弹性(材料科学)
变化(天文学)
自然(考古学)
扎梅斯
环境科学
农学
生物
地理
物理
考古
天体物理学
热力学
作者
Feng Qin,Yongyan Lian,Shiping Yang,Tian Tian,Zhirui Yang,Shengxue Liu,Xiaomeng Fu,Chenyi Liu,Tengfei Zhu,Yijie Wang,Yunting Bai,Chen Wang,Yunlu Shi,Yue Li,Yanjun Zhang,Xingrong Wang,Xiaohong Yang
出处
期刊:Research Square - Research Square
日期:2025-03-28
标识
DOI:10.21203/rs.3.rs-6242836/v1
摘要
Abstract As drought severely threatens the stability of crop yields, it is crucial to develop cultivars with enhanced drought resilience. Here, we demonstrate that natural variation in ZmDapF1 , encoding a putative diaminopimelate epimerase, contributes to maize drought stress resistance without compromising grain yield. ZmDapF1 inhibits the activity of ZmMDH6, a chloroplast NADP-dependent malate dehydrogenase. ZmDapF1 gene knockout mutants exhibited significantly enhanced seedling viability and grain yield under drought stress, while maintaining high yields under normal field conditions. Natural variations in the ZmDapF1 promoter increase its binding affinity to a MYB transcription factor, ZmMYB121, which represses ZmDapF1 expression under drought. Therefore, ZmMYB121 plays a positive role in drought resistance. Knocking out ZmDapF1 resulted in increased ZmMDH6 activity, enhanced photosynthetic rate, and reduced reactive oxygen species accumulation under drought, which may confer the enhanced drought resilience. Thus, genetic engineering targeting ZmDapF1 holds great potential for developing maize varieties with improved drought resilience.
科研通智能强力驱动
Strongly Powered by AbleSci AI