Center of Excellence for Molecular Plant Sciences, Chinese Academy of Science, Shanghai 200032, China.
School of Plant Sciences and Food Security, Tel-Aviv University, 6997801, Israel.
Semin Cell Dev Biol. 2024 Mar 1;155(Pt A):3-9. doi: 10.1016/j.semcdb.2023.02.009. Epub 2023 Feb 28.
Maintaining proper metabolite levels in a complex metabolic network is crucial for maintaining a high flux through the network. In this paper, we discuss major regulatory mechanisms over the Calvin Benson Cycle (CBC) with regard to their roles in conferring homeostasis of metabolite levels in CBC. These include: 1) Redox regulation of enzymes in the CBC on one hand ensures that metabolite levels stay above certain lower bounds under low light while on the other hand increases the flux through the CBC under high light. 2) Metabolite regulations, especially allosteric regulations of major regulatory enzymes, ensure the rapid up-regulation of fluxes to ensure sufficient amount of triose phosphate is available for end product synthesis and concurrently avoid phosphate limitation. 3) A balanced activities of enzymes in the CBC help maintain balanced flux through CBC; some innate product feedback mechanisms, in particular the ADP feedback regulation of GAPDH and F6P feedback regulation of FBPase, exist in CBC to achieve such a balanced enzyme activities and hence flux distribution in the CBC for greater photosynthetic efficiency. Transcriptional regulation and natural variations of enzymes controlling CBC metabolite homeostasis should be further explored to maximize the potential of engineering CBC for greater efficiency.
维持复杂代谢网络中适当的代谢物水平对于维持网络中的高通量至关重要。在本文中,我们讨论了卡尔文-本森循环(CBC)的主要调节机制,以及它们在赋予 CBC 中代谢物水平的内稳态方面的作用。这些机制包括:1)CBC 中酶的氧化还原调节,一方面确保在低光照下代谢物水平保持在一定的下限之上,另一方面在高光下增加 CBC 的通量。2)代谢物的调节,特别是主要调节酶的变构调节,确保通量的快速上调,以确保有足够的三磷酸甘油醛用于终产物的合成,并同时避免磷酸盐的限制。3)CBC 中酶的活性平衡有助于维持 CBC 中的平衡通量;一些内在的产物反馈机制,特别是 GAPDH 的 ADP 反馈调节和 FBPase 的 F6P 反馈调节,存在于 CBC 中,以实现 CBC 中酶活性和通量分布的平衡,从而提高光合作用效率。进一步探索控制 CBC 代谢物内稳态的酶的转录调节和自然变异,以最大限度地提高工程化 CBC 的效率。