Ocean warming enhances iron use efficiencies of marine ammonia-oxidizing archaea

生物地球化学循环 环境科学 古细菌 环境化学 全球变暖对海洋的影响 全球变暖 氮气循环 质体蓝素 海洋酸化 海洋学 生态学 底栖区 铁肥 地质遗迹 氮气 硝化作用 气候变化 全球变化 自行车 生物地球化学 纬度 化学 氮同化 海水 硝酸盐 异养 海水养殖 营养物
作者
Wei Qin,Alessandro Tagliabue,Lei Hou,Min Xu,Xiaopeng Bian,Dawn M. Moran,Duo Zhao,Qian Li,Matthew R. McIlvin,Yue Zheng,Shuh-Ji Kao,Yao Zhang,Mak A. Saito,Seth John,Fei-Xue Fu,David A. Hutchins
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:123 (10): e2531032123-e2531032123
标识
DOI:10.1073/pnas.2531032123
摘要

Ammonia-oxidizing archaea (AOA) are among the most abundant microorganisms in the ocean, playing a fundamental role in the marine nitrogen cycle. Although temperature and trace metal availability each individually influence the growth and activity of marine AOA, there is only a very limited understanding of the interactive effects of these two major factors on AOA in the rapidly changing ocean. Here, we show that the iron requirements of the model marine AOA species Nitrosopumilus maritimus SCM1 are highly sensitive to temperature changes. A 5 °C increase in growth temperature reduced SCM1 iron requirements by >80%, and was associated with a substantial increase in iron use efficiencies (IUE, mol C fixed/h/mol cellular Fe) under iron-limited and warming conditions. A thermally enhanced IUE enables SCM1 to more efficiently utilize scarce available iron supplies to support its growth. Whole-cell proteomic analysis revealed that iron limitation decreased expression of a ferredoxin and increased expression of a copper-dependent plastocyanin that became more pronounced with warming, suggesting coordinated electron transport response regulation under combined iron and temperature stress. The global impacts of these temperature-dependent changes to AOA iron demands were assessed using sensitivity experiments with a state-of-the-art biogeochemical model. Simulations showed that impacts on nitrification were concentrated at higher latitudes, but the alterations to ammonia concentrations were redistributed toward lower latitudes by mode and intermediate water transport. These findings reveal a previously unrecognized mechanism by which ocean warming may alleviate iron limitation of AOA, enhance their ecological competitiveness, and reshape ocean nitrogen cycling throughout marine ecosystems.
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