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2
Ubiquitous miR159 repression of MYB33/65 in Arabidopsis rosettes is robust and is not perturbed by a wide range of stresses.拟南芥莲座叶中miR159对MYB33/65的普遍抑制作用很强,且不受多种胁迫的干扰。
BMC Plant Biol. 2016 Aug 19;16(1):179. doi: 10.1186/s12870-016-0867-4.
3
Epigenetic Regulation of Vegetative Phase Change in Arabidopsis.拟南芥营养生长期转变的表观遗传调控
Plant Cell. 2016 Jan;28(1):28-41. doi: 10.1105/tpc.15.00854. Epub 2015 Dec 24.
4
Deciphering the Role of POLYCOMB REPRESSIVE COMPLEX1 Variants in Regulating the Acquisition of Flowering Competence in Arabidopsis.解析多梳抑制复合体1变体在调控拟南芥开花能力获得过程中的作用
Plant Physiol. 2015 Aug;168(4):1286-97. doi: 10.1104/pp.15.00073. Epub 2015 Apr 20.
5
Expression of the floral repressor miRNA156 is positively regulated by the AGAMOUS-like proteins AGL15 and AGL18.花抑制因子miRNA156的表达受AGAMOUS样蛋白AGL15和AGL18的正向调控。
Mol Cells. 2015 Mar;38(3):259-66. doi: 10.14348/molcells.2015.2311. Epub 2015 Jan 30.
6
Evolutionary history of plant microRNAs.植物 microRNAs 的进化历史。
Trends Plant Sci. 2014 Mar;19(3):175-82. doi: 10.1016/j.tplants.2013.11.008. Epub 2014 Jan 7.
7
The effects of carbon dioxide and temperature on microRNA expression in Arabidopsis development.二氧化碳和温度对拟南芥发育过程中 microRNA 表达的影响。
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8
Sugar is an endogenous cue for juvenile-to-adult phase transition in plants.糖是植物从幼年阶段向成年阶段转变的一种内源性信号。
Elife. 2013 Mar 26;2:e00269. doi: 10.7554/eLife.00269.
9
Sugar promotes vegetative phase change in Arabidopsis thaliana by repressing the expression of MIR156A and MIR156C.糖通过抑制MIR156A和MIR156C的表达促进拟南芥的营养阶段转变。
Elife. 2013 Mar 26;2:e00260. doi: 10.7554/eLife.00260.
10
Identification of direct targets of FUSCA3, a key regulator of Arabidopsis seed development.鉴定 FUSCA3 的直接靶标,FUSCA3 是拟南芥种子发育的关键调节因子。
Plant Physiol. 2013 Mar;161(3):1251-64. doi: 10.1104/pp.112.212282. Epub 2013 Jan 11.

miR159对miR156的抑制作用调控拟南芥从幼年到成年转变的时间。

Repression of miR156 by miR159 Regulates the Timing of the Juvenile-to-Adult Transition in Arabidopsis.

作者信息

Guo Changkui, Xu Yunmin, Shi Min, Lai Yongmin, Wu Xi, Wang Huasen, Zhu Zhujun, Poethig R Scott, Wu Gang

机构信息

State Key Laboratory of Subtropical Silviculture, Laboratory of Plant Molecular and Developmental Biology, Zhejiang Agriculture and Forestry University, Hangzhou 311300, China.

Department of Biology, University of Pennsylvania, Philadelphia, Pennsylvania 19104

出版信息

Plant Cell. 2017 Jun;29(6):1293-1304. doi: 10.1105/tpc.16.00975. Epub 2017 May 23.

DOI:10.1105/tpc.16.00975
PMID:28536099
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5502449/
Abstract

Temporally regulated microRNAs have been identified as master regulators of developmental timing in both animals and plants. In plants, vegetative development is regulated by a temporal decrease in miR156 level, but how this decreased expression is initiated and then maintained during shoot development remains elusive. Here, we show that miR159 is required for the correct timing of vegetative development in Loss of miR159 increases miR156 level throughout shoot development and delays vegetative development, whereas overexpression of miR159 slightly accelerated vegetative development. The repression of miR156 by miR159 is predominantly mediated by MYB33, an R2R3 MYB domain transcription factor targeted by miR159. Loss of led to subtle precocious vegetative phase change phenotypes in spite of the significant downregulation of miR156. MYB33 simultaneously promotes the transcription of and , as well as their target, , by directly binding to the promoters of these three genes. Rather than acting as major players in vegetative phase change in Arabidopsis, our results suggest that miR159 and MYB33 function as modifiers of vegetative phase change; i.e., miR159 facilitates vegetative phase change by repressing MYB33 expression, thus preventing MYB33 from hyperactivating miR156 expression throughout shoot development to ensure correct timing of the juvenile-to-adult transition in Arabidopsis.

摘要

时间调控的微小RNA已被确定为动物和植物发育时间的主要调节因子。在植物中,营养发育受miR156水平随时间的降低调控,但这种表达降低在茎尖发育过程中是如何起始并维持的仍不清楚。在这里,我们表明miR159是拟南芥营养发育正确时间所必需的。miR159缺失会在整个茎尖发育过程中增加miR156水平并延迟营养发育,而miR159过表达则会轻微加速营养发育。miR159对miR156的抑制主要由MYB33介导,MYB33是一个受miR159靶向的R2R3 MYB结构域转录因子。尽管miR156显著下调,但MYB33缺失仍导致了轻微的早熟营养相变表型。MYB33通过直接结合这三个基因的启动子,同时促进SPL3、SPL4和它们的靶基因SPL5的转录。我们的结果表明,miR159和MYB33并非拟南芥营养相变的主要参与者,而是作为营养相变的调节因子发挥作用;即miR159通过抑制MYB33表达促进营养相变,从而防止MYB33在整个茎尖发育过程中过度激活miR156表达,以确保拟南芥从幼年期到成年期转变的正确时间。