洛夫利三氯杆菌对亚硝酸盐解毒的适应性反应揭示了地被忽视的地杆菌对硝酸盐氨化的贡献

Marcela Tabares, Kazem Kashefi, Gemma Reguera
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引用次数: 0

摘要

知之甚少的微生物通过异化的硝酸盐还原成铵来“短路”氮循环,以保留农业用地中的元素并刺激作物生产力。与洛夫利三氯杆菌密切相关的地杆菌在硝酸盐氨化热点地区的普遍存在,促使我们研究实验室型菌株T. lovleyi SZ对氨化率的适应性反应。在这里,我们描述了有效的硝酸盐觅食和醋酸呼吸的严格调控途径的鉴定,醋酸是有机物质降解的重要中间物,Geobacterales有效地同化和氧化。挑战高碳/硝酸盐比刺激硝酸盐还原为铵的既定教条,T. lovleyi在很宽的比例范围内迅速翻倍,只要硝酸盐浓度足够低,以防止有毒亚硝酸盐中间体的积累。然而,在氢营养生长过程中,即使在严格限制醋酸盐的条件下,过量的电子也会减轻亚硝酸盐的毒性,并促进硝酸盐还原为铵。这些发现强调了亚硝酸盐毒性在地细菌对硝酸盐的氨化作用中的重要性,并为微生物适应对土壤氮保持的贡献提供了急需的机制理解。这一信息对于提高环境调查中基于基因组的性状的预测价值和指导可持续管理氮肥以及减轻温室气体排放和农用化学品从农业用地浸出的战略至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Adaptive responses of Trichlorobacter lovleyi to nitrite detoxification reveal overlooked contributions of Geobacterales to nitrate ammonification
Poorly understood microorganisms “short-circuit” the nitrogen cycle via the dissimilatory nitrate reduction to ammonium to retain the element in agricultural lands and stimulate crop productivity. The prevalence of Geobacterales closely related to Trichlorobacter lovleyi in nitrate ammonification hotspots motivated us to investigate adaptive responses contributing to ammonification rates in the laboratory type strain T. lovleyi SZ. Here we describe the identification of tightly regulated pathways for efficient nitrate foraging and respiration with acetate, an important intermediate of organic matter degradation that Geobacterales efficiently assimilate and oxidize. Challenging the established dogma that high carbon/nitrate ratios stimulate the reduction of nitrate to ammonium, T. lovleyi doubled rapidly across a wide range of ratios provided nitrate concentrations were low enough to prevent the accumulation of the toxic nitrite intermediate. Yet, excess electrons during hydrogenotrophic growth alleviated nitrite toxicity and stimulated the reduction of nitrate to ammonium even under conditions of severe acetate limitation. These findings underscore the importance of nitrite toxicity in the ammonification of nitrate by Geobacterales and provide much needed mechanistic understanding of microbial adaptations contributing to soil nitrogen conservation. This information is critical to enhance the predictive value of genomic-based traits in environmental surveys and to guide strategies for sustainable management of nitrogen fertilization as well as mitigation of green-house emissions and agrochemical leaching from agricultural lands.
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