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豆血红蛋白与固氮根瘤类菌体的氧气供应:低游离氧浓度下两种氧化酶系统的存在及ATP的产生

Leghaemoglobin and the supply of O2 to nitrogen-fixing root nodule bacteroids: presence of two oxidase systems and ATP production at low free O2 concentration.

作者信息

Bergersen F J, Turner G L

出版信息

J Gen Microbiol. 1975 Dec;91(2):345-54. doi: 10.1099/00221287-91-2-345.

Abstract

Studies of rates of consumption of dissolved O2 by suspensions of bacteroids (Rhizobium japonicum, strain CB1809) from soybean root nodules showed the presence of two different terminal oxidase systems. A high-affinity system, sensitive to inhibition by N-phenylimidazole and by carbon monoxide, was most active when the dissolved O2 was between 0-01 and 0-1 muM. At 1 muM-O2 or higher, this oxidase system had little activity and O2 was consumed largely by a low-affinity system insensitive to these inhibitors. At low concentrations of dissolved O2, bacteroid respiration rates appeared to be diffusion-limited. When purified oxyleghaemoglobin was added to such systems, this restriction was relieved and respiration was maintained to much lower concentrations of free dissolved O2, where nitrogenase activity was greatest. Analysis of reactions which were terminated at various stages during the depletion of O2 from oxyleghaemoglobin showed that at low free O2 concentration, the high-affinity pathway produced up to five times greater bacteroid ATP concentrations than the low-affinity oxidase pathway operating about 1 muM free O2 in the absence of leghaemoglobin. At intermediate free O2 concentrations, occurring during the later stages of deoxygenation of oxymyoglobin, intermediate concentrations of ATP were found in the bacteroids.

摘要

对大豆根瘤类菌体(日本根瘤菌,CB1809菌株)悬浮液中溶解氧消耗速率的研究表明存在两种不同的末端氧化酶系统。一种高亲和力系统,对N-苯基咪唑和一氧化碳的抑制敏感,当溶解氧在0.01至0.1微摩尔之间时活性最高。在1微摩尔氧气或更高时,这种氧化酶系统活性很低,氧气主要由对这些抑制剂不敏感的低亲和力系统消耗。在低浓度溶解氧时,类菌体呼吸速率似乎受扩散限制。当向此类系统中添加纯化的氧合豆血红蛋白时,这种限制得以缓解,呼吸作用在低得多的游离溶解氧浓度下仍能维持,而此时固氮酶活性最高。对在氧合豆血红蛋白中氧气消耗的不同阶段终止的反应进行分析表明,在低游离氧浓度下,高亲和力途径产生的类菌体ATP浓度比在没有豆血红蛋白时约1微摩尔游离氧下运行的低亲和力氧化酶途径高出多达五倍。在氧合肌红蛋白脱氧后期出现的中等游离氧浓度下,类菌体中发现了中等浓度的ATP。

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