Raghavendra AS, Reumann S, Heldt HW
Albrecht von Haller Institut fur Pflanzenwissenschaften, Universitat Gottingen, Abteilung fur Biochemie der Pflanze, Untere Karspule 2, D-37073 Gottingen, Germany.
Plant Physiol. 1998 Apr;116(4):1333-7. doi: 10.1104/pp.116.4.1333.
In this study the interplay of mitochondria and peroxisomes in photorespiration was simulated in a reconstituted system of isolated mitochondria and peroxisomes from spinach (Spinacia oleracea L.) leaves. The mitochondria oxidizing glycine produced serine, which was reduced in the peroxisomes to glycerate. The required reducing equivalents were provided by the mitochondria via the malate-oxaloacetate (OAA) shuttle, in which OAA was reduced in the mitochondrial matrix by NADH generated during glycine oxidation. The rate of peroxisomal glycerate formation, as compared with peroxisomal protein, resembled the corresponding rate required during leaf photosynthesis under ambient conditions. When the reconstituted system produced glycerate at this rate, the malate-to-OAA ratio was in equilibrium with a ratio of NADH/NAD of 8. 8 x 10(-3). This low ratio is in the same range as the ratio of NADH/NAD in the cytosol of mesophyll cells of intact illuminated spinach leaves, as we had estimated earlier. This result demonstrates that in the photorespiratory cycle a transfer of redox equivalents from the mitochondria to peroxisomes, as postulated from separate experiments with isolated mitochondria and peroxisomes, can indeed operate under conditions of the very low reductive state of the NADH/NAD system prevailing in the cytosol of mesophyll cells in a leaf during photosynthesis.
在本研究中,利用从菠菜(Spinacia oleracea L.)叶片分离得到的线粒体和过氧化物酶体组成的重构系统,模拟了线粒体和过氧化物酶体在光呼吸中的相互作用。线粒体氧化甘氨酸产生丝氨酸,丝氨酸在过氧化物酶体中被还原为甘油酸。所需的还原当量由线粒体通过苹果酸 - 草酰乙酸(OAA)穿梭提供,其中草酰乙酸在甘氨酸氧化过程中由线粒体基质中的NADH还原。与过氧化物酶体蛋白相比,过氧化物酶体中甘油酸的形成速率类似于在环境条件下叶片光合作用所需的相应速率。当重构系统以该速率产生甘油酸时,苹果酸与草酰乙酸的比率与NADH / NAD比率为8.8×10(-3)时达到平衡。正如我们之前所估计的,这个低比率与完整光照菠菜叶片叶肉细胞胞质溶胶中NADH / NAD的比率处于相同范围。这一结果表明,在光呼吸循环中,从线粒体到过氧化物酶体的氧化还原当量转移,正如从分离的线粒体和过氧化物酶体的单独实验中所推测的那样,在光合作用期间叶片叶肉细胞胞质溶胶中NADH / NAD系统极低还原状态的条件下确实可以发生。