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首页> 外文期刊>Canadian journal of microbiology >Replacing the general energy-coupling proteins of the phospho-enol- pyruvate:sugar phosphotransferase system of Salmonella typhimurium with fructose-inducible counterparts results in the inability to utilize nonphosphotransferase system sugars
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Replacing the general energy-coupling proteins of the phospho-enol- pyruvate:sugar phosphotransferase system of Salmonella typhimurium with fructose-inducible counterparts results in the inability to utilize nonphosphotransferase system sugars

机译:用果糖诱导的对应物代替鼠伤寒沙门氏菌的磷酸烯醇丙酮酸:糖磷酸转移酶系统的一般能量耦合蛋白,导致无法利用非磷酸转移酶系统糖

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摘要

A Salmonella typhimurium mutant lacking Enzyme I and HPr, general proteins of the phosphoenolpyruvate:sugar phosphotransferase system (PTS), but producing homologues EI super(Fructose) and FPr constitutively, did not grow in minimal medium supplemented with non-PTS sugars (melibiose, glycerol, and maltose) in the absence of any trace of Luria-Bertani broth; adding cyclic AMP allowed growth. On melibiose, rapid growth began only when melibiose permease activity had reached a threshold level. Wild-type cultures reached this level within about 2A h, but the mutant only after a 12-14A h lag period, and then only when cyclic AMP had been added to the medium. On a mixture of melibiose and a PTS sugar, permease was undetectable in either the wild type or mutant until the PTS sugar had been exhausted. Permease then appeared, increasing with time, but in the mutant it never reached the threshold allowing rapid growth on melibiose unless cyclic AMP had been added. On rich medium supplemented with melibiose or glycerol, the mutant produced lower (30%) levels of melibiose permease or glycerol kinase compared with the wild type. We propose that poor phosphorylation of the regulatory protein Enzym IIEA super(Glucose), leading to constitutive inducer exclusion and catabolite repression in this strain, accounts for these results.
机译:缺少酶I和HPr(磷酸烯醇丙酮酸:糖磷酸转移酶系统(PTS)的常规蛋白,但组成型产生EI超级(果糖)和FPr)的鼠伤寒沙门氏菌突变体,在没有添加非PTS糖(微量,甘油和麦芽糖),没有任何Luria-Bertani肉汤;添加循环AMP可以使其生长。在黑素糖上,仅当黑素糖通透酶活性达到阈值水平时才开始快速生长。野生型培养物在约2A h内达到此水平,但仅在12-14A h滞后期后才突变,然后才将环状AMP添加到培养基中。在黑松糖和PTS糖的混合物上,直到PTS糖用尽之前,在野生型或突变体中都无法检测到通透酶。随即出现通透酶,随时间增加,但在突变体中,除非添加环状AMP,否则它从未达到允许在黑me糖上快速生长的阈值。与野生型相比,在补充了黑素糖或甘油的丰富培养基上,突变体产生的黑素糖通透酶或甘油激酶水平较低(30%)。我们建议调节蛋白Enzym IIEA超级(葡萄糖)的磷酸化差,导致此菌株中组成型诱导物排斥和分解代谢物阻遏,解释了这些结果。

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