Single-cell transcriptome atlases of soybean root and mature nodule reveal new regulatory programs that control the nodulation process.

IF 9.4 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Plant Communications Pub Date : 2024-08-12 Epub Date: 2024-06-06 DOI:10.1016/j.xplc.2024.100984
Sergio Alan Cervantes-Pérez, Prince Zogli, Sahand Amini, Sandra Thibivilliers, Sutton Tennant, Md Sabbir Hossain, Hengping Xu, Ian Meyer, Akash Nooka, Pengchong Ma, Qiuming Yao, Michael J Naldrett, Andrew Farmer, Olivier Martin, Samik Bhattacharya, Jasper Kläver, Marc Libault
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引用次数: 0

Abstract

The soybean root system is complex. In addition to being composed of various cell types, the soybean root system includes the primary root, the lateral roots, and the nodule, an organ in which mutualistic symbiosis with N-fixing rhizobia occurs. A mature soybean root nodule is characterized by a central infection zone where atmospheric nitrogen is fixed and assimilated by the symbiont, resulting from the close cooperation between the plant cell and the bacteria. To date, the transcriptome of individual cells isolated from developing soybean nodules has been established, but the transcriptomic signatures of cells from the mature soybean nodule have not yet been characterized. Using single-nucleus RNA-seq and Molecular Cartography technologies, we precisely characterized the transcriptomic signature of soybean root and mature nodule cell types and revealed the co-existence of different sub-populations of B. diazoefficiens-infected cells in the mature soybean nodule, including those actively involved in nitrogen fixation and those engaged in senescence. Mining of the single-cell-resolution nodule transcriptome atlas and the associated gene co-expression network confirmed the role of known nodulation-related genes and identified new genes that control the nodulation process. For instance, we functionally characterized the role of GmFWL3, a plasma membrane microdomain-associated protein that controls rhizobial infection. Our study reveals the unique cellular complexity of the mature soybean nodule and helps redefine the concept of cell types when considering the infection zone of the soybean nodule.

大豆根和成熟结节的单细胞转录组图谱揭示了控制结瘤过程的新调控程序。
大豆根系非常复杂。除了由各种细胞类型组成外,大豆根系还包括主根、侧根和根瘤,根瘤是与固氮根瘤菌进行互利共生的器官。成熟的大豆根瘤的特征是有一个中心感染区,大气中的氮被共生体固定和同化,这是植物细胞与细菌密切合作的结果。迄今为止,从发育中的大豆根瘤中分离出来的单个细胞的转录组已经确定,但成熟大豆根瘤细胞的转录组特征尚未确定。应用单核 RNA-seq 和 Molecular CartographyTM 技术,我们精确描述了大豆根细胞和成熟结节细胞类型的转录组特征,并揭示了大豆成熟结节中不同亚群的二唑菌感染细胞共存的现象,包括那些积极参与固氮作用的细胞和那些参与衰老的细胞。对单细胞分辨率的结节转录组图谱和相关基因共表达网络的挖掘证实了已知结节相关基因的作用,并发现了控制结节过程的新基因。例如,我们从功能上确定了控制根瘤菌感染的质膜微域相关蛋白 GmFWL3 的作用。我们的研究揭示了成熟大豆结节独特的细胞复杂性,有助于在考虑大豆结节感染区时重新定义细胞类型的概念。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Plant Communications
Plant Communications Agricultural and Biological Sciences-Plant Science
CiteScore
15.70
自引率
5.70%
发文量
105
审稿时长
6 weeks
期刊介绍: Plant Communications is an open access publishing platform that supports the global plant science community. It publishes original research, review articles, technical advances, and research resources in various areas of plant sciences. The scope of topics includes evolution, ecology, physiology, biochemistry, development, reproduction, metabolism, molecular and cellular biology, genetics, genomics, environmental interactions, biotechnology, breeding of higher and lower plants, and their interactions with other organisms. The goal of Plant Communications is to provide a high-quality platform for the dissemination of plant science research.
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