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Autotrophic and Heterotrophic Metabolism of Hydrogenomonas: Regulation of Autotrophic Growth by Organic Substrates

机译:氢单胞菌的自养和异养代谢:有机底物对自养生长的调节

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摘要

The effects of a number of organic substrates on the autotrophic metabolism of Hydrogenomonas eutropha were examined. Dual substrate (mixotrophic) cultivation in the presence of hydrogen plus either fructose or alanine allowed autotrophic growth to begin immediately after the exhaustion of the organic substrate. On the other hand, the presence of acetate, pyruvate, or glutamate caused a lengthy lag to occur before autotrophic growth commenced. With acetate or pyruvate this lag (plateau) in the dicyclic growth curve was due to the repression of ribulose diphosphate carboxylase (RDPC) synthesis during mixotrophic growth. During heterotrophic growth with glutamate, RDPC was partially repressed; however, during mixotrophic growth, RDPC activity was high. Thus the delay of autotrophic growth was not due to a repression of RDPC by glutamate. The data suggest that glutamate interferes with autotrophic metabolism by repressing the incorporation of inorganic nitrogen. The repression of these vital autotrophic functions by acetate, pyruvate, and glutamate occurred both in the presence and absence of hydrogen, i.e., during both heterotrophic and mixotrophic cultivation. The derepression of the affected systems during the plateau phase of the dicyclic growth curves was demonstrated. Carbon dioxide assimilation by whole cells agreed well with the RDPC activity of extracts from cells grown under similar conditions.
机译:考察了多种有机底物对富营养氢单胞菌自养代谢的影响。在氢加果糖或丙氨酸存在下的双重底物(混合营养)培养允许自养营养生长在有机底物耗尽后立即开始。另一方面,乙酸盐,丙酮酸或谷氨酸的存在导致自养开始生长之前出现了较长的滞后。使用乙酸盐或丙酮酸盐时,双环生长曲线的这种滞后(平稳)是由于混合营养生长过程中核糖二磷酸羧化酶(RDPC)合成的抑制。在与谷氨酸异养生长期间,RDPC被部分抑制。但是,在混合营养生长期间,RDPC活性很高。因此,自养生长的延迟不是由于谷氨酸对RDPC的抑制。数据表明,谷氨酸通过抑制无机氮的掺入来干扰自养代谢。乙酸,丙酮酸和谷氨酸对这些重要的自养功能的抑制在存在和不存在氢的情况下均发生,即在异养和混养培养期间。证明了在双环生长曲线的平稳期,受影响系统的抑制。全细胞对二氧化碳的吸收与在相似条件下生长的细胞提取物的RDPC活性非常吻合。

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