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低温通过表皮特异性转录组反应介导玉米根毛发育可塑性。

Cold mediates maize root hair developmental plasticity via epidermis-specific transcriptomic responses.

机构信息

INRES, Institute of Crop Science and Resource Conservation, Crop Functional Genomics, University of Bonn, Bonn 53113, Germany.

INRES, Emmy Noether Group Root Functional Biology, University of Bonn, Bonn 53113, Germany.

出版信息

Plant Physiol. 2024 Nov 4;196(3):2105-2120. doi: 10.1093/plphys/kiae449.

DOI:10.1093/plphys/kiae449
PMID:39190817
Abstract

Cold stress during early development limits maize (Zea mays L.) production in temperate zones. Low temperatures restrict root growth and reprogram gene expression. Here, we provide a systematic transcriptomic landscape of maize primary roots, their tissues, and cell types in response to cold stress. The epidermis exhibited a unique transcriptomic cold response, and genes involved in root hair formation were dynamically regulated in this cell type by cold. Consequently, activation of genes involved in root hair tip growth contributed to root hair recovery under moderate cold conditions. The maize root hair defective mutants roothair defective 5 (rth5) and roothair defective 6 (rth6) displayed enhanced cold tolerance with respect to primary root elongation. Furthermore, DEHYDRATION RESPONSE ELEMENT-BINDING PROTEIN 2.1 (DREB2.1) was the only member of the dreb subfamily of AP2/EREB transcription factor genes upregulated in primary root tissues and cell types but exclusively downregulated in root hairs upon cold stress. Plants overexpressing dreb2.1 significantly suppressed root hair elongation after moderate cold stress. Finally, the expression of rth3 was regulated by dreb2.1 under cold conditions, while rth6 transcription was regulated by DREB2.1 irrespective of the temperature regime. We demonstrated that dreb2.1 negatively regulates root hair plasticity at low temperatures by coordinating the expression of root hair defective genes in maize.

摘要

低温胁迫会限制玉米(Zea mays L.)在温带地区的生长。低温会限制根系生长并重新编程基因表达。在这里,我们提供了一个玉米初生根及其组织和细胞类型对冷胁迫响应的系统转录组图谱。表皮表现出独特的转录组冷响应,并且与根毛形成相关的基因在这个细胞类型中受到冷胁迫的动态调控。因此,根毛尖端生长相关基因的激活有助于在中度低温条件下根毛的恢复。玉米根毛缺陷突变体 roothair defective 5 (rth5) 和 roothair defective 6 (rth6) 在初生根伸长方面表现出增强的耐寒性。此外,DEHYDRATION RESPONSE ELEMENT-BINDING PROTEIN 2.1 (DREB2.1) 是 AP2/EREB 转录因子基因 dreb 亚家族中唯一在初生根组织和细胞类型中上调但在冷胁迫下专门在根毛中下调的成员。过表达 dreb2.1 的植物在中度冷胁迫后显著抑制根毛伸长。最后,rth3 的表达受 dreb2.1 调控,而 rth6 的转录不受温度条件的调控。我们证明,dreb2.1 通过协调玉米中根毛缺陷基因的表达,在低温下负调控根毛可塑性。

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