天然素系统中C3活化酶复合物的形成和组成。其组分在固相胰蛋白酶琼脂糖上的顺序组装。

W Vogt, G Schmidt, L Dieminger, R Lynen
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引用次数: 0

摘要

在C3b和Mg++存在下,当适当的素因子B(富含甘氨酸的β -糖蛋白,GBG)被D因子激活(GBG被切割)时,会产生一种活性的C3切割酶。在这个反应中,因子D可以被胰蛋白酶取代,但即使这样,也需要C3b和Mg++。在缺乏C3b和/或mg++的情况下,胰蛋白酶不会从GBG中产生C3切割活性,尽管在这些条件下胰蛋白酶也会切割GBG并释放其GGG片段(B)。在GGG释放后立即将C3b添加到GGG中不会产生C3切割酶。这些发现表明,C3b、GBG和mg++相互作用,并且只有在与C3b相关的情况下,GBG才能以一种表达其酶活性的方式被切割,这种酶活性存在于C3b、GGG复合物中。配合物不稳定(20℃时半衰期:9分钟);mg++不影响其稳定性,也不是活性所必需的。有可能将C3切割酶的基本组分按顺序固定在琼脂糖上,从而阐明其形成的单个步骤和顺序。通过将C3与与琼脂糖共价结合的胰蛋白酶孵育,激活C3并将生成的C3b片段固定在琼脂糖上。琼脂糖- c3b中间体在mg++存在的情况下能够结合GBG。然后,在溶液中加入因子D或胰蛋白酶可以裂解GBG;得到的固相固定配合物在Mg++存在和不存在的情况下均具有C3裂解活性。省略任何这些步骤或成分,或改变序列都不会产生活性酶。C3b、GBG和Mg++的混合物本身具有较弱的C3裂解活性。在这种孵育混合物中,C3的裂解过程缓慢,持续数小时,不伴有GBG的裂解。因此,在依赖于cvf和依赖于c3b的C3切割系统之间存在完全的类比。C3b和CVF的作用方式相同,它们与GBG和mg++形成可逆的弱活性C3切割复合物,当GBG与CVF或C3b结合时,被胰蛋白酶样酶切割,其活性明显增强,但会发生衰减。
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Formation and composition of the C3 activating enzyme complex of the properdin system. Sequential assembly of its components on solid-phase trypsin-agarose.

An active C3 cleaving enzyme is generated when properdin factor B (glycine-rich beta-glycoprotein, GBG) is activated (GBG is cleaved) by factor D in the presence of C3b and Mg++. Factor D can be replaced by trypsin in this reaction but even then C3b and Mg++ are required. In the absence of C3b and/or Mg++ trypsin does not generate C3 cleaving activity from GBG although it cleaves GBG and releases its GGG fragment (B) under these conditions as well. Addition of C3b to GGG immediately after its release does not yield a C3 cleaving enzyme. These findings indicate that C3b, GBG and Mg++ interact, and that only in association with C3b can GBG be cleaved in a way that its enzyme activity, residing in a C3b, GGG complex, is expressed. The complex is labile (half-life at 20 degrees C: 9 minutes); Mg++ does not affect its stability nor is it essential for the activity. It was possible to sequentially fix on agarose the essential components of the C3 cleaving enzyme and thus to elucidate the single steps and the order of its formation. C3 was activated and the resulting C3b fragment fixed on agarose by incubating C3 with trypsin covalently bound to the agarose. The agarose-C3b intermediate was capable of binding GBG provided Mg++ was present. GBG could then be cleaved by factor D or trypsin added in solution; the solid-phase-fixed complex obtained had C3 cleaving activity, in the presence as well as absence of Mg++. Omission of any of these steps or components, or changes in the sequence did not give rise to an active enzyme. Mixtures of C3b, GBG and Mg++ have weak C3 cleaving activity by themselves. C3 cleavage in such incubation mixtures proceeds slowly for hours and is not accompanied by cleavage of GBG. There is thus complete analogy between the CVF-dependent and C3b-dependent C3 cleaving systems. C3b and CVF act in the same way, they form a reversible, weakly active C3 cleaving complex with GBG and Mg++, the activity of which is markedly enhanced but becomes subject to decay when GBG is cleaved by trypsin-like enzymes while bound to CVF or C3b.

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