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首页> 外文期刊>Environmental microbiology >Effects of phosphorus starvation versus limitation on the marine cyanobacterium ProchlorococcusMED4 I: Uptake physiology
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Effects of phosphorus starvation versus limitation on the marine cyanobacterium ProchlorococcusMED4 I: Uptake physiology

机译:磷饥饿与限制对海洋蓝细菌ProchlorococcusMED4 I的影响:吸收生理

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Recent measurements of natural populations of the marine cyanobacterium Prochlorococcus indicate this numerically dominant phototroph assimilates phosphorus (P) at significant rates in P-limited oceanic regions. To better understand uptake capabilities of Prochlorococcus under different P stress conditions, uptake kinetic experiments were performed on ProchlorococcusMED4 grown in P-limited chemostats and batch cultures. Our results indicate that MED4 has a small cell-specific V_(max) but a high specific affinity (α_P) for P, making it competitive with other marine cyanobacteria at low P concentrations. Additionally, MED4 regulates its uptake kinetics in response to P stress by significantly increasing V_(max) and α_P for both inorganic and organic P (PO_4 and ATP). The Michaelis-Menten constant, K_M, for PO_4 remained constant under different P stress conditions, whereas the K_M for ATP was higher when cells were stressed for PO_4, pointing to additional processes involved in uptake of ATP. MED4 cleaves the PO_4 moieties from ATP, likely with a 5′-nucleotidase-like enzyme rather than alkaline phosphatase. MED4 exhibited distinct physiological differences between cells under steady-state P limitation versus those transitioning from P-replete to P-starved conditions. Thus, MED4 employs a variety of strategies to deal with changing P sources in the oceans and displays complexity in P stress acclimation and regulatory mechanisms.
机译:最近对海洋蓝细菌Prochlorococcus天然种群的测量表明,这种在数字上占优势的光养生物在磷限制的海洋区域以很高的速率吸收了磷(P)。为了更好地了解在不同的P胁迫条件下原球菌的吸收能力,对在有限P恒化器和分批培养物中生长的原球菌MED4进行了吸收动力学实验。我们的结果表明,MED4对P具有小的细胞特异性V_(max)但对P具有高的特异性亲和力(α_P),使其在低P浓度下可与其他海洋蓝细菌竞争。此外,MED4通过显着增加无机和有机P(PO_4和ATP)的V_(max)和α_P来调节响应P胁迫的吸收动力学。在不同的P胁迫条件下,PO_4的Michaelis-Menten常数K_M保持恒定,而当细胞受到PO_4的胁迫时,ATP的K_M较高,这表明参与了ATP吸收的其他过程。 MED4可能从5'核苷酸酶样酶而不是碱性磷酸酶切割ATP的PO_4部分。 MED4在稳态P限制下与从P缺乏状态转变为P缺乏状态的细胞之间表现出明显的生理差异。因此,MED4采用了多种策略来应对海洋中不断变化的磷源,并显示出磷胁迫适应和调控机制的复杂性。

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