哪有情可长
(2023-04-30 21:56):
#paper reducing brassinosteroid signalling enhances grain yield in semi-dwarf wheat doi: doi.org/10.1038/s41586-023-06023-6. 通过多年的大规模田间表型调查和遗传学研究,鉴定到一个能够提升小麦群体产量的关键位点,其中该位点跟已知的Rht基因处于相同的区段,通过构建小麦该区段内三个基因的突变体,发现该基因跟绿色革命基因相比,能够保持半矮杆株型,且茎秆强度、植株耐密性、收获指数、千粒重和产量均有显著的提升。该基因可以是近现代小麦品种后期育种增产的目标基因,对于小麦产量提升具有重要的作用。同时该研究历时10年,通过正向遗传鉴定基因后,对于小麦中的明星基因如何处理也是一个很好的典范,同时也给我分析小麦数据提供了思路,GWAS结果中一些定位到明星基因的位点还可以看下SVN等情况。
Reducing brassinosteroid signalling enhances grain yield in semi-dwarf wheat
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Abstract:
Modern green revolution varieties of wheat (Triticum aestivum L.) confer semi-dwarf and lodging-resistant plant architecture owing to the Reduced height-B1b (Rht-B1b) and Rht-D1b alleles. However, both Rht-B1b and Rht-D1b are gain-of-function mutant alleles encoding gibberellin signalling repressors that stably repress plant growth and negatively affect nitrogen-use efficiency and grain filling. Therefore, the green revolution varieties of wheat harbouring Rht-B1b or Rht-D1b usually produce smaller grain and require higher nitrogen fertilizer inputs to maintain their grain yields. Here we describe a strategy to design semi-dwarf wheat varieties without the need for Rht-B1b or Rht-D1b alleles. We discovered that absence of Rht-B1 and ZnF-B (encoding a RING-type E3 ligase) through a natural deletion of a haploblock of about 500 kilobases shaped semi-dwarf plants with more compact plant architecture and substantially improved grain yield (up to 15.2%) in field trials. Further genetic analysis confirmed that the deletion of ZnF-B induced the semi-dwarf trait in the absence of the Rht-B1b and Rht-D1b alleles through attenuating brassinosteroid (BR) perception. ZnF acts as a BR signalling activator to facilitate proteasomal destruction of the BR signalling repressor BRI1 kinase inhibitor 1 (TaBKI1), and loss of ZnF stabilizes TaBKI1 to block BR signalling transduction. Our findings not only identified a pivotal BR signalling modulator but also provided a creative strategy to design high-yield semi-dwarf wheat varieties by manipulating the BR signal pathway to sustain wheat production.
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