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首页> 外文期刊>Soil Biology & Biochemistry >Microbial decomposition of C-13- labeled phytosiderophores in the rhizosphere of wheat: Mineralization dynamics and key microbial groups involved
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Microbial decomposition of C-13- labeled phytosiderophores in the rhizosphere of wheat: Mineralization dynamics and key microbial groups involved

机译:小麦根际中C-13标记的植物铁载体的微生物分解:矿化动力学和涉及的关键微生物群

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摘要

Being low molecular weight carbon (LMW-C) compounds, phytosiderophores (PS) released by strategy II plants are highly susceptible to microbial decomposition. However, to date very little is known about the fate of PS in soil. Using in-house synthesized C-13(4)-2'-deoxymugineic acid (DMA), the main PS released by wheat, we investigated DMA mineralization dynamics, including microbial incorporation into phospholipid fatty acids (PLFA), in the wheat rhizosphere and bulk soil of two alkaline and one acidic soil. Half-lives of the intact DMA molecule (3-8 h) as well as of DMA-derived C-compounds (8-38 days) were in the same order of magnitude as those published for other LMW-C compounds like sugars, amino acids and organic acids. Combining mineralization with PLFA data showed that between 40 and 65% of the added DMA was either respired or incorporated into soil microbial biomass after 24 h, with the largest part of total incorporated DMA-C-13 being recovered in gram negative bacteria. Considering root growth dynamics and that PS are mainly exuded from root tips, the significantly slower mineralization of DMA in bulk soil is of high ecological importance to enhance the Fe scavenging efficiency of PS released into the soil. (C) 2016 The Authors. Published by Elsevier Ltd.
机译:作为低分子量碳(LMW-C)化合物,策略II植物释放的植物铁载体(PS)对微生物的分解高度敏感。但是,迄今为止,对土壤中PS的命运知之甚少。使用内部合成的C-13(4)-2'-脱氧ugineic酸(DMA),小麦释放的主要PS,我们研究了DMA矿化动力学,包括微生物在小麦根际和根际中掺入磷脂脂肪酸(PLFA)的过程。两种土壤和一种酸性土壤的整体土壤。完整的DMA分子(3-8小时)以及DMA衍生的C化合物的半衰期(8-38天)与其他LMW-C化合物(如糖,氨基)的半衰期相同酸和有机酸。将矿化与PLFA数据相结合后,发现24小时后,有40%至65%的添加DMA被呼吸或掺入土壤微生物生物量,总掺入的DMA-C-13的最大部分被革兰氏阴性细菌回收。考虑到根的生长动力学以及主要从根尖渗出PS,散装土壤中DMA的矿化速度明显降低,对于提高PS释放到土壤中的铁清除效率具有重要的生态意义。 (C)2016作者。由Elsevier Ltd.发布

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