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NIN-like protein 8 is a master regulator of nitrate-promoted seed germination in Arabidopsis.NIN 样蛋白 8 是拟南芥硝酸盐促进种子萌发的主要调控因子。
Nat Commun. 2016 Oct 12;7:13179. doi: 10.1038/ncomms13179.
2
Multiple mechanisms of nitrate sensing by Arabidopsis nitrate transceptor NRT1.1.拟南芥硝酸盐转运蛋白 NRT1.1 对硝酸盐的多重感应机制。
Nat Plants. 2015 Mar 2;1:15015. doi: 10.1038/nplants.2015.15.
3
Cistrome and Epicistrome Features Shape the Regulatory DNA Landscape.顺式作用元件组和表观顺式作用元件特征塑造调控DNA景观。
Cell. 2016 May 19;165(5):1280-1292. doi: 10.1016/j.cell.2016.04.038.
4
Peptidoglycan Perception in Plants.植物中的肽聚糖感知
PLoS Pathog. 2015 Dec 17;11(12):e1005275. doi: 10.1371/journal.ppat.1005275. eCollection 2015 Dec.
5
The NIN Transcription Factor Coordinates Diverse Nodulation Programs in Different Tissues of the Medicago truncatula Root.NIN转录因子协调蒺藜苜蓿根不同组织中的多种结瘤程序。
Plant Cell. 2015 Dec;27(12):3410-24. doi: 10.1105/tpc.15.00461. Epub 2015 Dec 15.
6
Transcriptional Dynamics Driving MAMP-Triggered Immunity and Pathogen Effector-Mediated Immunosuppression in Arabidopsis Leaves Following Infection with Pseudomonas syringae pv tomato DC3000.丁香假单胞菌番茄致病变种DC3000感染后,拟南芥叶片中驱动MAMP触发免疫和病原体效应子介导免疫抑制的转录动力学
Plant Cell. 2015 Nov;27(11):3038-64. doi: 10.1105/tpc.15.00471. Epub 2015 Nov 13.
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Functional Analysis of the Arabidopsis TETRASPANIN Gene Family in Plant Growth and Development.拟南芥四跨膜蛋白基因家族在植物生长发育中的功能分析
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AtNIGT1/HRS1 integrates nitrate and phosphate signals at the Arabidopsis root tip.拟南芥NIGT1/HRS1蛋白在根尖整合硝酸盐和磷酸盐信号。
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A combination of gene expression ranking and co-expression network analysis increases discovery rate in large-scale mutant screens for novel Arabidopsis thaliana abiotic stress genes.基因表达排序与共表达网络分析的结合提高了新型拟南芥非生物胁迫基因大规模突变体筛选的发现率。
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在空间和时间上的基因表达变化协调环境介导的根系结构形成。

Changes in Gene Expression in Space and Time Orchestrate Environmentally Mediated Shaping of Root Architecture.

机构信息

School of Life Sciences, University of Warwick, Coventry CV4 7AL, United Kingdom.

Warwick Systems Biology Centre, University of Warwick, Senate House, Coventry CV4 7AL, United Kingdom.

出版信息

Plant Cell. 2017 Oct;29(10):2393-2412. doi: 10.1105/tpc.16.00961. Epub 2017 Sep 11.

DOI:10.1105/tpc.16.00961
PMID:28893852
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5774560/
Abstract

Shaping of root architecture is a quintessential developmental response that involves the concerted action of many different cell types, is highly dynamic, and underpins root plasticity. To determine to what extent the environmental regulation of lateral root development is a product of cell-type preferential activities, we tracked transcriptomic responses to two different treatments that both change root development in at an unprecedented level of temporal detail. We found that individual transcripts are expressed with a very high degree of temporal and spatial specificity, yet biological processes are commonly regulated, in a mechanism we term response nonredundancy. Using causative gene network inference to compare the genes regulated in different cell types and during responses to nitrogen and a biotic interaction, we found that common transcriptional modules often regulate the same gene families but control different individual members of these families, specific to response and cell type. This reinforces that the activity of a gene cannot be defined simply as molecular function; rather, it is a consequence of spatial location, expression timing, and environmental responsiveness.

摘要

根系结构的形成是一种典型的发育反应,涉及许多不同细胞类型的协同作用,具有高度的动态性,并为根系可塑性提供基础。为了确定环境对侧根发育的调节在多大程度上是细胞类型优先活动的产物,我们跟踪了转录组对两种不同处理的反应,这两种处理以前所未有的时间细节水平改变了根系的发育。我们发现,个别转录本的表达具有非常高的时空特异性,但生物过程通常受到调控,我们称之为反应非冗余性。使用因果基因网络推断来比较在不同细胞类型中以及在氮和生物相互作用响应中被调控的基因,我们发现,常见的转录模块通常调控相同的基因家族,但控制这些家族的不同个体成员,具体取决于响应和细胞类型。这再次强调,基因的活性不能简单地定义为分子功能;相反,它是空间位置、表达时间和环境响应性的结果。