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Tradeoffs of microbial life history strategies drive the turnover of microbial-derived organic carbon in coastal saline soils

Stable soil organic carbon (SOC) formation in coastal saline soils is important to improve arable land quality and mitigate greenhouse gas emissions. However, how microbial life-history strategies and metabolic traits regulate SOC turnover in coastal saline soils remains unknown. Here, we investigat...

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Autores principales: Ning, Qi, Chen, Lin, Li, Fang, Zhou, Guixiang, Zhang, Congzhi, Ma, Donghao, Zhang, Jiabao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10076556/
https://www.ncbi.nlm.nih.gov/pubmed/37032859
http://dx.doi.org/10.3389/fmicb.2023.1141436
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author Ning, Qi
Chen, Lin
Li, Fang
Zhou, Guixiang
Zhang, Congzhi
Ma, Donghao
Zhang, Jiabao
author_facet Ning, Qi
Chen, Lin
Li, Fang
Zhou, Guixiang
Zhang, Congzhi
Ma, Donghao
Zhang, Jiabao
author_sort Ning, Qi
collection PubMed
description Stable soil organic carbon (SOC) formation in coastal saline soils is important to improve arable land quality and mitigate greenhouse gas emissions. However, how microbial life-history strategies and metabolic traits regulate SOC turnover in coastal saline soils remains unknown. Here, we investigated the effects of microbial life history strategy tradeoffs on microbial carbon use efficiency (CUE) and microbial-derived SOC formation using metagenomic sequencing technology in different salinity soils. The results showed that high-salinity is detrimental to microbial CUE and microbial-derived SOC formation. Moreover, the regulation of nutrients stoichiometry could not mitigate adverse effects of salt stress on microbial CUE, which indicated that microbial-derived SOC formation is independent of stoichiometry in high-salinity soil. Low-salinity soil is dominated by a high growth yield (Y) strategy, such as higher microbial biomass carbon and metabolic traits which are related to amino acid metabolism, carbohydrate metabolism, and cell processes. However, high-salinity soil is dominated by stress tolerance (S) (e.g., higher metabolic functions of homologous recombination, base excision repair, biofilm formation, extracellular polysaccharide biosynthesis, and osmolytes production) and resource acquisition (A) strategies (e.g., higher alkaline phosphatase activity, transporters, and flagellar assembly). These trade-offs of strategies implied that resource reallocation took place. The high-salinity soil microbes diverted investments away from growth yield to microbial survival and resource capture, thereby decreasing biomass turnover efficiency and impeding microbial-derived SOC formation. Moreover, altering the stoichiometry in low-salinity soil caused more investment in the A-strategy, such as the production of more β-glucosidase and β-N-acetyl-glucosaminidase, and increasing bacterial chemotaxis, which thereby reduced microbial-derived SOC formation. Our research reveals that shift the microbial community from S- and A- strategies to the Y-strategy is important to increase the microbial CUE, and thus enhance SOC turnover in coastal saline soils.
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spelling pubmed-100765562023-04-07 Tradeoffs of microbial life history strategies drive the turnover of microbial-derived organic carbon in coastal saline soils Ning, Qi Chen, Lin Li, Fang Zhou, Guixiang Zhang, Congzhi Ma, Donghao Zhang, Jiabao Front Microbiol Microbiology Stable soil organic carbon (SOC) formation in coastal saline soils is important to improve arable land quality and mitigate greenhouse gas emissions. However, how microbial life-history strategies and metabolic traits regulate SOC turnover in coastal saline soils remains unknown. Here, we investigated the effects of microbial life history strategy tradeoffs on microbial carbon use efficiency (CUE) and microbial-derived SOC formation using metagenomic sequencing technology in different salinity soils. The results showed that high-salinity is detrimental to microbial CUE and microbial-derived SOC formation. Moreover, the regulation of nutrients stoichiometry could not mitigate adverse effects of salt stress on microbial CUE, which indicated that microbial-derived SOC formation is independent of stoichiometry in high-salinity soil. Low-salinity soil is dominated by a high growth yield (Y) strategy, such as higher microbial biomass carbon and metabolic traits which are related to amino acid metabolism, carbohydrate metabolism, and cell processes. However, high-salinity soil is dominated by stress tolerance (S) (e.g., higher metabolic functions of homologous recombination, base excision repair, biofilm formation, extracellular polysaccharide biosynthesis, and osmolytes production) and resource acquisition (A) strategies (e.g., higher alkaline phosphatase activity, transporters, and flagellar assembly). These trade-offs of strategies implied that resource reallocation took place. The high-salinity soil microbes diverted investments away from growth yield to microbial survival and resource capture, thereby decreasing biomass turnover efficiency and impeding microbial-derived SOC formation. Moreover, altering the stoichiometry in low-salinity soil caused more investment in the A-strategy, such as the production of more β-glucosidase and β-N-acetyl-glucosaminidase, and increasing bacterial chemotaxis, which thereby reduced microbial-derived SOC formation. Our research reveals that shift the microbial community from S- and A- strategies to the Y-strategy is important to increase the microbial CUE, and thus enhance SOC turnover in coastal saline soils. Frontiers Media S.A. 2023-03-23 /pmc/articles/PMC10076556/ /pubmed/37032859 http://dx.doi.org/10.3389/fmicb.2023.1141436 Text en Copyright © 2023 Ning, Chen, Li, Zhou, Zhang, Ma and Zhang. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Microbiology
Ning, Qi
Chen, Lin
Li, Fang
Zhou, Guixiang
Zhang, Congzhi
Ma, Donghao
Zhang, Jiabao
Tradeoffs of microbial life history strategies drive the turnover of microbial-derived organic carbon in coastal saline soils
title Tradeoffs of microbial life history strategies drive the turnover of microbial-derived organic carbon in coastal saline soils
title_full Tradeoffs of microbial life history strategies drive the turnover of microbial-derived organic carbon in coastal saline soils
title_fullStr Tradeoffs of microbial life history strategies drive the turnover of microbial-derived organic carbon in coastal saline soils
title_full_unstemmed Tradeoffs of microbial life history strategies drive the turnover of microbial-derived organic carbon in coastal saline soils
title_short Tradeoffs of microbial life history strategies drive the turnover of microbial-derived organic carbon in coastal saline soils
title_sort tradeoffs of microbial life history strategies drive the turnover of microbial-derived organic carbon in coastal saline soils
topic Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10076556/
https://www.ncbi.nlm.nih.gov/pubmed/37032859
http://dx.doi.org/10.3389/fmicb.2023.1141436
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