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好氧菌链霉菌 A3(2)中的厌氧硝酸盐呼吸:有助于在休眠期间维持质子梯度。

Anaerobic nitrate respiration in the aerobe Streptomyces coelicolor A3(2): helping maintain a proton gradient during dormancy.

机构信息

Institute of Microbiology, Martin-Luther University Halle-Wittenberg, Kurt-Mothes-Str. 3, 06120, Halle (Saale), Germany.

出版信息

Environ Microbiol Rep. 2019 Oct;11(5):645-650. doi: 10.1111/1758-2229.12781. Epub 2019 Jul 16.

DOI:10.1111/1758-2229.12781
PMID:31268622
Abstract

Respiratory nitrate reductases (Nar) catalyse the reduction of nitrate to nitrite, coupling this process to energy conservation. The obligate aerobic actinobacterium Streptomyces coelicolor synthesizes three Nar enzymes that contribute to maintenance of a membrane potential when either the mycelium or the spores become hypoxic or anoxic. No growth occurs under such conditions but the bacterium survives the lack of O by remaining metabolically active; reducing nitrate is one means whereby this process is aided. Nar1 is exclusive to spores, Nar2 to vegetative mycelium and Nar3 to stationary-phase mycelium, each making a distinct contribution to energy conservation. While Nar2 and Nar3 appear to function like conventional menaquinol oxidases, unusually, Nar1 is completely dependent for its activity on a cytochrome bcc-aa oxidase supercomplex. This suggest that electrons within this supercomplex are diverted to Nar1 during O limitation. Receiving electrons from this supercomplex potentially allows nitrate reduction to be coupled to the Q-cycle of the cytochrome bcc complex. This modification likely improves the efficiency of energy conservation, extending longevity of spores under O limitation. Knowledge gained on the bioenergetics of NO respiration in the actinobacteria will aid our understanding of how many microorganisms survive under conditions of extreme nutrient and energy restriction.

摘要

呼吸硝酸盐还原酶(Nar)催化硝酸盐还原为亚硝酸盐,并将这一过程与能量守恒相偶联。需氧放线菌变铅青链霉菌合成了三种 Nar 酶,当菌丝体或孢子缺氧或无氧时,这三种酶有助于维持膜电位。在这种情况下不会发生生长,但细菌通过保持代谢活性而存活下来;还原硝酸盐是帮助这一过程的一种手段。Nar1 仅存在于孢子中,Nar2 存在于营养菌丝体中,Nar3 存在于静止期菌丝体中,它们各自对能量守恒做出独特贡献。虽然 Nar2 和 Nar3 似乎像传统的menaquinol 氧化酶一样发挥作用,但不寻常的是,Nar1 的活性完全依赖于细胞色素 bcc-aa 氧化酶超复合体。这表明在 O 限制期间,电子在这个超复合体中被转移到 Nar1。从这个超复合体接收电子可能允许硝酸盐还原与细胞色素 bcc 复合体的 Q 循环偶联。这种修饰可能提高了能量守恒的效率,在 O 限制下延长了孢子的寿命。在放线菌中对 NO 呼吸生物能学的了解将有助于我们理解许多微生物如何在极端营养和能量限制条件下存活。

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