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首页> 外文期刊>Journal of Experimental Botany >Put your 3D glasses on: plant chromatin is on show
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Put your 3D glasses on: plant chromatin is on show

机译:戴上3D眼镜:展示植物染色质

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摘要

The three-dimensional chromatin conformation is dynamically modulated by histone and DNA modifications, chromatin remodelers, non-coding transcripts, and transcription factors, impacting gene expression and the physiological processes occurring in living organisms.The three-dimensional organization of the eukaryotic nucleus and its chromosomal conformation have emerged as important features in the complex network of mechanisms behind gene activity and genome connectivity dynamics, which can be evidenced in the regionalized chromosomal spatial distribution and the clustering of diverse genomic regions with similar expression patterns. The development of chromatin conformation capture (3C) techniques has permitted the elucidation of commonalities between the eukaryotic phyla, as well as important differences among them. The growing number of studies in the field performed in plants has shed light on the structural and regulatory features of these organisms. For instance, it has been proposed that plant chromatin can be arranged into different conformations such as Rabl, Rosette-like, and Bouquet, and that both short- and long-range chromatin interactions occur in Arabidopsis. In this review, we compile the current knowledge about chromosome architecture characteristics in plants, as well as the molecular events and elements (including long non-coding RNAs, histone and DNA modifications, chromatin remodeling complexes, and transcription factors) shaping the genome three-dimensional conformation. Furthermore, we discuss the developmental outputs of genome topology-mediated gene expression regulation. It is becoming increasingly clear that new tools and techniques with higher resolution need to be developed and implemented in Arabidopsis and other model plants in order to better understand chromosome architecture dynamics, from an integrative perspective with other fields of plant biology such as development, stress biology, and finally agriculture.
机译:三维染色质构象受组蛋白和DNA修饰,染色质重塑剂,非编码转录本和转录因子动态调节,影响基因表达和活生物体中发生的生理过程。真核的三维组织及其染色体构象已成为基因活动和基因组连通性动力学背后复杂机制网络中的重要特征,这可以通过区域性染色体空间分布以及具有相似表达模式的不同基因组区域的聚类来证明。染色质构象捕获(3C)技术的发展已经阐明了真核生物门之间的共性,以及它们之间的重要区别。在植物领域中进行的越来越多的研究揭示了这些生物的结构和调控特征。例如,已经提出可以将植物染色质排列成不同的构型,例如Rabl,玫瑰花样和花束,并且短距离和长距离染色质相互作用都在拟南芥中发生。在这篇综述中,我们汇总了有关植物染色体结构特征以及分子事件和元素(包括长的非编码RNA,组蛋白和DNA修饰,染色质重塑复合物和转录因子)的最新知识,从而形成了基因组三尺寸构象。此外,我们讨论了基因组拓扑介导的基因表达调控的发展输出。越来越清楚的是,需要从拟南芥和其他模型植物中开发和实施分辨率更高的新工具和技术,以便从与植物生物学其他领域(例如发育,胁迫生物学)的整合角度更好地了解染色体构造动力学。 ,最后是农业。

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