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变形链球菌葡糖基转移酶保守区域的功能分析

Functional analyses of a conserved region in glucosyltransferases of Streptococcus mutans.

作者信息

Chia J S, Yang C S, Chen J Y

机构信息

Graduate Institute of Microbiology, College of Medicine, National Taiwan University, Taipei, Taiwan, Republic of China.

出版信息

Infect Immun. 1998 Oct;66(10):4797-803. doi: 10.1128/IAI.66.10.4797-4803.1998.

Abstract

Streptococcus mutans glucosyltransferases (GTFs; GtfB, -C, and -D) synthesize water-soluble and -insoluble glucan polymers from sucrose. We have identified previously a conserved region of 19 amino acids (aa) (Gtf-P1; aa 409 to 427 of GtfB and aa 435 to 453 of GtfC) which is functionally important for both enzymatic activity and bacterial adherence. Monoclonal antibodies directed against Gtf-P1 selectively inhibited insoluble glucan synthesis by GtfB and -C but had no effect on soluble glucan synthesis by GtfD, suggesting that despite an apparent near identity of sequence, corresponding residues may function differently in these enzymes. To test this hypothesis, we used different strategies of mutagenesis to analyze amino acid residues of GtfB and GtfC in Gtf-P1. In-frame insertion of 6 amino acids preceding, or deletion of 14 amino acids within, this conserved region abolished the enzymatic activities of both GtfB and GtfC. Substitution of several residues in combination by random mutagenesis resulted in GtfB, but not GtfC, enzymes exhibiting decreased glucan synthesis and reduced rates of sucrose hydrolysis. Amino acid substitutions of Asp residues in GtfB or GtfC were found to be more critical for enzymatic activity than at other positions of this region. Interestingly, single mutation at Asp411 or Asp413 of GtfB resulted in enzymes retaining about 20% of wild-type activity, whereas mutagenesis of the corresponding Asp at position 437 or 439 in GtfC resulted in complete loss of enzymatic activity. Furthermore, single amino acid substitution of a Val residue between the two Asp residues enhanced the sucrase- and glucan-synthesizing activities of GtfB and GtfC. These results confirmed the report from another laboratory that Asp residues in the Gtf-P1 region are essential for enzymatic catalysis and provide new evidence that identical residues may function differently in closely related Gtf enzymes.

摘要

变形链球菌葡糖基转移酶(GTFs;GtfB、-C和-D)可利用蔗糖合成水溶性和水不溶性葡聚糖聚合物。我们之前已鉴定出一个由19个氨基酸(aa)组成的保守区域(Gtf-P1;GtfB的第409至427位氨基酸和GtfC的第435至453位氨基酸),该区域对酶活性和细菌黏附均具有重要功能。针对Gtf-P1的单克隆抗体可选择性抑制GtfB和-C合成不溶性葡聚糖,但对GtfD合成可溶性葡聚糖没有影响,这表明尽管序列明显近乎相同,但这些酶中相应的残基可能具有不同的功能。为了验证这一假设,我们使用了不同的诱变策略来分析Gtf-P1中GtfB和GtfC的氨基酸残基。在此保守区域之前框内插入6个氨基酸或在此区域内缺失14个氨基酸,均消除了GtfB和GtfC的酶活性。通过随机诱变组合替换几个残基,导致GtfB(而非GtfC)的葡聚糖合成减少且蔗糖水解速率降低。发现GtfB或GtfC中Asp残基的氨基酸替换对酶活性比该区域的其他位置更为关键。有趣的是,GtfB的Asp411或Asp413处的单突变导致酶保留约20%的野生型活性,而GtfC中第437或439位相应Asp的诱变导致酶活性完全丧失。此外,两个Asp残基之间的Val残基的单氨基酸替换增强了GtfB和GtfC的蔗糖酶和葡聚糖合成活性。这些结果证实了另一个实验室的报告,即Gtf-P1区域中的Asp残基对于酶催化至关重要,并提供了新的证据表明相同的残基在密切相关的Gtf酶中可能具有不同的功能。

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