Structural and biochemical analyses of a Clostridium perfringens sortase D transpeptidase.

Randy Suryadinata, Shane A Seabrook, Timothy E Adams, Stewart D Nuttall, Thomas S Peat
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引用次数: 14

Abstract

The assembly and anchorage of various pathogenic proteins on the surface of Gram-positive bacteria is mediated by the sortase family of enzymes. These cysteine transpeptidases catalyze a unique sorting signal motif located at the C-terminus of their target substrate and promote the covalent attachment of these proteins onto an amino nucleophile located on another protein or on the bacterial cell wall. Each of the six distinct classes of sortases displays a unique biological role, with sequential activation of multiple sortases often observed in many Gram-positive bacteria to decorate their peptidoglycans. Less is known about the members of the class D family of sortases (SrtD), but they have a suggested role in spore formation in an oxygen-limiting environment. Here, the crystal structure of the SrtD enzyme from Clostridium perfringens was determined at 1.99 Å resolution. Comparative analysis of the C. perfringens SrtD structure reveals the typical eight-stranded β-barrel fold observed in all other known sortases, along with the conserved catalytic triad consisting of cysteine, histidine and arginine residues. Biochemical approaches further reveal the specifics of the SrtD catalytic activity in vitro, with a significant preference for the LPQTGS sorting motif. Additionally, the catalytic activity of SrtD is most efficient at 316 K and can be further improved in the presence of magnesium cations. Since C. perfringens spores are heat-resistant and lead to foodborne illnesses, characterization of the spore-promoting sortase SrtD may lead to the development of new antimicrobial agents.

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产气荚膜梭菌分选酶D转肽酶的结构和生化分析。
各种致病蛋白在革兰氏阳性菌表面的组装和固定是由分选酶家族介导的。这些半胱氨酸转肽酶催化位于其靶底物c端的独特分选信号基序,并促进这些蛋白质与位于另一蛋白质或细菌细胞壁上的氨基亲核试剂的共价附着。六种不同类型的分选酶中的每一种都显示出独特的生物学作用,在许多革兰氏阳性细菌中经常观察到多种分选酶的顺序激活来修饰它们的肽聚糖。关于D类分类酶家族(SrtD)的成员知之甚少,但它们在缺氧环境下的孢子形成中发挥了作用。在这里,产气荚膜梭菌SrtD酶的晶体结构在1.99 Å分辨率下测定。对比分析产气荚膜荚膜菌SrtD的结构,发现在所有其他已知的分选酶中都观察到典型的8链β-桶状折叠,以及由半胱氨酸、组氨酸和精氨酸残基组成的保守催化三联体。生化方法进一步揭示了SrtD体外催化活性的具体特征,其中LPQTGS分类基序具有显著的优先性。此外,SrtD的催化活性在316 K时最有效,并且在镁离子的存在下可以进一步提高。由于产气荚膜荚膜芽孢杆菌孢子具有耐热性并可导致食源性疾病,因此对促孢子分选酶SrtD的研究可能有助于开发新的抗菌药物。
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