染色质
生物
转录组
转录因子
细胞生物学
电池类型
基因调控网络
基因表达调控
基因表达
基因
计算生物学
细胞
遗传学
作者
Dan Feng,Zhe Liang,Yifan Wang,Jiaying Yao,Zan Yuan,Guihua Hu,Ruihong Qu,Shang Xie,Dongwei Li,Liwen Yang,Xin’Ai Zhao,Yanfei Ma,Jan U. Lohmann,Xiaofeng Gu
出处
期刊:BMC Biology
[Springer Nature]
日期:2022-12-08
卷期号:20 (1)
被引量:16
标识
DOI:10.1186/s12915-022-01473-2
摘要
Root development and function have central roles in plant adaptation to the environment. The modification of root traits has additionally been a major driver of crop performance since the green revolution; however, the molecular underpinnings and the regulatory programmes defining root development and response to environmental stress remain largely unknown. Single-cell reconstruction of gene regulatory programmes provides an important tool to understand the cellular phenotypic variation in complex tissues and their response to endogenous and environmental stimuli. While single-cell transcriptomes of several plant organs have been elucidated, the underlying chromatin landscapes associated with cell type-specific gene expression remain largely unexplored.To comprehensively delineate chromatin accessibility during root development of an important crop, we applied single-cell ATAC-seq (scATAC-seq) to 46,758 cells from rice root tips under normal and heat stress conditions. Our data revealed cell type-specific accessibility variance across most of the major cell types and allowed us to identify sets of transcription factors which associate with accessible chromatin regions (ACRs). Using root hair differentiation as a model, we demonstrate that chromatin and gene expression dynamics during cell type differentiation correlate in pseudotime analyses. In addition to developmental trajectories, we describe chromatin responses to heat and identify cell type-specific accessibility changes to this key environmental stimulus.We report chromatin landscapes during rice root development at single-cell resolution. Our work provides a framework for the integrative analysis of regulatory dynamics in this important crop organ at single-cell resolution.
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