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干旱使人工热带雨林土壤微生物的碳代谢重新途径,导致挥发性代谢物的排放。

Drought re-routes soil microbial carbon metabolism towards emission of volatile metabolites in an artificial tropical rainforest.

机构信息

Biosphere 2, University of Arizona, Tucson, AZ, USA.

School of Natural Resources and the Environment, University of Arizona, Tucson, AZ, USA.

出版信息

Nat Microbiol. 2023 Aug;8(8):1480-1494. doi: 10.1038/s41564-023-01432-9. Epub 2023 Jul 31.

Abstract

Drought impacts on microbial activity can alter soil carbon fate and lead to the loss of stored carbon to the atmosphere as CO and volatile organic compounds (VOCs). Here we examined drought impacts on carbon allocation by soil microbes in the Biosphere 2 artificial tropical rainforest by tracking C from position-specific C-pyruvate into CO and VOCs in parallel with multi-omics. During drought, efflux of C-enriched acetate, acetone and CHO (diacetyl) increased. These changes represent increased production and buildup of intermediate metabolites driven by decreased carbon cycling efficiency. Simultaneously,C-CO efflux decreased, driven by a decrease in microbial activity. However, the microbial carbon allocation to energy gain relative to biosynthesis was unchanged, signifying maintained energy demand for biosynthesis of VOCs and other drought-stress-induced pathways. Overall, while carbon loss to the atmosphere via CO decreased during drought, carbon loss via efflux of VOCs increased, indicating microbially induced shifts in soil carbon fate.

摘要

干旱对微生物活性的影响会改变土壤碳的命运,并导致储存的碳以 CO 和挥发性有机化合物 (VOCs) 的形式释放到大气中。在这里,我们通过追踪特定位置的 C-丙酮酸进入 CO 和 VOCs 的方式,结合多组学技术,研究了生物 2 号人工热带雨林中土壤微生物对干旱的碳分配影响。在干旱期间,富含 C 的乙酸盐、丙酮和 CHO(双乙酰)的流出增加。这些变化代表了由碳循环效率降低驱动的中间代谢物的增加产生和积累。同时,C-CO 的流出减少,这是由微生物活性下降引起的。然而,微生物将碳分配用于获得能量相对于生物合成的比例保持不变,这表明对 VOC 生物合成和其他干旱胁迫诱导途径的生物合成的能量需求保持不变。总的来说,尽管干旱期间通过 CO 释放到大气中的碳损失减少,但通过 VOC 流出的碳损失增加,这表明土壤碳命运发生了微生物诱导的变化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f2d5/10390333/1e72be01b2e6/41564_2023_1432_Fig1_HTML.jpg

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