气候变暖和抗菌素耐药性之间的微生物相互作用威胁着土壤碳储存和全球健康

Shamik Roy, Marc G Dumont, James A Bradley, Marcela Hernández
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引用次数: 0

摘要

人为活动正在以各种方式影响环境,这些方式可能相互交叉并产生复合效应。在土壤中,由于气候变化和人为活动,抗生素和耐药微生物的传播以及由此产生的抗菌素耐药性(AMR)可能会加速。在这里,我们提出,抗菌化合物的双重生产和释放到环境中,以及气候变化导致的全球气温升高,将产生协同效应,导致气候变化和疾病风险加剧。我们预测AMR的增加将降低微生物碳利用效率(CUE),因为微生物之间的相互作用将导致可用资源分配给AMR和代谢而不是生长。CUE的减少可能导致温室气体释放增加;然而,AMR通过改变微生物CUE影响土壤碳稳定性的程度尚不清楚。这种担忧在北极尤其重要,因为北极的变暖速度比地球上任何其他地方都要快,而且含有大量的土壤碳库。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microbial interactions between climate warming and antimicrobial resistance threaten soil carbon storage and global health
Anthropogenic activities are impacting the environment in ways that may intersect and have compounding effects. In soil, the spread of antibiotics and resistant microbes, and thereby antimicrobial resistance (AMR), can accelerate because of climate change and anthropogenic activities. Here we propose that the dual production and release of antimicrobial compounds to the environment, and the increase in global temperatures as a consequence of climate change, will have synergistic effects leading to both enhanced climate change and disease risk. We predict that an increase in AMR will reduce microbial carbon use efficiency (CUE) because interactions among microbes will lead to the allocation of available resources towards AMR and metabolism instead of growth. This reduction in CUE may lead to increased greenhouse gas release; however, the extent to which AMR can affect the stability of soil carbon by altering microbial CUE remains unknown. This concern is especially pertinent in the Arctic, which is warming faster than anywhere else on Earth and contains substantial soil carbon reservoirs.
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