利用随机模拟评价小麦抗赤霉病基因组选择和快速育种。

IF 2.6 3区 农林科学 Q1 AGRONOMY
Molecular Breeding Pub Date : 2025-01-09 eCollection Date: 2025-01-01 DOI:10.1007/s11032-024-01527-z
Vinay Kumar Reddy Nannuru, Jon Arne Dieseth, Morten Lillemo, Theodorus H E Meuwissen
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引用次数: 0

摘要

与传统的表型选择相比,以基因组选择为基础的育种计划具有显著优势,特别是在加速植物育种的遗传增益方面,这一点已在以防治小麦镰刀菌头枯病(FHB)为重点的模拟中得到证明。FHB 抗性是一个重要的性状,由于其数量遗传和环境影响,其育种具有挑战性,导致传统育种方法进展缓慢。我们研究中的随机模拟比较了各种育种方案,包括基因组选择(GS)并将其与快速育种相结合,以及传统的表型选择。我们模拟了两个数据集,分别反映现实生活中的基因型数据(MASBASIS)和模拟小麦育种计划(EXAMPLE)。与传统的表型选择方法相比,首先使用传统的表型选择方法进行了 20 年的磨合期,然后使用三个基于 GS 的育种计划(GSF2F8、GSF8 和 SpeedBreeding + GS)进行了 20 年的提高期评估。结果表明,与表型选择相比,无论采用哪种选择策略,基于 GS 的育种方案都能显著提高遗传增益。在 GS 方案中,SpeedBreeding + GS 的表现始终优于其他方案,产生的遗传增益最高。这一组合有效地缩短了育种周期内的世代间隔,提高了效率。这项研究强调了基因组选择在加快小麦育种收益方面的优势,尤其是在抗击 FHB 方面。通过利用基因组信息和创新技术(如快速育种),育种者可以高效地选择所需的性状,大大减少与传统表型方法相关的测试时间和成本:在线版本包含补充材料,可查阅 10.1007/s11032-024-01527-z。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evaluating genomic selection and speed breeding for Fusarium head blight resistance in wheat using stochastic simulations.

Genomic selection-based breeding programs offer significant advantages over conventional phenotypic selection, particularly in accelerating genetic gains in plant breeding, as demonstrated by simulations focused on combating Fusarium head blight (FHB) in wheat. FHB resistance, a crucial trait, is challenging to breed for due to its quantitative inheritance and environmental influence, leading to slow progress using conventional breeding methods. Stochastic simulations in our study compared various breeding schemes, incorporating genomic selection (GS) and combining it with speed breeding, against conventional phenotypic selection. Two datasets were simulated, reflecting real-life genotypic data (MASBASIS) and a simulated wheat breeding program (EXAMPLE). Initially a 20-year burn-in phase using a conventional phenotypic selection method followed by a 20-year advancement phase with three GS-based breeding programs (GSF2F8, GSF8, and SpeedBreeding + GS) were evaluated alongside over a conventional phenotypic selection method. Results consistently showed significant increases in genetic gain with GS-based programs compared to phenotypic selection, irrespective of the selection strategies employed. Among the GS schemes, SpeedBreeding + GS consistently outperformed others, generating the highest genetic gains. This combination effectively minimized generation intervals within the breeding cycle, enhancing efficiency. This study underscores the advantages of genomic selection in accelerating breeding gains for wheat, particularly in combating FHB. By leveraging genomic information and innovative techniques like speed breeding, breeders can efficiently select for desired traits, significantly reducing testing time and costs associated with conventional phenotypic methods.

Supplementary information: The online version contains supplementary material available at 10.1007/s11032-024-01527-z.

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来源期刊
Molecular Breeding
Molecular Breeding 农林科学-农艺学
CiteScore
5.60
自引率
6.50%
发文量
67
审稿时长
1.5 months
期刊介绍: Molecular Breeding is an international journal publishing papers on applications of plant molecular biology, i.e., research most likely leading to practical applications. The practical applications might relate to the Developing as well as the industrialised World and have demonstrable benefits for the seed industry, farmers, processing industry, the environment and the consumer. All papers published should contribute to the understanding and progress of modern plant breeding, encompassing the scientific disciplines of molecular biology, biochemistry, genetics, physiology, pathology, plant breeding, and ecology among others. Molecular Breeding welcomes the following categories of papers: full papers, short communications, papers describing novel methods and review papers. All submission will be subject to peer review ensuring the highest possible scientific quality standards. Molecular Breeding core areas: Molecular Breeding will consider manuscripts describing contemporary methods of molecular genetics and genomic analysis, structural and functional genomics in crops, proteomics and metabolic profiling, abiotic stress and field evaluation of transgenic crops containing particular traits. Manuscripts on marker assisted breeding are also of major interest, in particular novel approaches and new results of marker assisted breeding, QTL cloning, integration of conventional and marker assisted breeding, and QTL studies in crop plants.
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