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GUN4在蓝藻进化早期就已出现。

GUN4 appeared early in cyanobacterial evolution.

作者信息

Rockwell Nathan C, Lagarias J Clark

机构信息

Department of Molecular and Cell Biology, University of California at Davis, One Shields Avenue, Davis, CA 95616, USA.

出版信息

PNAS Nexus. 2023 Apr 12;2(5):pgad131. doi: 10.1093/pnasnexus/pgad131. eCollection 2023 May.

Abstract

Photosynthesis relies on chlorophylls, which are synthesized via a common tetrapyrrole trunk pathway also leading to heme, vitamin B12, and other pigmented cofactors. The first committed step for chlorophyll biosynthesis is insertion of magnesium into protoporphyrin IX by magnesium chelatase. Magnesium chelatase is composed of H-, I-, and D-subunits, with the tetrapyrrole substrate binding to the H-subunit. This subunit is rapidly inactivated in the presence of substrate, light, and oxygen, so oxygenic photosynthetic organisms require mechanisms to protect magnesium chelatase from similar loss of function. An additional protein, GUN4, binds to the H-subunit and to tetrapyrroles. GUN4 has been proposed to serve this protective role via its ability to bind linear tetrapyrroles (bilins). In the current work, we probe the origins of bilin binding by GUN4 via comparative phylogenetic analysis and biochemical validation of a conserved bilin-binding motif. Based on our results, we propose that bilin-binding GUN4 proteins arose early in cyanobacterial evolution and that this early acquisition represents an ancient adaptation for maintaining chlorophyll biosynthesis in the presence of light and oxygen.

摘要

光合作用依赖于叶绿素,叶绿素通过一条共同的四吡咯主干途径合成,该途径也会生成血红素、维生素B12和其他色素辅因子。叶绿素生物合成的第一个关键步骤是镁螯合酶将镁插入原卟啉IX中。镁螯合酶由H亚基、I亚基和D亚基组成,四吡咯底物与H亚基结合。在底物、光和氧气存在的情况下,该亚基会迅速失活,因此进行有氧光合作用的生物需要有机制来保护镁螯合酶不发生类似的功能丧失。另一种蛋白质GUN4与H亚基和四吡咯结合。有人提出GUN4通过其结合线性四吡咯(胆色素)的能力发挥这种保护作用。在当前的研究中,我们通过比较系统发育分析和对一个保守的胆色素结合基序进行生化验证,探究了GUN4结合胆色素的起源。基于我们的研究结果,我们提出结合胆色素的GUN4蛋白在蓝细菌进化早期就已出现,并且这种早期获得代表了一种古老的适应性变化,即在有光和氧气的情况下维持叶绿素的生物合成。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/77ba/10156173/e4b4a4ccaa5a/pgad131f1.jpg

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