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阿拉伯糖转运系统的供能及与大肠杆菌中半乳糖转运的比较。

Energization of the transport systems for arabinose and comparison with galactose transport in Escherichia coli.

作者信息

Daruwalla K R, Paxton A T, Henderson P J

出版信息

Biochem J. 1981 Dec 15;200(3):611-27. doi: 10.1042/bj2000611.

Abstract
  1. Strains of Escherichia coli were obtained containing either the AraE or the AraF transport system for arabinose. AraE+,AraF- strains effected energized accumulation and displayed an arabinose-evoked alkaline pH change indicative of arabinose-H+ symport. In contrast, AraE-,AraF+ strains accumulated arabinose but did not display H+ symport. 2. The ability of different sugars and their derivatives to elicit sugar-H+ symport in AraE+ strains was examined. Only L-arabinose and D-fucose were good substrates, and arabinose was the only inducer. 3. Membrane vesicles prepared from an AraE+,AraF+ strain accumulated the sugar, energized most efficiently by the respiratory substrates ascorbate + phenazine methosulphate. Addition of arabinose or fucose to an anaerobic suspension of membrane vesicles caused an alkaline pH change indicative or sugar-H+ symport on the membrane-bound transport system. 4. Kinetic studies and the effects of arsenate and uncoupling agents in intact cells and membrane vesicles gave further evidence that AraE is a low-affinity membrane-bound sugar-H+ symport system and that AraF is a binding-protein-dependent high-affinity system that does not require a transmembrane protonmotive force for energization. 5. The interpretation of these results is that arabinose transport into E. coli is energized by an electrochemical gradient of protons (AraE system) or by phosphate bond energy (AraF system). 6. In batch cultures the rates of growth and carbon cell yields on arabinose were lower in AraE-,AraF+ strains than in AraE+,AraF- or AraE+,AraF+ strains. The AraF system was more susceptible to catabolite repression than was the AraE system. 7. The properties of the two transport systems for arabinose are compared with those of the genetically and biochemically distinct transport systems for galactose, GalP and MglP. It appears that AraE is analogous to GalP, and AraF to MglP.
摘要
  1. 获得了含有阿拉伯糖AraE或AraF转运系统的大肠杆菌菌株。AraE⁺、AraF⁻菌株实现了能量驱动的积累,并表现出阿拉伯糖诱发的碱性pH变化,这表明存在阿拉伯糖-H⁺同向转运。相比之下,AraE⁻、AraF⁺菌株积累了阿拉伯糖,但未表现出H⁺同向转运。2. 研究了不同糖类及其衍生物在AraE⁺菌株中引发糖-H⁺同向转运的能力。只有L-阿拉伯糖和D-岩藻糖是良好的底物,且阿拉伯糖是唯一的诱导剂。3. 从AraE⁺、AraF⁺菌株制备的膜囊泡积累了糖类,呼吸底物抗坏血酸+吩嗪硫酸甲酯能最有效地为其提供能量。向膜囊泡的厌氧悬浮液中添加阿拉伯糖或岩藻糖会导致碱性pH变化,这表明膜结合转运系统上存在糖-H⁺同向转运。4. 完整细胞和膜囊泡中的动力学研究以及砷酸盐和解偶联剂的作用提供了进一步的证据,表明AraE是一种低亲和力的膜结合糖-H⁺同向转运系统,而AraF是一种依赖结合蛋白的高亲和力系统,其能量供应不需要跨膜质子动力势。5. 这些结果的解释是,阿拉伯糖向大肠杆菌的转运由质子的电化学梯度(AraE系统)或磷酸键能(AraF系统)提供能量。6. 在分批培养中,AraE⁻、AraF⁺菌株中阿拉伯糖的生长速率和碳细胞产率低于AraE⁺、AraF⁻或AraE⁺、AraF⁺菌株。AraF系统比AraE系统更容易受到分解代谢物阻遏的影响。7. 将阿拉伯糖的两种转运系统的特性与半乳糖的遗传和生化特性不同的转运系统GalP和MglP的特性进行了比较。似乎AraE类似于GalP,而AraF类似于MglP。

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