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Cellobiose versus glucose utilization by the ruminal bacterium Ruminococcus albus.

机译:瘤胃细菌Ruminococcus albus对纤维二糖与葡萄糖的利用。

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Cellulose degradation and metabolism in the rumen can be adversely affected by the presence of soluble sugars, but relatively little information is available on substrate preferences of cellulolytic bacteria. When the ruminal bacterium Ruminococcus albus was incubated with a combination of cellobiose and glucose, the organism preferentially utilized the disaccharide. This preference appeared to be related to repression of glucose uptake systems in cellobiose-grown cells. Glucose transport kinetics exhibited low- and high-affinity uptake, and high-affinity transport was apparently driven by ATP hydrolysis. Bacterial yield in continuous culture was as much as 38% greater when the organism was grown on cellobiose versus glucose, and the increased yield could be partially attributed to constitutive cellobiose phosphorylase activity. The maintenance coefficient of glucose-grown cells was significantly greater than that of cells provided with cellobiose (0.225 g of glucose per g of protein per h versus 0.042 g of cellobiose per g of protein per h), and this result suggested that more energy was devoted to glucose uptake. Substrate affinities were examined in carbon-excess continuous culture, and affinities for glucose and cellobiose were relatively low (0.97 and 3.16 mM, respectively). Although R. albus maintained a proton motive force of approximately 60 mV from pH 6.7 to 5.5, growth ceased below pH 6.0, and this inhibition of growth may have been caused by a depletion of ATP at low pH.
机译:可溶性糖的存在会对瘤胃中的纤维素降解和代谢产生不利影响,但是关于纤维素分解细菌的底物偏好的信息相对较少。当瘤胃细菌Ruminococcus albus与纤维二糖和葡萄糖的混合物一起孵育时,有机体优先利用二糖。这种偏好似乎与纤维二糖生长的细胞中葡萄糖摄取系统的抑制有关。葡萄糖转运动力学表现出低亲和力和高亲和力吸收,而高亲和力的转运显然是由ATP水解驱动的。当生物体在纤维二糖上生长时,连续培养的细菌产量比葡萄糖高38%,并且增加的产量可能部分归因于组成性纤维二糖磷酸化酶活性。葡萄糖生长的细胞的维持系数显着大于提供纤维二糖的细胞(每小时每克蛋白质0.225克葡萄糖与每小时每克蛋白质0.042克纤维二糖)的维持系数,这一结果表明,更多的能量是致力于葡萄糖的摄取。在碳过量连续培养中检查底物亲和力,并且对于葡萄糖和纤维二糖的亲和力相对较低(分别为0.97和3.16 mM)。尽管阿氏杆菌在pH 6.7至5.5范围内保持约60 mV的质子原动力,但在pH 6.0以下生长停止,并且这种生长抑制可能是由于低pH下ATP的消耗所致。

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