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糖酵解支路作为蓝细菌的补料反应补充卡尔文-本森-巴斯汉姆循环。

Glycolytic Shunts Replenish the Calvin-Benson-Bassham Cycle as Anaplerotic Reactions in Cyanobacteria.

机构信息

Department of Biology, Botanical Institute, University Kiel, 24118 Kiel, Germany.

Institute for Systems Biotechnology, Saarland University, 66123 Saarbrücken, Germany.

出版信息

Mol Plant. 2020 Mar 2;13(3):471-482. doi: 10.1016/j.molp.2020.02.002. Epub 2020 Feb 8.

Abstract

The recent discovery of the Entner-Doudoroff (ED) pathway as a third glycolytic route beside Embden-Meyerhof-Parnas (EMP) and oxidative pentose phosphate (OPP) pathway in oxygenic photoautotrophs requires a revision of their central carbohydrate metabolism. In this study, unexpectedly, we observed that deletion of the ED pathway alone, and even more pronounced in combination with other glycolytic routes, diminished photoautotrophic growth in continuous light in the cyanobacterium Synechocystis sp. PCC 6803. Furthermore, we found that the ED pathway is required for optimal glycogen catabolism in parallel to an operating Calvin-Benson-Bassham (CBB) cycle. It is counter-intuitive that glycolytic routes, which are a reverse to the CBB cycle and do not provide any additional biosynthetic intermediates, are important under photoautotrophic conditions. However, observations on the ability to reactivate an arrested CBB cycle revealed that they form glycolytic shunts that tap the cellular carbohydrate reservoir to replenish the cycle. Taken together, our results suggest that the classical view of the CBB cycle as an autocatalytic, completely autonomous cycle that exclusively relies on its own enzymes and CO2 fixation to regenerate ribulose-1,5-bisphosphate for Rubisco is an oversimplification. We propose that in common with other known autocatalytic cycles, the CBB cycle likewise relies on anaplerotic reactions to compensate for the depletion of intermediates, particularly in transition states and under fluctuating light conditions that are common in nature.

摘要

在好氧光合自养生物中,最近发现的 Entner-Doudoroff(ED)途径是除了 Embden-Meyerhof-Parnas(EMP)和氧化磷酸戊糖(OPP)途径之外的第三种糖酵解途径,这需要对它们的中心碳水化合物代谢进行修订。在这项研究中,出乎意料的是,我们观察到单独缺失 ED 途径,甚至与其他糖酵解途径结合缺失,都会在连续光照下减弱蓝细菌集胞藻 6803 的光合自养生长。此外,我们发现 ED 途径对于与 Calvin-Benson-Bassham(CBB)循环一起运行的最佳糖原分解是必需的。具有讽刺意味的是,糖酵解途径与 CBB 循环相反,并且不提供任何额外的生物合成中间体,但在光合自养条件下却很重要。然而,关于重新激活停滞的 CBB 循环的能力的观察表明,它们形成糖酵解分流,利用细胞碳水化合物储备来补充循环。总之,我们的研究结果表明,CBB 循环作为一种自动催化、完全自主的循环,仅依赖其自身的酶和 CO2 固定来再生核酮糖-1,5-二磷酸以供 Rubisco 使用的经典观点过于简单化。我们提出,与其他已知的自动催化循环一样,CBB 循环同样依赖于补料反应来补偿中间产物的消耗,特别是在过渡态和自然界中常见的波动光照条件下。

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