首页> 美国卫生研究院文献>OMICS : a Journal of Integrative Biology >Structural Significance of the β1K396 Residue Found in the Porphyromonas gingivalis Sialidase β-Propeller Domain: A Computational Study with Implications for Novel Therapeutics Against Periodontal Disease
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Structural Significance of the β1K396 Residue Found in the Porphyromonas gingivalis Sialidase β-Propeller Domain: A Computational Study with Implications for Novel Therapeutics Against Periodontal Disease

机译:在牙龈卟啉单胞菌唾液酸酶β-螺旋桨域中发现的β1K396残基的结构意义:计算研究对牙周疾病的新疗法的意义

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摘要

Porphyromonas gingivalis sialidase activity is associated with virulence and initiated by sialic acid (SA) binding to the β-propeller domain (BPD). Sialidase BPD is structurally conserved in various bacterial species and the protein binding interfaces have the tendency to form salt bridges, whereas uncommitted charged residues may affect binding and protein structure. However, it is not clear whether the sialidase BPD of varying strains of the same bacterial species differ, particularly with regards to salt bridge formation. Here, we determined the P. gingivalis ATCC 33277 and W50 sialidase homology models and sialidase activities, while the putative salt bridge residues found in the sialidase BPDs were compared. We established that both ATCC 33277 and W50 have different sialidase homology models and activities, whereas, the BPD (β1–6) is structurally conserved with most salt bridge-forming residues following a common orientation. Moreover, β2D444–β6K338 distance measurement in ATCC 33277 (5.99 Å) and W50 (3.09 Å) differ, while β1K396A substitution alters the β2D444–β6K338 distance measurements in ATCC 33277 (3.09 Å) and W50 (3.01 Å) consequentially affecting each model. P. gingivalis plays a major role in periodontitis induction and its virulence is greatly influenced by the sialidase enzyme wherein the sialidase BPD is highly conserved. Our results suggest that alterations in the salt bridge formation within the BPD interface may affect the P. gingivalis sialidase structure. This would imply that disrupting the salt bridge formation within the P. gingivalis sialidase BPD could serve as a potential therapeutic strategy for the treatment of P. gingivalis-related periodontitis.
机译:牙龈卟啉单胞菌唾液酸酶活性与毒力有关,并由唾液酸(SA)结合至β-螺旋桨结构域(BPD)引发。唾液酸酶BPD在各种细菌中均在结构上保守,并且蛋白质结合界面具有形成盐桥的趋势,而未承诺的带电荷残基可能影响结合和蛋白质结构。但是,尚不清楚同一细菌物种的不同菌株的唾液酸酶BPD是否不同,特别是在盐桥形成方面。在这里,我们确定了牙龈卟啉单胞菌ATCC 33277和W50唾液酸酶同源性模型和唾液酸酶活性,同时比较了在唾液酸酶BPD中发现的假定的盐桥残基。我们确定ATCC 33277和W50都具有不同的唾液酸酶同源性模型和活性,而BPD(β1-6)在结构上与大多数形成盐桥的残基遵循共同的方向保守。此外,ATCC 33277(5.99Å)和W50(3.09Å)中的β2D444–β6K338距离测量结果不同,而β1K396A替代改变了ATCC 33277(3.09Å)和W50(3.01Å)中β2D444–β6K338距离测量结果,从而分别影响每个模型。牙龈卟啉单胞菌在牙周炎的诱导中起主要作用,其毒力受唾液酸酶的影响很大,其中唾液酸酶BPD是高度保守的。我们的结果表明,BPD界面内盐桥形成的改变可能会影响牙龈卟啉单胞菌唾液酸酶结构。这暗示着破坏牙龈卟啉单胞菌唾液酸酶BPD内的盐桥形成可以作为治疗牙龈卟啉单胞菌相关的牙周炎的潜在治疗策略。

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