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Photosynthetic Versatility in the Genome of Geitlerinema sp. PCC 9228 (Formerly Oscillatoria limnetica ‘Solar Lake’) a Model Anoxygenic Photosynthetic Cyanobacterium

机译:Geitlerinema sp。基因组中的光合多功能性。 PCC 9228(以前为Oscillatoria limnetica的 Solar Lake)一种典型的无氧光合作用蓝细菌

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摘要

Anoxygenic cyanobacteria that use sulfide as the electron donor for photosynthesis are a potentially influential but poorly constrained force on Earth’s biogeochemistry. Their versatile metabolism may have boosted primary production and nitrogen cycling in euxinic coastal margins in the Proterozoic. In addition, they represent a biological mechanism for limiting the accumulation of atmospheric oxygen, especially before the Great Oxidation Event and in the low-oxygen conditions of the Proterozoic. In this study, we describe the draft genome sequence of Geitlerinema sp. PCC 9228, formerly Oscillatoria limnetica ‘Solar Lake’, a mat-forming diazotrophic cyanobacterium that can switch between oxygenic photosynthesis and sulfide-based anoxygenic photosynthesis (AP). Geitlerinema possesses three variants of psbA, which encodes protein D1, a core component of the photosystem II reaction center. Phylogenetic analyses indicate that one variant is closely affiliated with cyanobacterial psbA genes that code for a D1 protein used for oxygen-sensitive processes. Another version is phylogenetically similar to cyanobacterial psbA genes that encode D1 proteins used under microaerobic conditions, and the third variant may be cued to high light and/or elevated oxygen concentrations. Geitlerinema has the canonical gene for sulfide quinone reductase (SQR) used in cyanobacterial AP and a putative transcriptional regulatory gene in the same operon. Another operon with a second, distinct sqr and regulatory gene is present, and is phylogenetically related to sqr genes used for high sulfide concentrations. The genome has a comprehensive nif gene suite for nitrogen fixation, supporting previous observations of nitrogenase activity. Geitlerinema possesses a bidirectional hydrogenase rather than the uptake hydrogenase typically used by cyanobacteria in diazotrophy. Overall, the genome sequence of Geitlerinema sp. PCC 9228 highlights potential cyanobacterial strategies to cope with fluctuating redox gradients and nitrogen availability that occur in benthic mats over a diel cycle. Such dynamic geochemical conditions likely also challenged Proterozoic cyanobacteria, modulating oxygen production. The genetic repertoire that underpins flexible oxygenic/anoxygenic photosynthesis in cyanobacteria provides a foundation to explore the regulation, evolutionary context, and biogeochemical implications of these co-occurring metabolisms in Earth history.
机译:使用硫化物作为光合作用的电子供体的产氧蓝细菌是对地球生物地球化学的潜在影响力,但约束力很弱。它们多样化的新陈代谢可能促进了元古代优生性沿海边缘的初级生产和氮循环。此外,它们代表了限制大气中氧气积累的生物学机制,尤其是在大氧化事件发生之前和元古代的低氧条件下。在这项研究中,我们描述了Geitlerinema sp。的草案基因组序列。 PCC 9228,前身为Oscillatoria limnetica的“ Solar Lake”,一种形成垫子的重氮蓝藻细菌,可以在氧的光合作用和基于硫化物的无氧光合作用(AP)之间切换。 Geitlerinema具有psbA的三个变体,该变体编码蛋白质D1(光系统II反应中心的核心组件)。系统发育分析表明,一个变体与蓝细菌psbA基因紧密相关,该基因编码用于对氧敏感的过程的D1蛋白。另一个版本在系统发育上类似于蓝细菌psbA基因,该基因编码在微需氧条件下使用的D1蛋白,第三个变体可能被暗示为高光照和/或升高的氧气浓度。 Geitlerinema具有在蓝细菌AP中使用的硫醌醌还原酶(SQR)的规范基因和在同一操纵子中的推定转录调控基因。存在另一个带有第二个不同的sqr和调控基因的操纵子,并且与用于高硫化物浓度的sqr基因在系统发育上相关。该基因组具有用于固定氮的全面nif基因套件,支持先前对固氮酶活性的观察。 Geitlerinema具有双向加氢酶,而不是蓝细菌通常在重氮营养中使用的摄取加氢酶。总体而言,Geitlerinema sp。的基因组序列。 PCC 9228强调了潜在的蓝藻细菌策略,以应对在diel循环中底栖垫中出现的波动的氧化还原梯度和氮利用率。这种动态的地球化学条件也可能挑战元古代的蓝细菌,从而调节氧气的产生。支撑蓝藻中灵活的氧/无氧光合作用的遗传库为探索地球历史中这些共同发生的代谢的调控,进化背景和生物地球化学意义奠定了基础。

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