Jamai Aziz, Salomé Patrice A, Schilling Stephen H, Weber Andreas P M, McClung C Robertson
Department of Biological Sciences, Dartmouth College, Hanover, New Hampshire 03755, USA.
Plant Cell. 2009 Feb;21(2):595-606. doi: 10.1105/tpc.108.063289. Epub 2009 Feb 17.
The dual affinity of ribulose-1,5-bisphosphate carboxylase/oxygenase for O(2) and CO(2) results in the net loss of fixed carbon and energy in a process termed photorespiration. The photorespiratory cycle is complex and occurs in three organelles, chloroplasts, peroxisomes, and mitochondria, which necessitates multiple steps to transport metabolic intermediates. Genetic analysis has identified a number of mutants exhibiting photorespiratory chlorosis at ambient CO(2), including several with defects in mitochondrial serine hydroxymethyltransferase (SHMT) activity. One class of mutants deficient in SHMT1 activity affects SHM1, which encodes the mitochondrial SHMT required for photorespiration. In this work, we describe a second class of SHMT1-deficient mutants defective in a distinct gene, GLU1, which encodes Ferredoxin-dependent Glutamate Synthase (Fd-GOGAT). Fd-GOGAT is a chloroplastic enzyme responsible for the reassimilation of photorespiratory ammonia as well as for primary nitrogen assimilation. We show that Fd-GOGAT is dual targeted to the mitochondria and the chloroplasts. In the mitochondria, Fd-GOGAT interacts physically with SHMT1, and this interaction is necessary for photorespiratory SHMT activity. The requirement of protein-protein interactions and complex formation for photorespiratory SHMT activity demonstrates more complicated regulation of this crucial high flux pathway than anticipated.
核酮糖-1,5-二磷酸羧化酶/加氧酶对O₂和CO₂的双重亲和力导致在一个称为光呼吸的过程中固定碳和能量的净损失。光呼吸循环很复杂,发生在叶绿体、过氧化物酶体和线粒体这三种细胞器中,这需要多个步骤来转运代谢中间产物。遗传分析已经鉴定出一些在环境CO₂浓度下表现出光呼吸失绿的突变体,包括几个线粒体丝氨酸羟甲基转移酶(SHMT)活性有缺陷的突变体。一类缺乏SHMT1活性的突变体影响SHM1,SHM1编码光呼吸所需的线粒体SHMT。在这项工作中,我们描述了第二类SHMT1缺陷型突变体,它们在一个不同的基因GLU1中有缺陷,GLU1编码铁氧还蛋白依赖性谷氨酸合酶(Fd-GOGAT)。Fd-GOGAT是一种叶绿体酶,负责光呼吸氨的再同化以及初级氮同化。我们表明Fd-GOGAT双重定位于线粒体和叶绿体。在线粒体中,Fd-GOGAT与SHMT1发生物理相互作用,这种相互作用对于光呼吸SHMT活性是必需的。光呼吸SHMT活性对蛋白质-蛋白质相互作用和复合物形成的需求表明,这条关键的高通量途径的调控比预期的更为复杂。