Li Zhipeng, Huang Xiaoyi, Guo Yuxi, Zhang Chenghao, Yang Liang, Du Xiping, Ni Hui, Wang Xuchu, Zhu Yanbing
College of Ocean Food and Biology Engineering, Jimei University, Xiame, China.
Fujian Provincial Key Laboratory of Food Microbiology and Enzyme Engineering Technology, Xiamen, China.
Front Bioeng Biotechnol. 2022 Mar 16;10:829428. doi: 10.3389/fbioe.2022.829428. eCollection 2022.
The bacterial strain of sp. ALW1 has demonstrated visible ability of degrading the cell wall of , and biochemical characterization has been performed on some individual enzymes to elucidate its genetic basis. However, it still remains elusive how strain ALW1 successfully breaks down the major cell wall component alginate polysaccharide and colonizes on its marine host. In this study, a mass spectrometry-based quantitative analysis of the extracellular and intracellular proteomes was introduced to elucidate the alginate degradation pathway in ALW1 strain. Mass spectrometry and biochemical assays indicated that strain ALW1 could effectively degrade alginate polysaccharide into disaccharides and trisaccharides within 12 h. Proteome analysis identified 156 and 1,047 proteins exclusively localized in extracellular and intracellular compartments, respectively, with 1,086 protein identities of dual localization. Functional annotation of the identified proteins suggested the involvement of diverse catalytic enzymes and non-catalytic molecules for the cleavage and metabolism of alginate polysaccharide. A simplified pathway was constructed to demonstrate the extracellular digestion, active transport, and intracellular conversion of alginate polysaccharide and its fragmented oligosaccharides, casting a picture of genetic loci controlling alginate catabolism by ALW1 strain. This study aims to provide a guide for utilization and genetic manipulation of the bacterial strain ALW1 for efficient alginate oligosaccharides production by fermentation.
sp. ALW1细菌菌株已表现出明显的降解[具体生物名称]细胞壁的能力,并且已对一些个别酶进行了生化特性分析以阐明其遗传基础。然而,菌株ALW1如何成功分解主要细胞壁成分海藻酸盐多糖并在其海洋宿主上定殖仍不清楚。在本研究中,引入了基于质谱的细胞外和细胞内蛋白质组定量分析,以阐明ALW1菌株中海藻酸盐的降解途径。质谱和生化分析表明,菌株ALW1可在12小时内有效地将海藻酸盐多糖降解为二糖和三糖。蛋白质组分析分别鉴定出156种和1047种仅定位于细胞外和细胞内区室的蛋白质,有1086种蛋白质具有双重定位身份。对鉴定出的蛋白质的功能注释表明,多种催化酶和非催化分子参与了海藻酸盐多糖的裂解和代谢。构建了一个简化途径来展示海藻酸盐多糖及其片段化寡糖的细胞外消化、主动运输和细胞内转化,描绘了ALW1菌株控制海藻酸盐分解代谢的基因位点情况。本研究旨在为利用细菌菌株ALW1通过发酵高效生产海藻寡糖以及对其进行基因操作提供指导。