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Potential for phosphite and phosphonate utilization by Prochlorococcus

机译:原球菌利用亚磷酸酯和膦酸酯的潜力

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摘要

Phosphonates (Pn) are diverse organic phosphorus (P) compounds containing C–P bonds and comprise up to 25% of the high-molecular weight dissolved organic P pool in the open ocean. Pn bioavailability was suggested to influence markedly bacterial primary production in low-P areas. Using metagenomic data from the Global Ocean Sampling expedition, we show that the main potential microbial contributor in Pn utilization in oceanic surface water is the globally important marine primary producer Prochlorococcus. Moreover, a number of Prochlorococcus strains contain two distinct putative Pn uptake operons coding for ABC-type Pn transporters. On the basis of microcalorimetric measurements, we find that each of the two different putative Pn-binding protein (PhnD) homologs transcribed from these operons possesses different Pn- as well as inorganic phosphite-binding specificities. Our results suggest that Prochlorococcus adapt to low-P environments by increasing the number of Pn transporters with different specificities towards phosphite and different Pns.
机译:膦酸酯(Pn)是包含C–P键的多种有机磷(P)化合物,占公海中高分子量溶解有机磷库的25%。建议Pn生物利用度显着影响低磷地区细菌的初级生产。使用来自全球海洋采样远征队的宏基因组学数据,我们表明,海洋地表水中Pn利用的主要潜在微生物贡献者是全球重要的海洋初级生产者Prochlorococcus。此外,许多原球菌菌株含有编码ABC型Pn转运蛋白的两个不同的假定Pn摄取操纵子。基于微量量热法测量,我们发现从这些操纵子转录的两个不同的推定Pn结合蛋白(PhnD)同源物中的每一个都具有不同的Pn-和无机亚磷酸酯结合特异性。我们的结果表明,原球菌可通过增加对亚磷酸酯和不同Pns具有不同特异性的Pn转运蛋白的数量来适应低磷环境。

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