木质部
蒸腾作用
导水率
水运
拟南芥
蒸腾流
血管组织
用水效率
生物量(生态学)
突变体
耐旱性
农学
生物
生物物理学
材料科学
植物
细胞壁
细胞生物学
韧皮部
拟南芥
化学
次生细胞壁
用水
转录因子
环境科学
气孔导度
次生生长
维管束
产量(工程)
作者
Tengfei Zhu,Yuxuan Wang,Yijie Wang,Wang Chen,Ying Liu,Jiafan He,Bochen Zhao,Shengxue Liu,Yongyan Lian,Liuji Wu,Jinkui Cheng,Zhirui Yang,Feng Qin
标识
DOI:10.1038/s41467-026-69436-7
摘要
Efficient water uptake and transport through xylem vessels are essential for plant growth and development. The patterned secondary cell wall (SCW) structure of xylem vessels provides robust mechanical support to withstand the strong negative pressure generated by transpiration and facilitates long-distance water transport. However, the key factors governing SCW patterning in xylem vessels and their potential for enhancing water use efficiency (WUE) remain undetermined. Here, we report the identification of a recessive maize (Zea mays) mutant drought-sensitive 1 (ds1), which is highly susceptible to water deficit. ds1 defects in SCW patterning and xylem vessel differentiation, and exhibits significantly reduced hydraulic conductivity. DS1 is the ortholog of Arabidopsis Exo70A1 and is regulated by the NAC transcription factor NECROTIC UPPER TIPS1 (NUT1) in vascular tissues. Overexpressing Exo70A1 enhanced hydraulic conductivity and consequently boosted biomass and grain yield under both well-watered and drought conditions. Thus, the NUT1–Exo70A1 module represents a promising genetic target for improving WUE in crops. Researchers found that enhancing the NUT1-Exo70A1 module that governs xylem development can improve maize hydraulic conductivity and water-use efficiency, thereby increasing grain yield. This offers a promising strategy for ensuring food security.
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