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Analysis of a Plant Transcriptional Regulatory Network Using Transient Expression Systems.利用瞬时表达系统分析植物转录调控网络
Methods Mol Biol. 2017;1629:83-103. doi: 10.1007/978-1-4939-7125-1_7.
2
Cross-Family Transcription Factor Interactions: An Additional Layer of Gene Regulation.跨家族转录因子相互作用:基因调控的附加层次。
Trends Plant Sci. 2017 Jan;22(1):66-80. doi: 10.1016/j.tplants.2016.10.007. Epub 2016 Nov 1.
3
DNA Shape Features Improve Transcription Factor Binding Site Predictions In Vivo.DNA 形状特征可改善体内转录因子结合位点预测。
Cell Syst. 2016 Sep 28;3(3):278-286.e4. doi: 10.1016/j.cels.2016.07.001. Epub 2016 Aug 18.
4
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花同源异型蛋白复合物 DNA 结合特异性的差异预测器官特异性靶基因。

Differences in DNA Binding Specificity of Floral Homeotic Protein Complexes Predict Organ-Specific Target Genes.

机构信息

Laboratory of Molecular Biology, Wageningen University, Wageningen 6708PB, The Netherlands.

Institute for Biochemistry and Biology, Potsdam University, Potsdam 14476, Germany.

出版信息

Plant Cell. 2017 Aug;29(8):1822-1835. doi: 10.1105/tpc.17.00145. Epub 2017 Jul 21.

DOI:10.1105/tpc.17.00145
PMID:28733422
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5590503/
Abstract

Floral organ identities in plants are specified by the combinatorial action of homeotic master regulatory transcription factors. However, how these factors achieve their regulatory specificities is still largely unclear. Genome-wide in vivo DNA binding data show that homeotic MADS domain proteins recognize partly distinct genomic regions, suggesting that DNA binding specificity contributes to functional differences of homeotic protein complexes. We used in vitro systematic evolution of ligands by exponential enrichment followed by high-throughput DNA sequencing (SELEX-seq) on several floral MADS domain protein homo- and heterodimers to measure their DNA binding specificities. We show that specification of reproductive organs is associated with distinct binding preferences of a complex formed by SEPALLATA3 and AGAMOUS. Binding specificity is further modulated by different binding site spacing preferences. Combination of SELEX-seq and genome-wide DNA binding data allows differentiation between targets in specification of reproductive versus perianth organs in the flower. We validate the importance of DNA binding specificity for organ-specific gene regulation by modulating promoter activity through targeted mutagenesis. Our study shows that intrafamily protein interactions affect DNA binding specificity of floral MADS domain proteins. Differential DNA binding of MADS domain protein complexes plays a role in the specificity of target gene regulation.

摘要

植物的花器官身份由同源异型主调控转录因子的组合作用决定。然而,这些因子如何实现其调控特异性在很大程度上仍不清楚。全基因组体内 DNA 结合数据表明,同源异型 MADS 结构域蛋白识别部分不同的基因组区域,这表明 DNA 结合特异性有助于同源异型蛋白复合物的功能差异。我们使用体外指数富集的配体系统进化,然后进行高通量 DNA 测序(SELEX-seq),对几种花的 MADS 结构域蛋白同二聚体和异二聚体进行了研究,以测量它们的 DNA 结合特异性。我们表明,生殖器官的特化与 SEPALLATA3 和 AGAMOUS 形成的复合物的不同结合偏好相关。结合特异性进一步通过不同的结合位点间隔偏好进行调节。SELEX-seq 和全基因组 DNA 结合数据的结合允许区分花中生殖器官和周缘器官特化的靶标。我们通过靶向诱变调节启动子活性来验证 DNA 结合特异性对器官特异性基因调控的重要性。我们的研究表明,家族内蛋白质相互作用影响花的 MADS 结构域蛋白的 DNA 结合特异性。MADS 结构域蛋白复合物的差异 DNA 结合在靶基因调控的特异性中起作用。