Tuning starch granule size distributions in durum wheat using genetic variation at a single locus.

IF 4.2 1区 农林科学 Q1 AGRONOMY
Brendan Fahy, Jiawen Chen, David Seung
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Abstract

Key message: Different missense mutations in TtMRC-A1 can be used to fine-tune granule size distributions in durum wheat grains, creating useful alterations in starch properties. The size distribution of starch granules in wheat grains influences bread- and pasta-making quality, as well as nutritional properties. Here, we demonstrate that in durum wheat, wide variation in starch granule size distributions can be induced through missense mutations at a single genetic locus encoding the MYOSIN RESEMBLING CHLOROPLAST PROTEIN on chromosome 6A (TtMRC-A1). We isolated 29 independent TILLING mutants in durum cultivar Kronos, each harbouring a different missense mutation that causes an amino acid substitution in the MRC protein. Compared to the B-type granule content of wild-type Kronos (24%), six of the missense lines had significant increases in B-type granule content (33-42%), although not to the extent observed in the mrc-1 mutant (58%) which carries a premature stop codon mutation. Notably, one missense line had significantly decreased B-type granule content (15%), demonstrating that mutations in TtMRC-A1 can achieve both increases and decreases in B-type granule content. In these lines, A-type granule size decreased as B-type granule content increased, and Rapid Visco Analysis on selected lines demonstrated that both B-type granule content and A-type granule size strongly correlated with pasting parameters (e.g. peak viscosity and pasting temperature). However, strong correlations between pasting properties and A-type granule size were still observed after removing most of the B-type granules via sieving, indicating that A-type granule size is the primary contributor to the observed variation in pasting properties. Overall, we demonstrate that mutations at TtMRC-A1 can greatly extend the range of granule size distributions in durum wheat, creating useful alterations in starch properties.

利用单位点遗传变异调节硬粒小麦淀粉粒度分布。
关键信息:TtMRC-A1的不同错义突变可用于微调硬粒小麦颗粒大小分布,从而对淀粉特性产生有用的改变。小麦颗粒中淀粉颗粒的大小分布影响面包和面食的制作质量以及营养特性。在这里,我们证明了在硬粒小麦中,淀粉颗粒大小分布的广泛变化可以通过编码6A染色体上类似叶绿体蛋白的MYOSIN (TtMRC-A1)的单个遗传位点的错义突变诱导。我们从硬粒栽培品种Kronos中分离出29个独立的TILLING突变体,每个突变体都含有不同的错义突变,导致MRC蛋白中的氨基酸替换。与野生型Kronos的b型颗粒含量(24%)相比,6个错义系的b型颗粒含量显著增加(33-42%),尽管在携带过早终止密码子突变的mrc-1突变株(58%)中未观察到这种程度。值得注意的是,一个错义系显著降低了b型颗粒含量(15%),这表明TtMRC-A1突变可以实现b型颗粒含量的增加和减少。在这些品系中,a型颗粒粒径随着b型颗粒含量的增加而减小,对选系的快速粘度分析表明,b型颗粒含量和a型颗粒粒径与膏体参数(如峰值粘度和膏体温度)有很强的相关性。然而,在通过筛分去除大部分b型颗粒后,仍然观察到膏体性能与a型颗粒尺寸之间存在很强的相关性,这表明a型颗粒尺寸是观察到的膏体性能变化的主要因素。总的来说,我们证明了TtMRC-A1的突变可以极大地扩展硬粒小麦的颗粒大小分布范围,从而对淀粉性质产生有益的改变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
9.60
自引率
7.40%
发文量
241
审稿时长
2.3 months
期刊介绍: Theoretical and Applied Genetics publishes original research and review articles in all key areas of modern plant genetics, plant genomics and plant biotechnology. All work needs to have a clear genetic component and significant impact on plant breeding. Theoretical considerations are only accepted in combination with new experimental data and/or if they indicate a relevant application in plant genetics or breeding. Emphasizing the practical, the journal focuses on research into leading crop plants and articles presenting innovative approaches.
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