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水分可利用性和温度对微生物胞外酶活性估计值的影响。

Influence of water availability and temperature on estimates of microbial extracellular enzyme activity.

作者信息

Gomez Enrique J, Delgado Jose A, Gonzalez Juan M

机构信息

Instituto de Recursos Naturales y Agrobiología, Consejo Superior de Investigaciones Científicas, IRNAS-CSIC, Sevilla, Spain.

出版信息

PeerJ. 2021 Mar 3;9:e10994. doi: 10.7717/peerj.10994. eCollection 2021.

Abstract

Soils are highly heterogeneous and support highly diverse microbial communities. Microbial extracellular enzymes breakdown complex polymers into small assimilable molecules representing the limiting step of soil organic matter mineralization. This process occurs on to soil particles although currently it is typically estimated in laboratory aqueous solutions. Herein, estimates of microbial extracellular enzyme activity were obtained over a broad range of temperatures and water availabilities frequently observed at soil upper layers. A strain presented optimum extracellular enzyme activities at high water activity whereas a desiccation resistant bacterium () and a soil thermophilic isolate () showed optimum extracellular enzyme activity under dried (i.e., water activities ranging 0.5-0.8) rather that wet conditions. Different unamended soils presented a distinctive response of extracellular enzyme activity as a function of temperature and water availability. This study presents a procedure to obtain realistic estimates of microbial extracellular enzyme activity under natural soil conditions of extreme water availability and temperature. Improving estimates of microbial extracellular enzyme activity contribute to better understand the role of microorganisms in soils.

摘要

土壤具有高度的异质性,并支持高度多样化的微生物群落。微生物胞外酶将复杂的聚合物分解成小的可同化分子,这是土壤有机质矿化的限速步骤。这个过程发生在土壤颗粒上,尽管目前通常是在实验室水溶液中进行估算。在此,我们在土壤表层常见的广泛温度和水分有效性范围内获得了微生物胞外酶活性的估算值。一个菌株在高水分活度下呈现出最佳的胞外酶活性,而一种抗干燥细菌()和一种土壤嗜热分离株()在干燥(即水分活度范围为0.5 - 0.8)而非湿润条件下表现出最佳的胞外酶活性。不同的未改良土壤呈现出胞外酶活性随温度和水分有效性变化的独特响应。本研究提出了一种在极端水分有效性和温度的自然土壤条件下获得微生物胞外酶活性实际估算值的方法。改进微生物胞外酶活性的估算有助于更好地理解微生物在土壤中的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4c9b/7936561/b3118209e918/peerj-09-10994-g001.jpg

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