Lev M.Z. Tsypin, Scott H Saunders, Allen W Chen, Dianne K. Newman
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引用次数: 0
摘要
细菌通过分泌代谢物进行细胞外电子转移的能力在自然、临床和工业环境中广泛存在。最近,我们发现了苯那嗪-1-羧酸(PCA)的生物氧化,这是自然产生的细胞外电子穿梭生物再生的第一个例子。然而,目前尚不清楚PCA氧化是如何催化的。本文通过对土壤分离物葡酸柠檬酸杆菌(Citrobacter portucalensis MBL)的支链电子传递链(ETC)进行遗传干扰,揭示了这一机制。生物PCA氧化与厌氧呼吸相结合,以硝酸盐、富马酸盐、二甲亚砜或三甲胺- n -氧化物作为终端电子受体。基因失活一个给定末端电子受体的所有冗余络合物的催化亚基可消除PCA氧化。在没有醌的情况下,PCA仍然可以向某些末端还原酶提供电子,尽管效率要低得多。在葡萄牙c.p orucalensis MBL中,PCA氧化主要由通过ETC的通量驱动,这表明任何具有可接近的细胞质膜的厌氧呼吸细菌都可能采用一种可推广的机制。这一模型得到了铜绿假单胞菌在硝酸盐呼吸过程中类似基因实验的支持。
Genetically dissecting the electron transport chain of a soil bacterium reveals a generalizable mechanism for biological phenazine-1-carboxylic acid oxidation
The capacity for bacterial extracellular electron transfer via secreted metabolites is widespread in natural, clinical, and industrial environments. Recently, we discovered biological oxidation of phenazine-1-carboxylic acid (PCA), the first example of biological regeneration of a naturally produced extracellular electron shuttle. However, it remained unclear how PCA oxidation was catalyzed. Here, we report the mechanism, which we uncovered by genetically perturbing the branched electron transport chain (ETC) of the soil isolate Citrobacter portucalensis MBL. Biological PCA oxidation is coupled to anaerobic respiration with nitrate, fumarate, dimethyl sulfoxide, or trimethylamine-N-oxide as terminal electron acceptors. Genetically inactivating the catalytic subunits for all redundant complexes for a given terminal electron acceptor abolishes PCA oxidation. In the absence of quinones, PCA can still donate electrons to certain terminal reductases, albeit much less efficiently. In C. portucalensis MBL, PCA oxidation is largely driven by flux through the ETC, which suggests a generalizable mechanism that may be employed by any anaerobically respiring bacterium with an accessible cytoplasmic membrane. This model is supported by analogous genetic experiments during nitrate respiration by Pseudomonas aeruginosa.