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通过产气荚膜梭菌的多基因组序列分析发现溶酶。

Lytic enzyme discovery through multigenomic sequence analysis in Clostridium perfringens.

机构信息

Laboratory of Bacterial Pathogenesis and Immunology, The Rockefeller University, New York, NY 10065, USA.

出版信息

Appl Microbiol Biotechnol. 2011 Mar;89(6):1783-95. doi: 10.1007/s00253-010-2982-8. Epub 2010 Nov 18.

Abstract

With their ability to lyse Gram-positive bacteria, phage lytic enzymes (or lysins) have received a great deal of attention as novel anti-infective agents. The number of known genes encoding these peptidoglycan hydrolases has increased markedly in recent years, due in large part to advances in DNA sequencing technology. As the genomes of more and more bacterial species/strains are sequenced, lysin-encoding open reading frames (ORFs) can be readily identified in lysogenized prophage regions. In the current study, we sought to assess lysin diversity for the medically relevant pathogen Clostridium perfringens. The sequenced genomes of nine C. perfringens strains were computationally mined for prophage lysins and lysin-like ORFs, revealing several dozen proteins of various enzymatic classes. Of these lysins, a muramidase from strain ATCC 13124 (termed PlyCM) was chosen for recombinant analysis based on its dissimilarity to previously characterized C. perfringens lysins. Following expression and purification, various biochemical properties of PlyCM were determined in vitro, including pH/salt-dependence and temperature stability. The enzyme exhibited activity at low μg/ml concentrations, a typical value for phage lysins. It was active against 23 of 24 strains of C. perfringens tested, with virtually no activity against other clostridial or non-clostridial species. Overall, PlyCM shows potential for development as an enzybiotic agent, demonstrating how expanding genomic databases can serve as rich pools for biotechnologically relevant proteins.

摘要

由于噬菌体裂解酶(或溶素)能够裂解革兰氏阳性菌,因此作为新型抗感染药物,它们受到了广泛关注。近年来,由于 DNA 测序技术的进步,已知编码这些肽聚糖水解酶的基因数量显著增加。随着越来越多的细菌物种/菌株的基因组被测序,在溶原性噬菌体区域中可以轻易地识别出编码溶素的开放阅读框(ORF)。在本研究中,我们试图评估与医学相关病原体产气荚膜梭菌的溶素多样性。对 9 株产气荚膜梭菌的测序基因组进行了计算机挖掘,以寻找噬菌体溶素和溶素样 ORF,结果发现了数十种具有不同酶类别的蛋白质。在这些溶素中,根据其与已鉴定的产气荚膜梭菌溶素的不同,选择了来自 ATCC 13124 菌株的一种胞壁质酶(称为 PlyCM)进行重组分析。在表达和纯化后,在体外测定了 PlyCM 的各种生化特性,包括 pH/盐依赖性和温度稳定性。该酶在低 μg/ml 浓度下具有活性,这是噬菌体溶素的典型值。它对测试的 24 株产气荚膜梭菌中的 23 株具有活性,对其他梭菌或非梭菌几乎没有活性。总的来说,PlyCM 显示出作为酶制剂开发的潜力,表明扩展基因组数据库如何成为生物技术相关蛋白质的丰富来源。

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