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首页> 外文期刊>Applied Microbiology and Biotechnology >Understanding the physiological roles of polyhydroxybutyrate (PHB) in Rhodospirillum rubrum S1 under aerobic chemoheterotrophic conditions
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Understanding the physiological roles of polyhydroxybutyrate (PHB) in Rhodospirillum rubrum S1 under aerobic chemoheterotrophic conditions

机译:了解多羟基丁酸酯(PHB)在有氧趋化营养条件下在红景天螺旋藻S1中的生理作用

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摘要

Polyhydroxybutyrate (PHB) is an important biopolymer accumulated by bacteria and associated with cell survival and stress response. Here, we make two surprising findings in the PHB-accumulating species Rhodospirillum rubrum S1. We first show that the presence of PHB promotes the increased assimilation of acetate preferentially into biomass rather than PHB. When R. rubrum is supplied with C-13-acetate as a PHB precursor, 83.5% of the carbon in PHB comes from acetate. However, only 15 % of the acetate ends up in PHB with the remainder assimilated as bacterial biomass. The PHB-negative mutant of R. rubrum assimilates 2-fold less acetate into biomass compared to the wild-type strain. Acetate assimilation proceeds via the ethylmalonyl-CoA pathway with ( R)-3-hydroxybutyrate as a common intermediate with the PHB pathway. Secondly, we show that R. rubrum cells accumulating PHB have reduced ribulose 1,5-bisphosphate carboxylase ( RuBisCO) activity. RuBisCO activity reduces 5-fold over a 36-h period after the onset of PHB. In contrast, a PHB-negative mutant maintains the same level of RuBisCO activity over the growth period. Since RuBisCO controls the redox potential in R. rubrum, PHB likely replaces RuBisCO in this role. R. rubrum is the first bacterium found to express RuBisCO under aerobic chemoheterotrophic conditions.
机译:聚羟基丁酸酯(PHB)是细菌积累的重要生物聚合物,与细胞存活和应激反应有关。在这里,我们在积累PHB的红景天螺旋藻S1中做出了两个令人惊讶的发现。我们首先表明,PHB的存在促进了醋酸盐同化而不是PHB的同化作用增加。当向红景天提供C-13-乙酸盐作为PHB前体时,PHB中83.5%的碳来自乙酸盐。但是,只有15%的乙酸盐最终出现在PHB中,其余被吸收为细菌生物质。与野生型菌株相比,红景天的PHB阴性突变体将乙酸盐吸收到生物质中的量减少了2倍。乙酸同化通过乙基丙二酰-CoA途径进行,其中(R)-3-羟基丁酸酯是PHB途径的常见中间体。其次,我们显示积累PHB的红血球菌细胞具有降低的核糖1,5-双磷酸羧化酶(RuBisCO)活性。在PHB发作后的36小时内,RuBisCO活性降低了5倍。相反,PHB阴性突变体在整个生长期维持相同水平的RuBisCO活性。由于RuBisCO控制了红景天中的氧化还原电位,因此PHB可能会取代RuBisCO。红杆菌是在有氧趋化营养条件下发现表达RuBisCO的第一种细菌。

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