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Fast Induction of High-Affinity HCO3− Transport in Cyanobacteria

机译:在蓝细菌中快速诱导高亲和力HCO3-转运

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摘要

The induction of a high-affinity state of the CO2-concentration mechanism was investigated in two cyanobacterial species, Synechococcus sp. strain PCC7002 and Synechococcus sp. strain PCC7942. Cells grown at high CO2 concentrations were resuspended in low-CO2 buffer and illuminated in the presence of carbonic anhydrase for 4 to 10 min until the inorganic C compensation point was reached. Thereafter, more than 95% of a high-affinity CO2-concentration mechanism was induced in both species. Mass-spectrometric analysis of CO2 and HCO3 fluxes indicated that only the affinity of HCO3 transport increased during the fast-induction period, whereas maximum transport activities were not affected. The kinetic characteristics of CO2 uptake remained unchanged. Fast induction of high-affinity HCO3 transport was not inhibited by chloramphenicol, cantharidin, or okadaic acid. In contrast, fast induction of high-affinity HCO3 transport did not occur in the presence of K252a, staurosporine, or genistein, which are known inhibitors of protein kinases. These results show that induction of high-affinity HCO3 transport can occur within minutes of exposure to low-inorganic-C conditions and that fast induction may involve posttranslational phosphorylation of existing proteins rather than de novo synthesis of new protein components.
机译:在两个蓝藻物种Synechococcus sp。中研究了高亲和力状态的CO2浓度机制的诱导。菌株PCC7002和Synechococcus sp。菌株PCC7942。将在高CO2浓度下生长的细胞重悬于低CO2缓冲液中,并在碳酸酐酶存在下照射4至10分钟,直至达到无机C补偿点。此后,在两个物种中都诱导了超过95%的高亲和力CO2浓度机制。对CO2和HCO3 -通量的质谱分析表明,在快速诱导期间,仅HCO3 -传输的亲和力增加,而最大传输活动不受影响。吸收CO 2的动力学特征保持不变。高亲和力HCO3 -转运的快速诱导不受氯霉素,邻苯二酚或冈田酸的抑制。相反,在已知的蛋白激酶抑制剂K252a,星形孢菌素或染料木黄酮的存在下,不会快速诱导高亲和力HCO3 -转运。这些结果表明,高亲和力HCO3 -转运的诱导可在暴露于低无机C条件的几分钟内发生,并且快速诱导可能涉及现有蛋白质的翻译后磷酸化,而不是从头合成新的蛋白质成分。

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