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Building blocks and blueprints for bacterial autolysins

机译:构建细菌自溶素的块和蓝图

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Bacteria utilize a wide variety of endogenous cell wall hydrolases, or autolysins, to remodel their cell walls during processes including cell division, biofilm formation, and programmed death. We here systematically investigate the composition of these enzymes in order to gain insights into their associated biological processes, potential ways to disrupt them via chemotherapeutics, and strategies by which they might be leveraged as recombinant antibacterial biotherapies. To do so, we developed LEDGOs (lytic enzyme domains grouped by organism), a pipeline to create and analyze databases of autolytic enzyme sequences, constituent domain annotations, and architectural patterns of multi-domain enzymes that integrate peptidoglycan binding and degrading functions. We applied LEDGOs to eight pathogenic bacteria, gram negatives Acinetobacter baumannii, Klebsiella pneumoniae, Neisseria gonorrhoeae, and Pseudomonas aeruginosa; and gram positives Clostridioides difficile, Enterococcus faecium, Staphylococcus aureus, and Streptococcus pneumoniae. Our analysis of the autolytic enzyme repertoires of these pathogens reveals commonalities and differences in their key domain building blocks and architectures, including correlations and preferred orders among domains in multi-domain enzymes, repetitions of homologous binding domains with potentially complementarity recognition modalities, and sequence similarity patterns indicative of potential divergence of functional specificity among related domains. We have further identified a variety of unannotated sequence regions within the lytic enzymes that may themselves contain new domains with important functions.
机译:细菌利用各种内源性细胞壁水解酶或自溶素,在包括细胞分裂,生物膜形成和编程死亡的过程中重塑它们的细胞壁。我们在这里系统地研究了这些酶的组成,以便在其相关的生物过程中获得见解,潜在的方法来通过化学治疗剂破坏它们,以及它们可能被杠杆作为重组抗菌生物治疗的策略。为此,我们开发了LedGOS(由生物体分组的裂解酶结构域),一种管道,用于创建和分析用于整合肽聚糖结合和降解功能的多域酶的自溶酶序列,组成域注释和建筑模式的管道。我们将LEDGOS应用于八种病原细菌,克底栖菌Baumannii,Klebsiella Pneumoniae,Neisseria Gonorrhoeae和假单胞菌铜绿假单胞菌;和克阳性梭氧化钛酸梭,肠球菌粪便,金黄色葡萄球菌和链球菌肺炎。我们对这些病原体的自溶性酶曲目的分析显示了它们的关键领域建筑物和架构的共性和差异,包括多域酶中的结构域之间的相关性和优选的顺序,具有潜在互补识别模态的同源结合结构域的重复,以及序列相似性表明相关域之间功能特异性的潜在分歧。我们进一步鉴定了裂解酶内的各种未定位的序列区域,其本身可能包含具有重要功能的新域。

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