Scheumann V, Ito H, Tanaka A, Schoch S, Rüdiger W
Botanisches Institut der Universität München, Germany.
Eur J Biochem. 1996 Nov 15;242(1):163-70. doi: 10.1111/j.1432-1033.1996.0163r.x.
Enzyme activity of chlorophyll(ide) b reductase is present in etioplasts. Recently the conversion of chlorophyllide b to chlorophyll a via 7(1)-hydroxychlorophyll a was demonstrated in barley etioplasts. We used zinc pheophorbide b for a detailed investigation of the reduction of the 7-formyl group to the 7(1)-hydroxy compound in intact barley etioplasts. The reaction proceeded likewise before esterification and after esterification with phytyl diphosphate. The metal-free pheophorbide b, that is not accepted by chlorophyll synthase for esterification, is reduced to 7(1)-hydroxypheophorbide a to a small extent. The zinc (13(2)S)-pheophorbide b is at least equally well accepted for reduction as the epimer with the 13(2)R configuration of natural chlorophyll b. The reaction requires NADPH or NADH, although the latter is less effective. ATP is not required for the first step to the 7(1)-hydroxy compound. The significance of chlorophyll b reduction for acclimation from shade to sun leaves and for chlorophyll degradation is discussed.
叶绿素(酯)b还原酶的酶活性存在于黄化质体中。最近,在大麦黄化质体中证实了叶绿素b酯通过7(1)-羟基叶绿素a转化为叶绿素a。我们使用脱镁叶绿酸b锌对完整大麦黄化质体中7-甲酰基还原为7(1)-羟基化合物进行了详细研究。该反应在酯化之前和与植基二磷酸酯化之后同样进行。叶绿素合酶不接受用于酯化的无金属脱镁叶绿酸b在一定程度上被还原为7(1)-羟基脱镁叶绿酸a。锌(13(2)S)-脱镁叶绿酸b作为具有天然叶绿素b的13(2)R构型的差向异构体,至少同样易于被还原。该反应需要NADPH或NADH,尽管后者的效果较差。第一步生成7(1)-羟基化合物不需要ATP。讨论了叶绿素b还原对于从阴生叶到阳生叶的适应以及叶绿素降解的意义。