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玉米单核转录组全面描述了调控草类气孔运动和发育的信号网络。

The maize single-nucleus transcriptome comprehensively describes signaling networks governing movement and development of grass stomata.

机构信息

School of Life Sciences, State Key Laboratory of Crop Stress Adaptation and Improvement, State Key Laboratory of Cotton Biology, Henan University, Kaifeng 475004, China.

School of Medicine, Key Laboratory of Receptors-Mediated Gene Regulation and Drug Discovery, Henan University, Kaifeng 475004, China.

出版信息

Plant Cell. 2022 Apr 26;34(5):1890-1911. doi: 10.1093/plcell/koac047.

Abstract

The unique morphology of grass stomata enables rapid responses to environmental changes. Deciphering the basis for these responses is critical for improving food security. We have developed a planta platform of single-nucleus RNA-sequencing by combined fluorescence-activated nuclei flow sorting, and used it to identify cell types in mature and developing stomata from 33,098 nuclei of the maize epidermis-enriched tissues. Guard cells (GCs) and subsidiary cells (SCs) displayed differential expression of genes, besides those encoding transporters, involved in the abscisic acid, CO2, Ca2+, starch metabolism, and blue light signaling pathways, implicating coordinated signal integration in speedy stomatal responses, and of genes affecting cell wall plasticity, implying a more sophisticated relationship between GCs and SCs in stomatal development and dumbbell-shaped guard cell formation. The trajectory of stomatal development identified in young tissues, and by comparison to the bulk RNA-seq data of the MUTE defective mutant in stomatal development, confirmed known features, and shed light on key participants in stomatal development. Our study provides a valuable, comprehensive, and fundamental foundation for further insights into grass stomatal function.

摘要

草类气孔的独特形态使其能够对环境变化做出快速响应。解析这些响应的基础对于提高粮食安全至关重要。我们开发了一种通过荧光激活细胞核流分选联合的植物单细胞 RNA 测序平台,并利用它从富含玉米表皮组织的 33098 个核中鉴定成熟和发育中的气孔的细胞类型。保卫细胞 (GCs) 和附属细胞 (SCs) 显示出除了参与脱落酸、CO2、Ca2+、淀粉代谢和蓝光信号通路的转运蛋白编码基因之外的差异表达基因,表明在快速气孔响应中协调信号整合,以及影响细胞壁可塑性的基因,暗示 GC 和 SC 在气孔发育和哑铃形保卫细胞形成中的关系更加复杂。在年轻组织中鉴定到的气孔发育轨迹,并与发育缺陷的 MUTE 突变体的大量 RNA-seq 数据进行比较,证实了已知特征,并揭示了气孔发育中的关键参与者。我们的研究为进一步深入了解草类气孔功能提供了有价值的、全面的和基础的基础。

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