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纤维素分解瘤胃厌氧菌琥珀酸纤维杆菌(拟杆菌属)对纤维二糖的摄取。

Cellobiose uptake by the cellulolytic ruminal anaerobe Fibrobacter (Bacteroides) succinogenes.

作者信息

Maas L K, Glass T L

机构信息

Department of Microbiology, North Dakota State University, Fargo 58105.

出版信息

Can J Microbiol. 1991 Feb;37(2):141-7. doi: 10.1139/m91-021.

Abstract

Cellobiose transport by the cellulolytic ruminal anaerobe Fibrobacter (Bacteroides) succinogenes was measured using randomly tritiated cellobiose. When assayed at the same concentration (1 mM), total cellobiose uptake was one-fourth to one-third that of total glucose uptake. The abilities of F. succinogenes to transport cellobiose or glucose were not affected by the sugar on which the cells were grown. Aspects of the simultaneous transport of [14C(U)]glucose and [3H(G)]cellobiose, the failure of high concentrations of cold glucose to compete with hypothetical [3H(G)]glucose (derived externally from [3H(G)]cellobiose), and differential metal-ion stimulation of cellobiose transport indicate a cellobiose permease, rather than cellobiase plus glucose permease, was responsible for cellobiose transport. Glucose (10-fold molar excess) partially inhibited cellobiose transport. This was enhanced by prior incubation of the cells with glucose, suggesting subsequent metabolism of the glucose was responsible for the inhibition. Compounds interfering with electron transport or maintenance of transmembrane ion gradients inhibited cellobiose uptake, indicating that active transport rather than a phosphoenolpyruvate:phosphotransferase system catalyzed cellobiose transport. Na+, but not Li+, stimulated cellobiose transport.

摘要

使用随机氚化的纤维二糖来测定纤维分解性瘤胃厌氧菌琥珀酸纤维杆菌(拟杆菌属)对纤维二糖的转运。当在相同浓度(1 mM)下进行测定时,纤维二糖的总摄取量是葡萄糖总摄取量的四分之一到三分之一。琥珀酸纤维杆菌转运纤维二糖或葡萄糖的能力不受细胞生长所用糖类的影响。[14C(U)]葡萄糖和[3H(G)]纤维二糖同时转运的情况、高浓度冷葡萄糖无法与假设的[3H(G)]葡萄糖(从[3H(G)]纤维二糖外部衍生而来)竞争以及不同金属离子对纤维二糖转运的刺激作用表明,负责纤维二糖转运的是纤维二糖通透酶,而非纤维二糖酶加葡萄糖通透酶。葡萄糖(摩尔过量10倍)部分抑制纤维二糖转运。细胞预先与葡萄糖孵育会增强这种抑制作用,这表明葡萄糖随后的代谢是造成抑制的原因。干扰电子传递或跨膜离子梯度维持的化合物会抑制纤维二糖摄取,这表明纤维二糖转运是由主动转运而非磷酸烯醇式丙酮酸:磷酸转移酶系统催化的。Na +而非Li +刺激纤维二糖转运。

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