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选择和突变分析阴沟肠杆菌亚种(EcChi2)几丁质酶的底物相互作用残基以提高转糖苷活性。

Selection and mutational analyses of the substrate interacting residues of a chitinase from Enterobacter cloacae subsp. cloacae (EcChi2) to improve transglycosylation.

机构信息

Department of Plant Sciences, School of Life Sciences, University of Hyderabad, Gachibowli, Hyderabad 50046, Telangana, India.

ICAR- Directorate of Groundnut Research, Ivnagar Road, Junagadh, Gujarath 362001, India.

出版信息

Int J Biol Macromol. 2020 Dec 15;165(Pt B):2432-2441. doi: 10.1016/j.ijbiomac.2020.10.125. Epub 2020 Oct 20.

DOI:10.1016/j.ijbiomac.2020.10.125
PMID:33096170
Abstract

Transglycosylation (TG) by Enterobacter cloacae subsp. cloacae chitinase 2 (EcChi2) has been deciphered by site-directed mutagenesis. EcChi2 originally displayed feeble TG with chitin oligomer with a degree of polymerization (DP4), for a short duration. Based on the 3D modelling and molecular docking analyses, we altered the substrate interactions at the substrate-binding cleft, catalytic center, and catalytic groove of EcChi2 by mutational approach to improve TG. The mutation of W166A and T277A increased TG by EcChi2 and also affected its catalytic efficiency on the polymeric substrates. Whereas, R171A had a drastically decreased hydrolytic activity but, retained TG activity. In the increased hydrolytic activity of the T277A, altered interactions with the substrates played an indirect role in the catalysis. Mutation of the central Asp, in the conserved DxDxE motif, to Ala (D314A) and Asn (D314N) conversion yielded DP5-DP8 TG products. The quantifiable TG products (DP5 and DP6) increased to 8% (D314A) and 7% (D314N), resulting in a hyper-transglycosylating mutant. Mutation of W276A and W398A resulted in the loss of TG activity, indicating that the aromatic residues (W276 and W398) at +1 and +2 subsites are essential for the TG activity of EcChi2.

摘要

肠杆菌科亚种 cloacae 几丁质酶 2(EcChi2)的转糖基化(TG)已通过定点突变得到阐明。EcChi2 最初对聚合度(DP4)短时间的几丁寡糖显示出微弱的 TG 活性。基于 3D 建模和分子对接分析,我们通过突变改变 EcChi2 的底物结合裂隙、催化中心和催化槽中的底物相互作用,以提高 TG。突变 W166A 和 T277A 提高了 EcChi2 的 TG 活性,同时也影响了其对聚合底物的催化效率。然而,R171A 的水解活性急剧下降,但保留了 TG 活性。在 T277A 水解活性增加的情况下,与底物的改变相互作用在催化中起间接作用。将保守的 DxDxE 基序中的中心天冬氨酸突变为丙氨酸(D314A)和天冬酰胺(D314N),可得到 DP5-DP8 TG 产物。可定量的 TG 产物(DP5 和 DP6)增加到 8%(D314A)和 7%(D314N),导致超转糖基化突变体。突变 W276A 和 W398A 导致 TG 活性丧失,表明+1 和+2 亚位的芳香残基(W276 和 W398)对于 EcChi2 的 TG 活性是必需的。

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