Increasing the resilience of plant immunity to a warming climate

生物 植物免疫 拟南芥 效应器 免疫系统 免疫 转录因子 基因 细胞生物学 遗传学 生态学 突变体
作者
Jong Hum Kim,Christian Danve M. Castroverde,Shuai Huang,Chao Li,Richard Hilleary,Adam Seroka,Reza Sohrabi,Diana Medina-Yerena,Bethany Huot,Jie Wang,Kinya Nomura,Sharon K. Marr,Mary C. Wildermuth,Tao Chen,John D. MacMicking,Sheng Yang He
出处
期刊:Nature [Springer Nature]
卷期号:607 (7918): 339-344 被引量:99
标识
DOI:10.1038/s41586-022-04902-y
摘要

Abstract Extreme weather conditions associated with climate change affect many aspects of plant and animal life, including the response to infectious diseases. Production of salicylic acid (SA), a central plant defence hormone 1–3 , is particularly vulnerable to suppression by short periods of hot weather above the normal plant growth temperature range via an unknown mechanism 4–7 . Here we show that suppression of SA production in Arabidopsis thaliana at 28 °C is independent of PHYTOCHROME B 8,9 (phyB) and EARLY FLOWERING 3 10 (ELF3), which regulate thermo-responsive plant growth and development. Instead, we found that formation of GUANYLATE BINDING PROTEIN-LIKE 3 (GBPL3) defence-activated biomolecular condensates 11 (GDACs) was reduced at the higher growth temperature. The altered GDAC formation in vivo is linked to impaired recruitment of GBPL3 and SA-associated Mediator subunits to the promoters of CBP60g and SARD1 , which encode master immune transcription factors. Unlike many other SA signalling components, including the SA receptor and biosynthetic genes, optimized CBP60g expression was sufficient to broadly restore SA production, basal immunity and effector-triggered immunity at the elevated growth temperature without significant growth trade-offs. CBP60g family transcription factors are widely conserved in plants 12 . These results have implications for safeguarding the plant immune system as well as understanding the concept of the plant–pathogen–environment disease triangle and the emergence of new disease epidemics in a warming climate.
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