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Effects of Bacterial Community Members on the Proteome of the Ammonia-Oxidizing Bacterium Nitrosomonas sp. Strain Is79

机译:细菌群落成员对氨氧化硝化细菌Nitrosomonas sp。蛋白质组的影响。应变Is79

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Microorganisms in the environment do not exist as the often-studied pure cultures but as members of complex microbial communities. Characterizing the interactions within microbial communities is essential to understand their function in both natural and engineered environments. In this study, we investigated how the presence of a nitrite-oxidizing bacterium (NOB) and heterotrophic bacteria affect the growth and proteome of the chemolithoautotrophic ammonia-oxidizing bacterium (AOB) Nitrosomonas sp. strain Is79. We investigated Nitrosomonas sp. Is79 in co-culture with Nitrobacter winogradskyi , in co-cultures with selected heterotrophic bacteria, and as a member of the nitrifying enrichment culture G5-7. In batch culture, N. winogradskyi and heterotrophic bacteria had positive effects on the growth of Nitrosomonas sp. Is79. An isobaric tag for relative and absolute quantification (iTRAQ) liquid chromatography-tandem mass spectrometry (LC-MS/MS) proteomics approach was used to investigate the effect of N. winogradskyi and the co-cultured heterotrophic bacteria from G5-7 on the proteome of Nitrosomonas sp. Is79. In co-culture with N. winogradskyi , several Nitrosomonas sp. Is79 oxidative stress response proteins changed in abundance, with periplasmic proteins increasing and cytoplasmic proteins decreasing in abundance. In the presence of heterotrophic bacteria, the abundance of proteins directly related to the ammonia oxidation pathway increased, while the abundance of proteins related to amino acid synthesis and metabolism decreased. In , the proteome of Nitrosomonas sp. Is79 was differentially influenced by the presence of either N. winogradskyi or heterotrophic bacteria. Together, N. winogradskyi and heterotrophic bacteria reduced the oxidative stress for Nitrosomonas sp. Is79, which resulted in more efficient metabolism.IMPORTANCE Aerobic ammonia-oxidizing microorganisms play an important role in the global nitrogen cycle, converting ammonia to nitrite. In their natural environment, they coexist and interact with nitrite oxidizers, which convert nitrite to nitrate, and with heterotrophic microorganisms. The presence of nitrite oxidizers and heterotrophic bacteria has a positive influence on the growth of the ammonia oxidizers. Here, we present a study investigating the effect of nitrite oxidizers and heterotrophic bacteria on the proteome of a selected ammonia oxidizer in a defined culture to elucidate how these two groups improve the performance of the ammonia oxidizer. The results show that the presence of a nitrite oxidizer and heterotrophic bacteria reduced the stress for the ammonia oxidizer and resulted in more efficient energy generation. This study contributes to our understanding of microbe-microbe interactions, in particular between ammonia oxidizers and their neighboring microbial community.
机译:环境中的微生物并不是作为经常研究的纯净文化而存在的,而是作为复杂微生物群落的成员而存在的。表征微生物群落之间的相互作用对于理解其在自然和工程环境中的功能至关重要。在这项研究中,我们调查了亚硝酸盐氧化细菌(NOB)和异养细菌如何影响化学自养营养性氨氧化细菌(AOB)亚硝化单胞菌sp。的生长和蛋白质组。 Is79株。我们调查了Nitrosomonas sp。 Is79与硝酸硝化细菌共培养,与选定的异养细菌共培养,并作为硝化富集培养G5-7的成员。在分批培养中,N。winogradskyi和异养细菌对Nitrosomonas sp。的生长具有积极作用。是79。等压标记用于相对和绝对定量(iTRAQ)液相色谱-串联质谱(LC-MS / MS)蛋白质组学方法,研究N. winogradskyi和来自G5-7的共培养异养细菌对蛋白质组的影响亚硝化单胞菌属是79。在与N. winogradskyi的共培养中,有几个亚硝基亚种。 Is79氧化应激反应蛋白大量变化,周质蛋白增加而胞质蛋白减少。在异养细菌的存在下,与氨氧化途径直接相关的蛋白质丰度增加,而与氨基酸合成和代谢相关的蛋白质丰度降低。在中,Nitrosomonas sp。的蛋白质组。 Is79受Winogradskyi猪或异养细菌的存在差异影响。 N. winogradskyi和异养细菌共同降低了亚硝化单胞菌(Nitrosomonas sp。)的氧化应激。 Is79可以促进新陈代谢。重要事项需氧氨氧化微生物在全球氮循环中发挥重要作用,将氨转化为亚硝酸盐。在自然环境中,它们与亚硝酸盐氧化剂共存并相互作用,后者将亚硝酸盐转化为硝酸盐,并与异养微生物共存。亚硝酸氧化剂和异养细菌的存在对氨氧化剂的生长具有积极影响。在这里,我们进行了一项研究,研究了亚硝酸盐氧化剂和异养细菌在定义的培养物中对所选氨水氧化剂的蛋白质组的影响,以阐明这两个基团如何改善氨水氧化剂的性能。结果表明,亚硝酸盐氧化剂和异养细菌的存在降低了氨氧化剂的压力并导致更有效的能量产生。这项研究有助于我们对微生物-微生物相互作用的理解,特别是氨氧化剂与附近微生物群落之间的相互作用。

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