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热激引起携带 Rht-B1b 或 Rht-D1b 基因的小麦雄性不育的主要原因为减数分裂不稳定和染色体配对不规则。

Meiotic instability and irregular chromosome pairing underpin heat-induced infertility in bread wheat carrying the Rht-B1b or Rht-D1b Green Revolution genes.

机构信息

HUN-REN, Centre for Agricultural Research, 2462, Martonvásár, Brunszvik u. 2, Hungary.

Doctoral School of Biology, Institute of Biology, ELTE Eötvös Loránd University, Egyetem tér 1-3, Budapest, 1053, Hungary.

出版信息

New Phytol. 2024 Jan;241(1):180-196. doi: 10.1111/nph.19256. Epub 2023 Sep 10.

DOI:10.1111/nph.19256
PMID:37691304
Abstract

Mutations in the Rht-B1a and Rht-D1a genes of wheat (Triticum aestivum; resulting in Rht-B1b and Rht-D1b alleles) cause gibberellin-insensitive dwarfism and are one of the most important elements of increased yield introduced during the 'Green Revolution'. We measured the effects of a short period of heat imposed during the early reproductive stage on near-isogenic lines carrying Rht-B1b or Rht-D1b alleles, with respect to the wild-type (WT). The temperature shift caused a significant fertility loss within the ears of Rht-B1b and Rht-D1b wheats, greater than that observed for the WT. Defects in chromosome synapsis, reduced homologous recombination and a high frequency of chromosome mis-segregation were associated with reduced fertility. The transcription of TaGA3ox gene involved in the final stage of gibberellic acid (GA) biosynthesis was activated and ultra-performance liquid chromatography-tandem mass spectrometry identified GA as the dominant bioactive GA in developing ears, but levels were unaffected by the elevated temperature. Rht-B1b and Rht-D1b mutants were inclined to meiotic errors under optimal temperatures and showed a higher susceptibility to heat than their tall counterparts. Identification and introduction of new dwarfing alleles into modern breeding programmes is invaluable in the development of climate-resilient wheat varieties.

摘要

小麦(Triticum aestivum)Rht-B1a 和 Rht-D1a 基因的突变(导致 Rht-B1b 和 Rht-D1b 等位基因)引起赤霉素不敏感的矮化,是“绿色革命”期间提高产量的最重要因素之一。我们测量了在早期生殖阶段施加的短期热对携带 Rht-B1b 或 Rht-D1b 等位基因的近等基因系相对于野生型(WT)的影响。温度变化导致 Rht-B1b 和 Rht-D1b 小麦穗内的育性显著丧失,超过了 WT 的观察结果。染色体联会缺陷、同源重组减少和染色体错误分离频率高与育性降低有关。参与赤霉素(GA)生物合成最后阶段的 TaGA3ox 基因的转录被激活,超高效液相色谱-串联质谱法鉴定 GA 为发育穗中占主导地位的生物活性 GA,但高温对其水平没有影响。Rht-B1b 和 Rht-D1b 突变体在最佳温度下倾向于减数分裂错误,并且比其高个子对应物对热更敏感。在现代育种计划中识别和引入新的矮化等位基因对于开发抗气候小麦品种非常有价值。

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