Carbohydrate deacetylase, a key enzyme in oxidative chitin degradation, is evolutionarily linked to amino acid deacetylase.

IF 4 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Jing-Ping Wang, Xiang-Ming Zhao, Xiao-Lei Liu, Wen-Xin Jiang, Chao Gao, Hai-Yan Cao, Hai-Tao Ding, Qi-Long Qin, Xiu-Lan Chen, Yu-Zhong Zhang, Ping-Yi Li
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引用次数: 0

Abstract

The microbial oxidative cleavage of chitin, the second most abundant biopolymer in nature, generates a substantial amount of oxidized amino sugar, 2-(acetylamino)-2-deoxy-D-gluconic acid (GlcNAc1A). The catabolism of GlcNAc1A is key to the oxidative chitin degradation pathway. However, the molecular mechanism and evolution underlying this pathway remain elusive. Here, we target OngB, which initiates the GlcNAc1A catabolism, to explore the molecular mechanism driving the evolution of this process. We characterized PpOngB (the OngB from Pseudoalteromonas prydzensis ACAM 620) and its homologs as specific deacetylases for GlcNAc1A and solved the structures of wild-type PpOngB and its inactive mutant in complex with GlcNAc1A. Structural, mutational and biochemical analyses revealed that PpOngB utilizes a D-aminoacylase-like (β/α)8-barrel fold to deacetylate GlcNAc1A in a metal-dependent manner. PpOngB and its homologs significantly differ from other known carbohydrate de-N-acetylases in sequences, substrate specificities and structures. Phylogenetic analysis indicated that PpOngB and its homologs represent a new carbohydrate de-N-acetylase family, forming a sister group of D-aminoacylases involved in the catabolism of N-acetyl-D-amino acids. Further structural analysis suggested that GlcNAc1A deacetylases likely evolved from an ancestral D-aminoacylase, undergoing structural and electrostatic modifications in the catalytic cavity to hydrolyze GlcNAc1A. This study provides insights into the catalytic mechanism and the divergent evolution of GlcNAc1A deacetylases, advancing our understanding of oxidative chitin degradation.

碳水化合物去乙酰化酶是氧化几丁质降解的关键酶,与氨基酸去乙酰化酶进化相关。
甲壳素是自然界中含量第二丰富的生物聚合物,微生物氧化裂解产生大量氧化氨基糖,2-(乙酰氨基)-2-脱氧-d -葡萄糖酸(GlcNAc1A)。GlcNAc1A的分解代谢是氧化几丁质降解途径的关键。然而,这一途径背后的分子机制和进化仍然是难以捉摸的。在这里,我们以启动GlcNAc1A分解代谢的OngB为目标,探索驱动这一过程进化的分子机制。我们鉴定了PpOngB(来自prydzen假互变单胞菌ACAM 620的OngB)及其同源物是GlcNAc1A特异性去乙酰化酶,并解决了野生型PpOngB及其失活突变体与GlcNAc1A复合物的结构。结构、突变和生化分析表明,PpOngB利用d -氨基酰化酶样(β/α)8桶折叠以金属依赖的方式使GlcNAc1A脱乙酰化。PpOngB及其同源物在序列、底物特异性和结构上与其他已知的碳水化合物去n -乙酰化酶有显著差异。系统发育分析表明,PpOngB及其同源物代表了一个新的碳水化合物去n -乙酰化酶家族,形成了一个参与n -乙酰- d -氨基酸分解代谢的d -氨基酰化酶姐妹群。进一步的结构分析表明,GlcNAc1A脱乙酰酶可能是从祖先的d -氨基酰化酶进化而来,在催化腔中经历了结构和静电修饰以水解GlcNAc1A。本研究提供了GlcNAc1A脱乙酰酶的催化机制和分化进化的见解,促进了我们对氧化几丁质降解的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Biological Chemistry
Journal of Biological Chemistry Biochemistry, Genetics and Molecular Biology-Biochemistry
自引率
4.20%
发文量
1233
期刊介绍: The Journal of Biological Chemistry welcomes high-quality science that seeks to elucidate the molecular and cellular basis of biological processes. Papers published in JBC can therefore fall under the umbrellas of not only biological chemistry, chemical biology, or biochemistry, but also allied disciplines such as biophysics, systems biology, RNA biology, immunology, microbiology, neurobiology, epigenetics, computational biology, ’omics, and many more. The outcome of our focus on papers that contribute novel and important mechanistic insights, rather than on a particular topic area, is that JBC is truly a melting pot for scientists across disciplines. In addition, JBC welcomes papers that describe methods that will help scientists push their biochemical inquiries forward and resources that will be of use to the research community.
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