生物
水稻
雄蕊
等位基因
栽培
人口
拟南芥
杂交种子
授粉
园艺
花粉
转录组
农学
基因
突变体
稻属
植物
混合的
分子育种
耐寒性
穗
遗传变异
生物技术
植物育种
粮食安全
拟南芥
作者
Takuma Ishizaki,Yoichi Hashida,Hideyuki Hirabayashi,Kazuhiro Sasaki,Hiroki Tokunaga,Eliza Vie M. Simon‐Ada,Masataka Wakayama,Toshiyuki Takai,Hiroki Saito,Atsushi J. Nagano,Hitoshi Sakakibara,Mikiko Kojima,Yumiko Takebayashi,Sung‐Ryul Kim,Ryo Matsushima,Michael J. Thomson,Kazuhiko Sugimoto,Ken‐Ichiro Hibara,Tsutomu Ishimaru
摘要
To safeguard global food security against rapid population growth and a warming world, the effective genetic improvement of cereals is imperative. Flower opening time (FOT) critically affects the seed setting rate. In this study, we identified a gene, EARLY-MORNING FLOWERING 3 (EMF3), in which single-nucleotide substitutions strongly modulate FOT in rice in a semi-dominant manner, resulting in wide variation in FOT from earlier to later FOT than the wild-type. EMF3 knock-out mutants showed significantly reduced FOT synchrony and disrupted anther dehiscence, leading to fertilisation failure. EMF3 encodes a plasma membrane-localised polypeptide of 723 amino acids with an armadillo repeat fold and four transmembrane segments. Furthermore, EMF3 is specifically expressed in the anthers starting from nighttime on the day of flowering, with substantial impacts on the transcriptomes of both anther and lodicule, which suggested an exclusive role of EMF3 in flowering events. Modifying EMF3 alleles of O. sativa enabled the adjustment of FOT among Oryza species and subspecies, potentially facilitating cross-fertilisation by overcoming one of the major challenges of inter-specific hybridisation to exploit heterosis. Introducing the EMF3 alleles with the earlier FOT into popular rice cultivars resulted in flowering at an earlier time of day when the temperature was cooler, efficiently increasing seed setting rate under heat stress. This discovery unveils the novel mechanism of anther control of flower opening time through the EMF3 gene, while also enabling the use of EMF3 alleles in breeding strategies for efficient fertilisation for increasing hybrid rice seed production and mitigating future heat-stress damage at flowering.
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