细胞内酶的释放增加了海洋环境中碳水化合物加工酶的细胞外总活性。

IF 2.2 4区 生物学 Q3 MICROBIOLOGY Fems Microbiology Letters Pub Date : 2024-01-09 DOI:10.1093/femsle/fnae077
Ke-Xuan Huang, Yu-Xuan Jiang, Yan-Ru Dang, Qi-Long Qin
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引用次数: 0

摘要

微生物为降解生物聚合物而产生的胞外酶活性(EEAs)是海洋生态系统碳循环的 "守门员"。人们通常认为,这些胞外酶是由微生物主动分泌的。但生物聚合物降解酶也存在于细胞内空间。细胞裂解会将这些酶被动地释放到环境中,从而增加 EEAs 的总量。然而,细胞裂解能在多大程度上对总 EEAs 起作用还不清楚。在此,我们采用极端细胞裂解法,评估了细胞裂解对可培养的海洋细菌和沿岸海水中总 EEAs 的最大贡献。就碳水化合物加工酶(β-葡萄糖苷酶、藻酸酶和几丁质酶)而言,细胞内酶的释放可对总 EEAs 起积极作用(海水中的β-葡萄糖苷酶可增加 56.1%)。就蛋白酶和亮氨酸氨肽酶而言,细胞裂解不会增加甚至会减少 EEAs 总量。至于碱性磷酸酶,细胞内的酶一般对 EEAs 总量没有贡献。这些结果表明,被动释放的细胞内酶可大大增加碳水化合物加工酶的细胞外总活性,在建立 EEA 与海洋有机碳循环之间的联系时应考虑到这一点。
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Release of intracellular enzymes increases the total extracellular activities of carbohydrate-processing enzymes in marine environment.

Microbial extracellular enzymatic activities (EEAs) produced by microbes to degrade biopolymers are the 'gatekeeper' of carbon cycle in the marine ecosystem. It is usually assumed that these extracellular enzymes are actively secreted by microbes. However, biopolymer-degrading enzymes also exist in the intracellular space. Cell lysis will passively release these enzymes into the environments and contribute to the total EEAs. However, to what extent the cell lysis can contribute to the total EEAs are still unclear. Here, using extreme cell lysis method, we evaluated the maximum contribution of cell lysis to total EEAs in culturable marine bacteria and coastal seawater. For carbohydrate-processing enzymes (β-glucosidase, alginate lyase, and chitinase), the release of intracellular enzymes could contribute positively (up to 56.1% increase for β-glucosidase in seawater) to the total EEAs. For protease and leucine aminopeptidase, the cell lysis did not increase and even decreased the total EEAs. For alkaline phosphatase, the intracellular enzymes generally had no contribution to the total EEAs. These results showed that passively released intracellular enzymes could substantially increase the total extracellular activities of carbohydrate-processing enzymes, which should be considered in building the link between the EEAs and organic carbon cycle in the ocean.

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来源期刊
Fems Microbiology Letters
Fems Microbiology Letters 生物-微生物学
CiteScore
4.30
自引率
0.00%
发文量
112
审稿时长
1.9 months
期刊介绍: FEMS Microbiology Letters gives priority to concise papers that merit rapid publication by virtue of their originality, general interest and contribution to new developments in microbiology. All aspects of microbiology, including virology, are covered. 2019 Impact Factor: 1.987, Journal Citation Reports (Source Clarivate, 2020) Ranking: 98/135 (Microbiology) The journal is divided into eight Sections: Physiology and Biochemistry (including genetics, molecular biology and ‘omic’ studies) Food Microbiology (from food production and biotechnology to spoilage and food borne pathogens) Biotechnology and Synthetic Biology Pathogens and Pathogenicity (including medical, veterinary, plant and insect pathogens – particularly those relating to food security – with the exception of viruses) Environmental Microbiology (including ecophysiology, ecogenomics and meta-omic studies) Virology (viruses infecting any organism, including Bacteria and Archaea) Taxonomy and Systematics (for publication of novel taxa, taxonomic reclassifications and reviews of a taxonomic nature) Professional Development (including education, training, CPD, research assessment frameworks, research and publication metrics, best-practice, careers and history of microbiology) If you are unsure which Section is most appropriate for your manuscript, for example in the case of transdisciplinary studies, we recommend that you contact the Editor-In-Chief by email prior to submission. Our scope includes any type of microorganism - all members of the Bacteria and the Archaea and microbial members of the Eukarya (yeasts, filamentous fungi, microbial algae, protozoa, oomycetes, myxomycetes, etc.) as well as all viruses.
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