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Structural basis for the high thermal stability and optimum pH of sphingomyelinase C from Streptomyces griseocarneus

机译:来自Streptomyces Grisecarneus的高热稳定性和鞘氨基氨基酶C的高热稳定性和最佳pH的结构基础

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Sphingomyelinase C (SMC) hydrolyzes sphingomyelin to ceramide and phosphocholine. Prokaryotic SMCs share sequence homology with mammalian SMCs that have enzymatic pH optima at neutral pH. SMC from the nonpathogenic prokaryote Streptomyces griseocarneus shows notable enzymatic features such as higher optimum pH and thermostability than other prokaryotic SMCs. Determination of the three-dimensional structure of S. griseocarneus-SMC (Sg-SMC) and comparison with other SMC structures represents a promising strategy to elucidate the unique enzymatic features of Sg-SMC on a structural basis. Therefore, we determined the crystal structure of Sg-SMC at 2.0 angstrom resolution by X-ray crystallography. Comparison of the Sg-SMC structure with three other structurally known SMCs from Listeria ivanovii, Bacillus cereus, and Staphylococcus aureus indicated that Sg-SMC is more diverse in sequence and that structural differences in the main chain between these SMC5 are primarily located on the molecular surface distant from the active site. Comparison of the surface area of the four SMCs revealed that Sg-SMC has the most compact structure, which may contribute to the enhanced thermostability of Sg-SMC. Regarding the hydrogen bond network in the active site of SgSMC, a basic amino acid, Arg278, is involved, whereas the corresponding residue in other SMC5 (Ser or Asn) does not form hydrogen bonds with metal-coordinating water molecules. Hydrogen bond formation between Arg278 and a Mg2+ ion-coordinating water molecule may be responsible for the higher optimal pH of Sg-SMC compared to that of other SMCs. (C) 2020, The Society for Biotechnology, Japan. All rights reserved.
机译:鞘磷脂酶C(SMC)将鞘磷脂水解为神经酰胺和磷酸胆碱。原核SMC与在中性pH下具有酶最适pH值的哺乳动物SMC具有相同的序列同源性。非致病性原核生物灰果链霉菌的SMC显示出显著的酶特征,例如比其他原核SMC具有更高的最适pH值和热稳定性。测定灰果链球菌SMC(Sg SMC)的三维结构,并与其他SMC结构进行比较,是在结构基础上阐明Sg SMC独特酶特性的一种很有前途的策略。因此,我们通过X射线结晶学测定了2.0埃分辨率下Sg SMC的晶体结构。将Sg SMC结构与来自伊万诺维奇李斯特菌、蜡样芽孢杆菌和金黄色葡萄球菌的其他三种结构已知的SMC进行比较,结果表明Sg SMC在序列上更加多样,并且这些SMC5之间主链的结构差异主要位于远离活性位点的分子表面。比较四种SMC的表面积发现,Sg SMC的结构最紧凑,这可能有助于增强Sg SMC的热稳定性。关于SgSMC活性部位的氢键网络,涉及碱性氨基酸Arg278,而其他SMC5(Ser或Asn)中的相应残基不会与金属配位水分子形成氢键。Arg278和Mg2+离子配位水分子之间的氢键形成可能是Sg SMC比其他SMC具有更高最佳pH值的原因。(C) 2020年,日本生物技术学会。版权所有。

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