董悦生

个人信息Personal Information

副教授

博士生导师

硕士生导师

性别:男

毕业院校:中国协和医科大学

学位:博士

所在单位:生物工程学院

学科:生物化工. 微生物学. 微生物与生化药学

办公地点:辽宁省大连市高新园区凌工路2号大连理工大学西部校区生物工程学院309室

联系方式:辽宁省大连市高新园区凌工路2号大连理工大学生物工程学院

电子邮箱:yshdong@dlut.edu.cn

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Structural and Functional Analyses of Periplasmic 5 '-Methylthioadenosine/S-Adenosylhomocysteine Nucleosidase from Aeromonas hydrophila

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论文类型:期刊论文

发表时间:2017-10-10

发表刊物:BIOCHEMISTRY

收录刊物:Scopus、SCIE、EI、PubMed

卷号:56

期号:40

页面范围:5347-5355

ISSN号:0006-2960

摘要:The Gram-negative, rod-shaped bacterium Aeromonas hydrophila has two multifunctional 5/-methylthioadenosine/S-adenosylhomocysteine nucleosidase (MTAN) enzymes, MtaN-1 and MtaN-2, that differ from those in other bacteria. These proteins are essential for several metabolic pathways, including biological methylation, polyamine biosynthesis, methionine recycling, and bacterial quorum sensing. To gain insight into how these two proteins function, we determined four high-resolution crystal structures of MtaN-1 in its apo form and in complex with the substrates S-adenosyl-L-homocysteine, S'-methylthioadenosine, and 5'-deoxyadenosine. We found that the domain structures were generally similar, although slight differences were evident. The crystal structure demonstrates that AhMtaN-1 has an extension of the binding pocket and revealed that a tryptophan in the active site (Trp199) may playa major role in substrate binding, unlike in other MTAN proteins. Mutation of the Trp199 residue completely abolished the enzyme activity. Trp199 was identified as an active site residue that is essential for catalysis. Furthermore, biochemical characterization of AhMtaN-1 and AhMtaN-2 demonstrated that AhMtaN-1 exhibits inherent trypsin resistance that is higher than that of AhMtaN-2. Additionally, the thermally unfolded AhMtaN-2 protein is capable of refolding into active forms, whereas the thermally unfolded AhMtaN-1 protein does not have this ability. Examining the different biochemical characteristics related to the functional roles of AhMtaN-1 and AhMtaN-2 would be interesting. Indeed, the biochemical characterization of these structural features would provide a structural basis for the design of new antibiotics against A. hydrophila.