4.7 Article

Transcriptional landscape of rice roots at the single-cell resolution

期刊

MOLECULAR PLANT
卷 14, 期 3, 页码 384-394

出版社

CELL PRESS
DOI: 10.1016/j.molp.2020.12.014

关键词

single-cell RNA-seq; transcriptional landscape; rice; root; plants

资金

  1. National Transgenic Major Program [2019ZX08010-002]
  2. Central Public-interest Scientific Institution Basal Research Fund [Y2020PT06]
  3. DECODE ERC Synergy grant
  4. Chinese Academy of Agricultural Sciences, Centre for Organismal Studies, Heidelberg University

向作者/读者索取更多资源

This study analyzed the transcriptomes of rice root tip cells, identifying major cell types and defining novel cell-type-specific marker genes for two cultivars. The research found divergent cell types associated with phytohormone biosynthesis, signaling, and response in rice. Significant differences in cell-type transcript profiles between Arabidopsis and rice were also detected, emphasizing the importance of analyzing tissues across diverse model species.
There are two main types of root systems in flowering plants, namely taproot systems of dicots and fibrous root systems found in monocots. Despite this fundamental split, our current knowledge of cellular and molecular mechanism driving root development is mainly based on studies of the dicot model Arabidopsis. However, the world major crops are monocots and little is known about the transcriptional programs underlying cell-type specification in this Glade. Here, we report the transcriptomes of more than 20 000 single cells derived from root tips of two agronomically important rice cultivars. Using combined computational and experimental analyses we were able to robustly identify most of the major cell types and define novel cell-type-specific marker genes for both cultivars. Importantly, we found divergent cell types associated with specific regulatory programs, including phytohormone biosynthesis, signaling, and response, which were well conserved between the two rice cultivars. In addition, we detected substantial differences between the cell-type transcript profiles of Arabidopsis and rice. These species-specific features emphasize the importance of analyzing tissues across diverse model species, including rice. Taken together, our study provides insight into the transcriptomic landscape of major cell types of rice root tip at single-cell resolution and opens new avenues to study cell-type specification, function, and evolution in plants.

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