Bacterial synergies amplify nitrogenase activity in diverse systems.

IF 5.1 Q1 ECOLOGY ISME communications Pub Date : 2024-12-12 eCollection Date: 2024-01-01 DOI:10.1093/ismeco/ycae158
Andrew W Sher, Robert J Tournay, Emma Gomez-Rivas, Sharon L Doty
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Abstract

Endophytes are microbes living within plant tissue, with some having the capacity to fix atmospheric nitrogen in both a free-living state and within their plant host. They are part of a diverse microbial community whose interactions sometimes result in a more productive symbiosis with the host plant. Here, we report the co-isolation of diazotrophic endophytes with synergistic partners sourced from two separate nutrient-limited sites. In the presence of these synergistic strains, the nitrogen-fixing activity of the diazotroph is amplified. One such partnership was co-isolated from extracts of plants from a nutrient-limited Hawaiian lava field and another from the roots of Populus trees on a nutrient-limited gravel bar in the Pacific Northwest. The synergistic strains were capable of increasing the nitrogenase activity of different diazotrophic species from other environments, perhaps indicating that these endophytic microbial interactions are common to environments where nutrients are particularly limited. Multiple overlapping mechanisms seem to be involved in this interaction. Though synergistic strains are likely capable of protecting nitrogenase from oxygen, another mechanism seems evident in both environments. The synergies do not depend exclusively on physical contact, indicating a secreted compound may be involved. This work offers insights into beneficial microbial interactions, providing potential avenues for optimizing inocula for use in agriculture.

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细菌的协同作用增强了不同系统中氮酶的活性。
内生菌是生活在植物组织内的微生物,其中一些具有在自由生活状态和在植物宿主内固定大气氮的能力。它们是不同微生物群落的一部分,它们的相互作用有时会导致与寄主植物的更富有成效的共生关系。在这里,我们报告了重氮营养内生菌与来自两个不同营养受限部位的协同伙伴的共同分离。在这些协同菌株的存在下,重氮营养菌的固氮活性被放大。一种这样的伙伴关系是从营养有限的夏威夷熔岩场的植物提取物中分离出来的,另一种是从太平洋西北部营养有限的砾石坝上的杨树根中分离出来的。协同菌株能够提高来自其他环境的不同重氮营养物种的氮酶活性,这可能表明这些内生微生物相互作用在营养物质特别有限的环境中是常见的。这种相互作用似乎涉及多种重叠机制。虽然协同菌株可能能够保护氮酶免受氧气的侵害,但另一种机制似乎在这两种环境中都很明显。协同作用并不完全依赖于物理接触,这表明可能涉及一种分泌化合物。这项工作提供了有益微生物相互作用的见解,为优化疫苗在农业中的应用提供了潜在的途径。
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