生物
突变体
调节器
转录因子
微量营养素
细胞生物学
铜
病毒
阿尔戈瑙特
基因
RNA干扰
遗传学
化学
核糖核酸
有机化学
作者
Shengze Yao,Jinrui Kang,Ge Guo,Zhirui Yang,Yu Huang,Ying Lan,Tong Zhou,Liying Wang,Chunhong Wei,Zhihong Xu,Yi Li
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2022-07-01
卷期号:8 (26)
被引量:42
标识
DOI:10.1126/sciadv.abm0660
摘要
Copper is a critical regulator of plant growth and development. However, the mechanisms by which copper responds to virus invasion are unclear. We previously showed that SPL9-mediated transcriptional activation of miR528 adds a previously unidentified regulatory layer to the established ARGONAUTE (AGO18)–miR528– L-ascorbate oxidase ( AO ) antiviral defense. Here, we report that rice promotes copper accumulation in shoots by inducing copper transporter genes, including HMA5 and COPT , to counteract viral infection. Copper suppresses the transcriptional activation of miR528 by inhibiting the protein level of SPL9, thus alleviating miR528-mediated cleavage of AO transcripts to strengthen the antiviral response. Loss-of-function mutations in HMA5 , COPT1 , and COPT5 caused a significant reduction in copper accumulation and plant viral resistance because of the increased SPL9-mediated miR528 transcription. Gain in viral susceptibility was mitigated when SPL9 was mutated in the hma5 mutant background. Our study elucidates the molecular mechanisms and regulatory networks of copper homeostasis and the SPL9-miR528-AO antiviral pathway.
科研通智能强力驱动
Strongly Powered by AbleSci AI