HSP90.2 promotes CO2 assimilation rate, grain weight and yield in wheat

光合作用 生物 叶绿体 突变体 植物 农学 细胞生物学 生物化学 基因
作者
Yan Yan,Meng-Lu Wang,Yue‐Ting Guo,Ci-Hang Ding,Ke‐Xin Niu,Xiaoming Li,Chang Sun,Zhongdong Dong,Dangqun Cui,Awais Rasheed,Chenyang Hao,Xueyong Zhang,Ganggang Guo,Zhongfu Ni,Qixin Sun,Feng Chen,Jin‐Ying Gou
出处
期刊:Plant Biotechnology Journal [Wiley]
卷期号:21 (6): 1229-1239 被引量:5
标识
DOI:10.1111/pbi.14032
摘要

Wheat fixes CO2 by photosynthesis into kernels to nourish humankind. Improving the photosynthesis rate is a major driving force in assimilating atmospheric CO2 and guaranteeing food supply for human beings. Strategies for achieving the above goal need to be improved. Here, we report the cloning and mechanism of CO2 ASSIMILATION RATE AND KERNEL-ENHANCED 1 (CAKE1) from durum wheat (Triticum turgidum L. var. durum). The cake1 mutant displayed a lower photosynthesis rate with smaller grains. Genetic studies identified CAKE1 as HSP90.2-B, encoding cytosolic molecular chaperone folding nascent preproteins. The disturbance of HSP90.2 decreased leaf photosynthesis rate, kernel weight (KW) and yield. Nevertheless, HSP90.2 over-expression increased KW. HSP90.2 recruited and was essential for the chloroplast localization of nuclear-encoded photosynthesis units, for example PsbO. Actin microfilaments docked on the chloroplast surface interacted with HSP90.2 as a subcellular track towards chloroplasts. A natural variation in the hexaploid wheat HSP90.2-B promoter increased its transcription activity, enhanced photosynthesis rate and improved KW and yield. Our study illustrated an HSP90.2-Actin complex sorting client preproteins towards chloroplasts to promote CO2 assimilation and crop production. The beneficial haplotype of Hsp90.2 is rare in modern varieties and could be an excellent molecular switch promoting photosynthesis rate to increase yield in future elite wheat varieties.
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