The retrograde signaling protein GUN1 regulates tetrapyrrole biosynthesis

逆行信号 四吡咯 铁螯合酶 原叶绿素 血红素 叶绿体 生物发生 细胞生物学 拟南芥 生物 拟南芥 突变体 核基因 细胞器 信号转导 生物化学 基因 基因组
作者
Takayuki Shimizu,Sylwia Kacprzak,Nobuyoshi Mochizuki,Akira Nagatani,Satoru Watanabe,Tomohiro Shimada,Kan Tanaka,Yuuki Hayashi,Munehito Arai,Dario Leister,Haruko Okamoto,Matthew J. Terry,Tatsuru Masuda
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:116 (49): 24900-24906 被引量:57
标识
DOI:10.1073/pnas.1911251116
摘要

The biogenesis of the photosynthetic apparatus in developing seedlings requires the assembly of proteins encoded on both nuclear and chloroplast genomes. To coordinate this process there needs to be communication between these organelles, but the retrograde signals by which the chloroplast communicates with the nucleus at this time are still essentially unknown. The Arabidopsis thaliana genomes uncoupled ( gun ) mutants, that show elevated nuclear gene expression after chloroplast damage, have formed the basis of our understanding of retrograde signaling. Of the 6 reported gun mutations, 5 are in tetrapyrrole biosynthesis proteins and this has led to the development of a model for chloroplast-to-nucleus retrograde signaling in which ferrochelatase 1 (FC1)-dependent heme synthesis generates a positive signal promoting expression of photosynthesis-related genes. However, the molecular consequences of the strongest of the gun mutants, gun1 , are poorly understood, preventing the development of a unifying hypothesis for chloroplast-to-nucleus signaling. Here, we show that GUN1 directly binds to heme and other porphyrins, reduces flux through the tetrapyrrole biosynthesis pathway to limit heme and protochlorophyllide synthesis, and can increase the chelatase activity of FC1. These results raise the possibility that the signaling role of GUN1 may be manifested through changes in tetrapyrrole metabolism, supporting a role for tetrapyrroles as mediators of a single biogenic chloroplast-to-nucleus retrograde signaling pathway.
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