Max-Planck-Institut für Molekulare Pflanzenphysiologie, D-14476 Potsdam-Golm, Germany.
Plant Physiol. 2012 Dec;160(4):1923-39. doi: 10.1104/pp.112.206045. Epub 2012 Oct 19.
Low Chlorophyll Accumulation A (LCAA) antisense plants were obtained from a screen for genes whose partial down-regulation results in a strong chlorophyll deficiency in tobacco (Nicotiana tabacum). The LCAA mutants are affected in a plastid-localized protein of unknown function, which is conserved in cyanobacteria and all photosynthetic eukaryotes. They suffer from drastically reduced light-harvesting complex (LHC) contents, while the accumulation of all other photosynthetic complexes per leaf area is less affected. As the disturbed accumulation of LHC proteins could be either attributable to a defect in LHC biogenesis itself or to a bottleneck in chlorophyll biosynthesis, chlorophyll synthesis rates and chlorophyll synthesis intermediates were measured. LCAA antisense plants accumulate magnesium (Mg) protoporphyrin monomethylester and contain reduced protochlorophyllide levels and a reduced content of CHL27, a subunit of the Mg protoporphyrin monomethylester cyclase. Bimolecular fluorescence complementation assays confirm a direct interaction between LCAA and CHL27. 5-Aminolevulinic acid synthesis rates are increased and correlate with an increased content of glutamyl-transfer RNA reductase. We suggest that LCAA encodes an additional subunit of the Mg protoporphyrin monomethylester cyclase, is required for the stability of CHL27, and contributes to feedback-control of 5-aminolevulinic acid biosynthesis, the rate-limiting step of chlorophyll biosynthesis.
低叶绿素积累 A (LCAA) 反义植物是从筛选部分下调基因的烟草(Nicotiana tabacum)中获得的,这些基因的部分下调导致叶绿素严重缺乏。LCAA 突变体受到质体定位的未知功能蛋白的影响,该蛋白在蓝细菌和所有光合真核生物中保守。它们严重缺乏光捕获复合物 (LHC) ,而每叶面积的其他光合复合物的积累则较少受到影响。由于 LHC 蛋白的积累失调可能归因于 LHC 生物发生本身的缺陷或叶绿素生物合成的瓶颈,因此测量了叶绿素合成速率和叶绿素合成中间体。LCAA 反义植物积累镁 (Mg) 原卟啉单甲酯,含有减少的原叶绿素ide 水平和 Mg 原卟啉单甲酯环化酶的 CHL27 亚基含量减少。双分子荧光互补测定证实 LCAA 与 CHL27 之间存在直接相互作用。5-氨基酮戊酸合成速率增加,并与谷氨酰转移 RNA 还原酶含量增加相关。我们认为,LCAA 编码 Mg 原卟啉单甲酯环化酶的另一个亚基,是 CHL27 稳定性所必需的,并有助于 5-氨基酮戊酸生物合成的反馈控制,这是叶绿素生物合成的限速步骤。