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Effects of Perturbations of the Nitrogenase Electron Transfer Chain on Reversible ADP-Ribosylation of Nitrogenase Fe Protein in Klebsiella pneumoniae Strains Bearing the Rhodospirillum rubrum dra Operon

机译:硝化酶电子传递链的扰动对携带红螺螺旋菌的肺炎克雷伯菌肺炎克雷伯菌肺炎株中固氮酶铁蛋白可逆ADP-核糖基化的影响

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摘要

The redox state of nitrogenase Fe protein is shown to affect regulation of ADP-ribosylation in Klebsiella pneumoniae strains transformed by plasmids carrying dra genes from Rhodospirillum rubrum. The dra operon encodes dinitrogenase reductase ADP-ribosyltransferase and dinitrogenase reductase-activating glycohydrolase, enzymes responsible for the reversible inactivation, via ADP-ribosylation, of nitrogenase Fe protein in R. rubrum. In bacteria containing the dra operon in their chromosomes, inactivation occurs in response to energy limitation or nitrogen sufficiency. The dra gene products, expressed at a low level in K. pneumoniae, enable transformants to reversibly ADP-ribosylate nitrogenase Fe protein in response to the presence of fixed nitrogen. The activities of both regulatory enzymes are regulated in vivo as described in R. rubrum. Genetic perturbations of the nitrogenase electron transport chain were found to affect the rate of inactivation of Fe protein. Strains lacking the electron donors to Fe protein (NifF or NifJ) were found to inactivate Fe protein more quickly than a strain with wild-type background. Deletion of nifD, which encodes a subunit of nitrogenase MoFe protein, was found to result in a slower inactivation response. No variation was found in the reactivation responses of these strains. It is concluded that the redox state of the Fe protein contributes to the regulation of the ADP-ribosylation of Fe protein.
机译:已显示固氮酶Fe蛋白的氧化还原状态会影响肺炎克雷伯氏菌菌株中ADP核糖基化的调节,该菌株由携带来自红螺旋藻的dra基因的质粒转化。 dra操纵子编码双氮酶还原酶ADP-核糖基转移酶和双氮酶还原酶-活化的糖水解酶,这些酶负责通过ADP-核糖基化使R.rubrum中的氮酶Fe蛋白可逆失活。在其染色体中含有dra操纵子的细菌中,响应于能量限制或氮充足而发生失活。在肺炎克雷伯菌中低水平表达的dra基因产物可使转化子响应固定氮的存在而可逆地使用ADP-核糖基化固氮酶Fe蛋白。如R. rubrum中所述,两种调节酶的活性都在体内被调节。发现固氮酶电子传输链的遗传扰动会影响Fe蛋白的失活速率。发现缺乏Fe蛋白电子供体的菌株(NifF或NifJ)比具有野生型背景的菌株更快速地灭活Fe蛋白。发现删除了编码固氮酶MoFe蛋白亚基的nifD,会导致较慢的灭活反应。在这些菌株的再激活反应中未发现变化。结论是,Fe蛋白的氧化还原状态有助于调节Fe蛋白的ADP-核糖基化。

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