Lebenswissenschaftliche Fakultät, Institut für Biologie, AG Pflanzenphysiologie, Humboldt-Universität zu Berlin, Philippstrasse 13, 10115, Berlin, Germany.
Plant J. 2019 Feb;97(3):517-529. doi: 10.1111/tpj.14138. Epub 2018 Dec 7.
Fluorescent in blue light (FLU) is a negative regulator involved in dark repression of 5-aminolevulinic acid (ALA) synthesis and interacts with glutamyl-tRNA reductase (GluTR), the rate-limiting enzyme of tetrapyrrole biosynthesis. In this study, we investigated FLU's regulatory function in light-exposed FLU-overexpressing (FLUOE) Arabidopsis lines and under fluctuating light intensities in wild-type (WT) and flu seedlings. FLUOE lines suppress ALA synthesis in the light, resulting in reduced chlorophyll content, but more strongly in low and high light than in medium growth light. This situation indicates that FLU's impact on chlorophyll biosynthesis depends on light intensity. FLU overexpressors contain strongly increased amounts of mainly membrane-associated GluTR. These findings correlate with FLU-dependent localization of GluTR to plastidic membranes and concomitant inhibition, such that only the soluble GluTR fraction is active. The overaccumulation of membrane-associated GluTR indicates that FLU binding enhances GluTR stability. Interestingly, under fluctuating light, the leaves of flu mutants contain less chlorophyll compared with WT and become necrotic. We propose that FLU is basically required for fine-tuned ALA synthesis. FLU not only mediates dark repression of ALA synthesis, but functions also to control balanced ALA synthesis under variable light intensities to ensure the adequate supply of chlorophyll.
在蓝光下荧光(FLU)是一种负调控因子,参与 5-氨基乙酰丙酸(ALA)合成的暗抑制,与谷氨酸-tRNA 还原酶(GluTR)相互作用,GluTR 是四吡咯生物合成的限速酶。在这项研究中,我们研究了 FLU 在光照下过表达(FLUOE)拟南芥系和在 WT 和 flu 幼苗中波动光强下的调节功能。FLUOE 系在光照下抑制 ALA 合成,导致叶绿素含量降低,但在低光和高光下比在中光生长下更强烈。这种情况表明,FLU 对叶绿素生物合成的影响取决于光强。FLU 过表达系中含有大量主要与膜相关的 GluTR。这些发现与 FLU 依赖性 GluTR 定位到质体膜以及伴随的抑制相关,使得只有可溶性 GluTR 部分是活跃的。膜相关 GluTR 的过度积累表明 FLU 结合增强了 GluTR 的稳定性。有趣的是,在波动光下,flu 突变体的叶片与 WT 相比含有较少的叶绿素,并发生坏死。我们提出,FLU 基本上是 ALA 合成精细调控所必需的。FLU 不仅介导 ALA 合成的暗抑制,而且还控制可变光强下平衡的 ALA 合成,以确保足够的叶绿素供应。