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本文引用的文献

1
Plastid-to-nucleus retrograde signals are essential for the expression of nuclear starch biosynthesis genes during amyloplast differentiation in tobacco BY-2 cultured cells.质体到细胞核的逆行信号对于烟草 BY-2 培养细胞中的淀粉体分化过程中核淀粉生物合成基因的表达是必不可少的。
Plant Physiol. 2011 Sep;157(1):518-30. doi: 10.1104/pp.111.178897. Epub 2011 Jul 19.
2
Heme synthesis by plastid ferrochelatase I regulates nuclear gene expression in plants.质体亚铁螯合酶 I 催化的血红素合成调节植物中的核基因表达。
Curr Biol. 2011 May 24;21(10):897-903. doi: 10.1016/j.cub.2011.04.004. Epub 2011 May 12.
3
The transcription machineries of plant mitochondria and chloroplasts: Composition, function, and regulation.植物线粒体和叶绿体的转录机制:组成、功能和调控。
J Plant Physiol. 2011 Aug 15;168(12):1345-60. doi: 10.1016/j.jplph.2011.01.005. Epub 2011 Feb 12.
4
The Arabidopsis plastid-signalling mutant gun1 (genomes uncoupled1) shows altered sensitivity to sucrose and abscisic acid and alterations in early seedling development.拟南芥质体信号突变体 gun1(基因组解偶联 1)表现出对蔗糖和脱落酸的敏感性改变,并在早期幼苗发育中发生改变。
J Exp Bot. 2010 Aug;61(13):3773-86. doi: 10.1093/jxb/erq186. Epub 2010 Jul 6.
5
Plastidial retrograde signalling--a true "plastid factor" or just metabolite signatures?质体逆行信号转导——真正的“质体因子”还是仅仅是代谢物特征?
Trends Plant Sci. 2010 Aug;15(8):427-35. doi: 10.1016/j.tplants.2010.05.009. Epub 2010 Jun 16.
6
Bilateral communication between plastid and the nucleus: plastid protein import and plastid-to-nucleus retrograde signaling.质体与细胞核之间的双向通讯:质体蛋白输入及质体到细胞核的逆向信号传导
Biosci Biotechnol Biochem. 2010;74(3):471-6. doi: 10.1271/bbb.90842. Epub 2010 Mar 7.
7
Coordination of plastid protein import and nuclear gene expression by plastid-to-nucleus retrograde signaling.质体到核逆行信号对质体蛋白导入和核基因表达的协调作用。
Plant Physiol. 2009 Nov;151(3):1339-53. doi: 10.1104/pp.109.145987. Epub 2009 Sep 2.
8
Chloroplast signaling and LESION SIMULATING DISEASE1 regulate crosstalk between light acclimation and immunity in Arabidopsis.叶绿体信号传导与类病变坏死病1调控拟南芥中光适应与免疫之间的相互作用。
Plant Cell. 2008 Sep;20(9):2339-56. doi: 10.1105/tpc.108.059618. Epub 2008 Sep 12.
9
Plastid signals remodel light signaling networks and are essential for efficient chloroplast biogenesis in Arabidopsis.质体信号重塑光信号网络,对拟南芥中叶绿体的高效生物发生至关重要。
Plant Cell. 2007 Dec;19(12):3944-60. doi: 10.1105/tpc.107.054312. Epub 2007 Dec 7.
10
Signals from chloroplasts converge to regulate nuclear gene expression.来自叶绿体的信号汇聚在一起以调节核基因表达。
Science. 2007 May 4;316(5825):715-9. Epub 2007 Mar 29.

逆行信号源于质体之间的相互交流。

Retrograde signals arise from reciprocal crosstalk within plastids.

机构信息

Graduate School of Horticulture, Chiba University, Chiba, Japan.

出版信息

Plant Signal Behav. 2012 Jan;7(1):142-4. doi: 10.4161/psb.7.1.18451.

DOI:10.4161/psb.7.1.18451
PMID:22301982
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3357356/
Abstract

In addition to the cell nucleus, plant cells also possess genomic DNA and gene expression machineries within mitochondria and plastids. In higher plants, retrograde transcriptional regulation of several nuclear genes encoding plastid-located proteins has been observed in response to changes in a wide variety of physiological properties in plastids, including organelle gene expression (OGE) and tetrapyrrole metabolism. This regulation is postulated to be accomplished by plastid-to-nucleus signaling, (1,2) although the overall signal transduction pathway(s) are not well characterized. By applying a specific differentiation system in tobacco Bright Yellow-2 (BY-2) cultured cells, (3,4) we recently reported that the regulatory system of nuclear gene expressions modulated by a plastid signal was also observed during differentiation of plastids into amyloplasts. (5) While retrograde signaling from plastids was previously speculated to consist of several independent pathways, we found inhibition of OGE and perturbation in the cellular content of one tetrapyrrole intermediate, heme, seemed to interact to regulate amyloplast differentiation. Our results thus highlight the possibility that several sources of retrograde signaling in plastids could be integrated in an intraorganellar manner.

摘要

除了细胞核,植物细胞还在线粒体和质体中拥有基因组 DNA 和基因表达机制。在高等植物中,已经观察到几种核基因的逆行转录调控,这些核基因编码质体定位蛋白,以响应质体中多种生理特性的变化,包括细胞器基因表达(OGE)和四吡咯代谢。这种调控被假设是通过质体到核的信号转导来完成的,(1,2)尽管总体信号转导途径尚未很好地描述。通过应用烟草 Bright Yellow-2(BY-2)培养细胞的特定分化系统,(3,4)我们最近报道,在质体分化为淀粉体的过程中,也观察到了由质体信号调节的核基因表达的调控系统。(5)虽然先前推测质体的逆行信号由几个独立的途径组成,但我们发现 OGE 的抑制和一种四吡咯中间产物血红素的细胞含量的扰动似乎相互作用以调节淀粉体的分化。因此,我们的结果突出了质体中几种逆行信号源可能以细胞器内的方式整合的可能性。