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GUN4-原卟啉IX是一种单线态氧发生器,对质体逆向信号传导有影响。

GUN4-Protoporphyrin IX Is a Singlet Oxygen Generator with Consequences for Plastid Retrograde Signaling.

作者信息

Tarahi Tabrizi Shabnam, Sawicki Artur, Zhou Shuaixiang, Luo Meizhong, Willows Robert D

机构信息

From the Department of Chemistry and Biomolecular Sciences, Macquarie University, Sydney, New South Wales 2109, Australia.

the Department of Biophysics, Jagiellonian University, Gronostajowa 7, 30-387 Kraków, Poland, and.

出版信息

J Biol Chem. 2016 Apr 22;291(17):8978-84. doi: 10.1074/jbc.C116.719989. Epub 2016 Mar 11.

DOI:10.1074/jbc.C116.719989
PMID:26969164
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4861466/
Abstract

The genomes uncoupled 4 (GUN4) protein is a nuclear-encoded, chloroplast-localized, porphyrin-binding protein implicated in retrograde signaling between the chloroplast and nucleus, although its exact role in this process is still unclear. Functionally, it enhances Mg-chelatase activity in the chlorophyll biosynthesis pathway. Because GUN4 is present only in organisms that carry out oxygenic photosynthesis and because it binds protoporphyrin IX (PPIX) and Mg-PPIX, it has been suggested that it prevents production of light- and PPIX- or Mg-PPIX-dependent reactive oxygen species. A chld-1/GUN4 mutant with elevated PPIX has a light-dependent up-regulation of GUN4, implicating this protein in light-dependent sensing of PPIX, with the suggestion that GUN4 reduces PPIX-generated singlet oxygen, O2(a(1)Δg), and subsequent oxidative damage (Brzezowski, P., Schlicke, H., Richter, A., Dent, R. M., Niyogi, K. K., and Grimm, B. (2014) Plant J. 79, 285-298). In direct contrast, our results show that purified GUN4 and oxidatively damaged ChlH increase the rate of PPIX-generated singlet oxygen production in the light, by a factor of 5 and 10, respectively, when compared with PPIX alone. Additionally, the functional GUN4-PPIX-ChlH complex and ChlH-PPIX complexes generate O2(a(1)Δg) at a reduced rate when compared with GUN4-PPIX. As O2(a(1)Δg) is a potential plastid-to-nucleus signal, possibly through second messengers, light-dependent O2(a(1)Δg) generation by GUN4-PPIX is proposed to be part of a signal transduction pathway from the chloroplast to the nucleus. GUN4 thus senses the availability and flux of PPIX through the chlorophyll biosynthetic pathway and also modulates Mg-chelatase activity. The light-dependent O2(a(1)Δg) generation from GUN4-PPIX is thus proposed as the first step in retrograde signaling from the chloroplast to the nucleus.

摘要

基因组解偶联蛋白4(GUN4)是一种核编码、定位于叶绿体的卟啉结合蛋白,参与叶绿体与细胞核之间的逆向信号传导,尽管其在这一过程中的具体作用仍不清楚。在功能上,它增强了叶绿素生物合成途径中的镁螯合酶活性。由于GUN4仅存在于进行有氧光合作用的生物体中,并且它能结合原卟啉IX(PPIX)和镁原卟啉IX(Mg-PPIX),因此有人提出它可防止产生依赖光、PPIX或Mg-PPIX的活性氧。一个PPIX水平升高的chld-1/GUN4突变体具有光依赖的GUN4上调,这表明该蛋白参与了对PPIX的光依赖感知,提示GUN4可减少PPIX产生的单线态氧O2(a(1)Δg)以及随后的氧化损伤(Brzezowski, P., Schlicke, H., Richter, A., Dent, R. M., Niyogi, K. K., and Grimm, B. (2014) Plant J. 79, 285 - 298)。与之形成直接对比的是,我们的结果表明,与单独的PPIX相比,纯化的GUN4和氧化损伤的ChlH分别使光下PPIX产生单线态氧的速率提高了5倍和10倍。此外,与GUN4-PPIX相比,功能性的GUN4-PPIX-ChlH复合物和ChlH-PPIX复合物产生O2(a(1)Δg)的速率降低。由于O2(a(1)Δg)可能是一种潜在的从质体到细胞核信号,可能通过第二信使传递,因此有人提出GUN4-PPIX在光下产生O2(a(1)Δg)是从叶绿体到细胞核信号转导途径的一部分。因此,GUN4通过叶绿素生物合成途径感知PPIX的可用性和通量,并且还调节镁螯合酶活性。因此,GUN4-PPIX在光下产生O2(a(1)Δg)被认为是从叶绿体到细胞核逆向信号传导的第一步。

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本文引用的文献

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Inducing the oxidative stress response in Escherichia coli improves the quality of a recombinant protein: magnesium chelatase ChlH.在大肠杆菌中诱导氧化应激反应可提高重组蛋白——镁螯合酶ChlH的质量。
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The GUN4 protein plays a regulatory role in tetrapyrrole biosynthesis and chloroplast-to-nucleus signalling in Chlamydomonas reinhardtii.GUN4蛋白在莱茵衣藻的四吡咯生物合成及叶绿体到细胞核的信号传导中发挥调控作用。
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