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类UmuD酶的分子间切割:切割所需残基及底物特异性的鉴定

Intermolecular cleavage by UmuD-like enzymes: identification of residues required for cleavage and substrate specificity.

作者信息

McDonald J P, Peat T S, Levine A S, Woodgate R

机构信息

Section on DNA Replication Repair and Mutagenesis National Institute of Child Health and Human Development, National Institutes of Health, Bethesda, MD, 20892-2725, USA.

出版信息

J Mol Biol. 1999 Feb 5;285(5):2199-209. doi: 10.1006/jmbi.1998.2433.

Abstract

The UmuD-like proteins are best characterized for their role in damage-induced SOS mutagenesis. An essential step in this process is the enzymatic self-processing of the UmuD-like proteins. This reaction is thought to occur either via an intramolecular or intermolecular self-cleavage mechanism. Here, we demonstrate that it can also occur via an heterologous intermolecular cleavage reaction. The Escherichia coli UmuD enzyme demonstrated the broadest substrate specificity, cleaving both E. coli and Salmonella typhimurium UmuD substrates in vivo. In comparison, the wild-type S. typhimurium UmuD (UmuDSt) and MucA enzymes catalyzed intermolecular self-cleavage, but did not facilitate heterologous cleavage. Heterologous cleavage by the UmuDSt enzyme was, however, observed with chimeric UmuD substrates that possess residues 30-55 of UmuDSt. We have further localized the residue predominantly responsible for UmuDSt-catalyzed heterologous cleavage to Ser50 in the substrate molecule. We hypothesize that changes at this residue affect the positioning of the cleavage site of a substrate molecule within the catalytic cleft of the UmuDSt enzyme by affecting the formation of a so-called UmuD "filament-dimer". This hypothesis is further supported by the observation that mutations known to disrupt an E. coli UmuD' filament dimer also block intermolecular UmuDEc cleavage.

摘要

类UmuD蛋白因其在损伤诱导的SOS诱变中的作用而得到了最好的表征。这一过程中的一个关键步骤是类UmuD蛋白的酶促自我加工。该反应被认为是通过分子内或分子间的自我切割机制发生的。在这里,我们证明它也可以通过异源分子间切割反应发生。大肠杆菌UmuD酶表现出最广泛的底物特异性,在体内能切割大肠杆菌和鼠伤寒沙门氏菌的UmuD底物。相比之下,野生型鼠伤寒沙门氏菌UmuD(UmuDSt)和MucA酶催化分子间自我切割,但不促进异源切割。然而,用具有UmuDSt第30 - 55位残基的嵌合UmuD底物观察到了UmuDSt酶的异源切割。我们进一步将主要负责UmuDSt催化异源切割的残基定位到底物分子中的Ser50。我们推测该残基的变化通过影响所谓的UmuD“丝状二聚体”的形成来影响底物分子切割位点在UmuDSt酶催化裂隙中的定位。这一假设得到了进一步支持,即已知破坏大肠杆菌UmuD'丝状二聚体的突变也会阻断分子间UmuDEc切割。

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