Contrasting effects of glutamate and branched-chain amino acid metabolism on acid tolerance in a <i>Castellaniella</i> isolate from acidic groundwater.
酸性地下水由来のCastellaniella分離株におけるグルタミン酸と分岐鎖アミノ酸代謝の酸耐性への対照的影響 (機械翻訳の邦題)
記録の確認項目
- 研究デザイン
- その他の原著論文
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- 出版年
- 2026
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- doi.org
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- 有効な記録
- 状態確認日
- 2026/08/17
- 収集日
- 2026/08/03
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- 確認期限内
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- 自動処理
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日本語要約(機械生成)
地下水の酸性化と硝酸塩汚染は世界的な環境健康問題である。脱窒菌による硝酸塩除去は有効だが、低pH条件下では効率が低下する。本研究では、酸性硝酸塩汚染地下水から分離された完全脱窒菌Castellaniella sp. MT123を用い、プロテオミクス、メタボロミクス、競合的変異株適合度解析により、弱酸性条件下での馴化機構を調べた。その結果、グルタミン酸の蓄積が酸馴化に重要であり、グルタミン酸脱炭酸によるGABA生成を介して細胞内プロトンを消費する可能性が示された。一方、分岐鎖アミノ酸の蓄積は低pHでの増殖に有害で、間接的に細胞内グルタミン酸プールに影響を与えると考えられた。MT123は硝酸塩除去に有用な菌株であり、酸性条件への馴化機構の新たな知見を提供する。
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抄録
Groundwater acidification co-occurring with nitrate pollution is a common, global environmental health hazard. Denitrifying bacteria have been leveraged for the in situ removal of nitrate in groundwater. However, co-existing stressors-such as low pH-reduce the efficacy of biological removal processes. Castellaniella sp. str. MT123 is a complete denitrifier that was isolated from acidic, nitrate-contaminated groundwater. The strain grows robustly by nitrate respiration at pH < 6.0, completely reducing nitrate to dinitrogen gas. Genomic analyses of MT123 revealed few previously characterized acid tolerance genes. Thus, we utilized a combination of proteomics, metabolomics, and competitive mutant fitness to characterize the genetic mechanisms of MT123 acclimation to growth under mildly acidic conditions. We found that glutamate accumulation is critical in the acid acclimation of MT123, possibly through consumption of intracellular protons via glutamate decarboxylation to GABA. This is despite the fact that MT123 lacks the canonical glutamate decarboxylase-glutamate/GABA antiporter system implicated in acid tolerance in other bacteria. In contrast, branched-chain amino acid (BCAA) accumulation was detrimental to cell growth at lower pHs, possibly through indirect mechanisms impacting the cellular glutamate pool. Genetic analysis previously linked MT123 to a population of Castellaniella that bloomed-concurrent to nitrate removal-during a biostimulation effort to reduce groundwater nitrate concentrations at MT123's location of origin. Thus, our analyses provide novel insight into mechanisms of acclimation to acidic conditions in a strain with significant potential for nitrate bioremediation.IMPORTANCENitrate pollution in groundwater is a major threat to both environmental and human health. This nitrate pollution can come from a variety of sources, including farm fertilizers, sewage, animal waste, septic systems, and industrial discharge. Bacteria known as "denitrifiers" can convert this nitrate into harmless nitrogen gas, a process known as "denitrification." Denitrifiers can be used to clean up nitrate-contaminated groundwater. However, their ability to do this can be disrupted by changing environmental conditions. For example, groundwater that is polluted with nitrate is often acidic. Acidic conditions make it challenging for denitrifiers to survive, which results in less conversion of nitrate to nitrogen gas. In this study, we investigated how one denitrifying bacterium-originating from acidic, nitrate-contaminated groundwater-can cope with acidic conditions.
MeSH
DOI 10.1128/aem.01942-25
PMID 41615186
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