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补体C5转化酶的结构与功能

Structure and function of complement C5 convertase enzymes.

作者信息

Pangburn M K, Rawal N

机构信息

Department of Biochemistry, University of Texas Health Science Center, Tyler 75708, USA.

出版信息

Biochem Soc Trans. 2002 Nov;30(Pt 6):1006-10. doi: 10.1042/bst0301006.

Abstract

The multisubunit enzymes of the complement system that cleave C5 have many unusual properties, the most striking of which is that they acquire their specificity for C5 following cleavage of another substrate C3. C5 convertases are assemblies of two proteins C4b and C2a (classical or lectin pathways) or C3b and Bb (alternative pathway) and additional C3b molecules. The catalytic complexes (C4b, C2a or C3b, Bb) are intrinsically unstable ( t (1/2)=1-3 min) and the enzymes are controlled by numerous regulatory proteins that accelerate this natural decay rate. Immediately after assembly, the bi-molecular enzymes preferentially cleave the protein C3 and exhibit poor activity toward C5 (a K (m) of approx. 25 microM and a C5 cleavage rate of 0.3-1 C5/min at V (max)). Efficient C3 activation results in the covalent attachment of C3b to the cell surface and to the enzyme itself, resulting in formation of C3b-C3b and C4b-C3b complexes. Our studies have shown that deposition of C3b alters the specificity of the enzymes of both pathways by changing the K (m) for C5 more than 1000-fold from far above the physiological C5 concentration to far below it. Thus, after processing sufficient C3 at the surface of a microorganism, the enzymes switch to processing C5, which initiates the formation of the cytolytic membrane attack complex of complement.

摘要

补体系统中裂解C5的多亚基酶具有许多不同寻常的特性,其中最显著的是它们在裂解另一种底物C3后获得对C5的特异性。C5转化酶是由两种蛋白质C4b和C2a(经典或凝集素途径)或C3b和Bb(替代途径)以及额外的C3b分子组装而成。催化复合物(C4b、C2a或C3b、Bb)本质上不稳定(半衰期=1-3分钟),并且这些酶受多种调节蛋白控制,这些调节蛋白会加速这种自然衰变率。组装后,双分子酶优先裂解蛋白质C3,对C5的活性较差(在V(max)时,K(m)约为25 microM,C5裂解速率为0.3-1 C5/分钟)。有效的C3激活导致C3b共价附着于细胞表面和酶本身,从而形成C3b-C3b和C4b-C3b复合物。我们的研究表明,C3b的沉积通过将C5的K(m)从远高于生理C5浓度改变到远低于生理C5浓度超过1000倍,从而改变了两条途径中酶的特异性。因此,在微生物表面处理足够的C3后,这些酶转而处理C5,从而启动补体溶细胞性膜攻击复合物的形成。

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