka University Graduate School of Medicine, Machikaneyama-cho 1-17, 560-0043, Toyonaka, Japan.

German Center for Neurodegenerative Diseases (DZNE), Munich, Feodor-Lynen-Str. 17, 81377, Munich, Germany.

出版信息

Semin Cell Dev Biol. 2020 Sep;105:54-63. doi: 10.1016/j.semcdb.2020.03.006. Epub 2020 Apr 22.

Abstract

γ-Secretase is a membrane-embedded protease complex that is crucial for many physiological processes throughout life. Due to its pivotal role in the etiology of Alzheimer's disease (AD), in particular the familial forms of the disease, the enzyme is one of the most studied intramembrane proteases and an important drug target. By cleaving a C-terminal fragment of the β-amyloid precursor protein (APP), γ-secretase generates several amyloid β-peptide (Aβ) species including longer, neurotoxic forms such as Aβ42 that are a widely believed to trigger AD. Besides APP, γ-secretase cleaves numerous other substrates including most prominently Notch1, whose cleavage by γ-secretase is essential for cell differentiation and affected in certain types of cancer. In this review, we will describe the exciting progress made in our understanding of how the γ-secretase complex recognizes and recruits its substrates to its catalytic subunit presenilin for their intramembrane proteolytic cleavage. This complicated process is not well understood and only recently insights from biochemical studies and structural biology are beginning to reveal this secret of γ-secretase.

摘要

γ-分泌酶是一种膜嵌入蛋白酶复合体,对生命过程中的许多生理过程至关重要。由于其在阿尔茨海默病(AD)病因中,特别是在该疾病的家族形式中起着关键作用,该酶是研究最多的跨膜蛋白酶之一,也是一个重要的药物靶点。通过切割β-淀粉样前体蛋白(APP)的C端片段,γ-分泌酶产生几种淀粉样β肽(Aβ),包括更长的、具有神经毒性的形式,如Aβ42,人们普遍认为它会引发AD。除了APP,γ-分泌酶还切割许多其他底物,其中最突出的是Notch1,γ-分泌酶对Notch1的切割对于细胞分化至关重要,并且在某些类型的癌症中受到影响。在这篇综述中,我们将描述在理解γ-分泌酶复合体如何识别其底物并将其招募到其催化亚基早老素以进行跨膜蛋白水解切割方面所取得的令人兴奋的进展。这个复杂的过程尚未得到很好的理解,直到最近,生物化学研究和结构生物学的见解才开始揭示γ-分泌酶的这个秘密。

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