Transcriptomic and phenotypic analysis of maize with CRISPR/Cas9-mediated targeted mutagenesis of melatonin synthesis genes under drought stress
作者:Penghui Li, Ling Wang, Guanghui Li, Ruiying Li, Yong Li, Zhao Zhang, Songlin Yang, Hejing Tang, Zhandong Liu · 发表于:Plant Physiology and Biochemistry · 年份:2026 · DOI:10.1016/j.plaphy.2026.111189 · 被引用次数:2 · 研究领域:Circadian rhythm and melatonin、Plant Molecular Biology Research、Light effects on plants
Melatonin, a pleiotropic regulatory factor, plays a key role in mediating crop drought resistance. Herein, we conducted an integrated physiological and transcriptomic approach to elucidate the mitigating effect of endogenous melatonin in mitigating drought stress in maize. We generated a comt snat asmt maize mutant via CRISPR-Cas9-mediated simultaneous editing of ZmCOMT , ZmSNAT , and ZmASMT1 -genes encoding rate-limiting enzymes in the endogenous melatonin biosynthesis pathway. Sequencing of the mutant lines revealed key amino acid substitutions (Gly168→Ala in ZmSNAT , Asp175→Glu in ZmCOMT , and Asp150→Glu in ZmASMT1 ) within critical protein domains, resulting from CRISPR-induced small insertions or deletions (indels), which led to subtle alterations in the tertiary conformation of corresponding proteins. These modifications resulted in an 86.70% increase in endogenous melatonin content. Under drought stress, the comt snat asmt maize exhibited enhanced antioxidant enzyme activities, leading to a significant reduction in reactive oxygen species (ROS) accumulation compared to the control. Furthermore, endogenous levels of melatonin, abscisic acid (ABA), cytokinin (CTK), and auxin (IAA) were markedly elevated, whereas gibberellin (GA) content was significantly reduced. Consistently, the activities of SNAT, ASMT, and COMT were also enhanced in the mutant. Transcriptomic profiling further revealed that endogenous melatonin regulates ABA, IAA, CTK, and GA signaling pathways to en...