Understanding genetic architecture overcomes tradeoffs between seed quality and insect resistance.

IF 4.2 1区 农林科学 Q1 AGRONOMY
Joseph R White, James P McNellie, Kyle G Keepers, Brian C Smart, Zoe M Portlas, Zach E Marcus, Nolan C Kane, Jarrad R Prasifka, Brent S Hulke
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Abstract

The sunflower (Helianthus annuus) pericarp protects the seed within from both abiotic and biotic stresses. Achenes with stronger pericarps are less susceptible to damage from insect feeding. Complicating the genetic improvement of pericarp strength is the negative correlation between pericarp thickness (a component of strength) and oil content. As breeding efforts have increased oil content, there has been a concomitant decrease in pericarp thickness. One breeding goal is to improve oil content while preserving pericarp strength through genetic mechanisms independent of the tradeoffs with pericarp thickness. To determine the genetic basis of oil content, pericarp strength, and thickness, we identified QTL in two populations: the Sunflower Association Mapping panel (Mandel et al. in Theor Appl Genet 123:693-704, 2011) and a recombinant inbred line (RIL) population derived from a thin pericarp oilseed inbred (HA 467) crossed to a thick pericarp open-pollinated variety from Türkiye (PI 170415). A region on chromosome 15 was associated with neighboring QTL for banded moth resistance, oil content, and pericarp thickness, partially underlying the trade-offs among these traits. Additional QTL on chromosome 5 and 14 for pericarp strength provide fewer trade-offs with oil content. QTL for pericarp strength on chromosome 5 and pericarp thickness on chromosome 16 were associated with large structural variants on chromosome 5 and putative structural variation on chromosome 16, with candidate gene presence/absence variation between the haplotypes on chromosome 5. Understanding the origin and nature of phenotypic tradeoffs is beneficial to plant biologists and sunflower breeders as they seek to understand the origin and genetic architecture of adaptive and maladaptive traits.

了解遗传结构可以克服种子质量和抗虫性之间的权衡。
向日葵(Helianthus annuus)果皮保护种子免受非生物和生物胁迫。果皮较强的瘦果不易受到昆虫取食的损害。果皮厚度(果皮强度的一个组成部分)与含油量呈负相关关系,使果皮强度的遗传改良更为复杂。随着育种努力增加了含油量,果皮厚度也随之减少。一个育种目标是通过独立于果皮厚度权衡的遗传机制提高含油量,同时保持果皮强度。为了确定含油量、果皮强度和厚度的遗传基础,我们在两个群体中确定了QTL:向日葵关联图谱(Mandel et al. in theappl Genet 123:693- 704,2011)和重组自交系(RIL)群体,该群体由薄果皮油籽自交系(HA 467)与厚果皮开放授粉品种 rkiye (PI 170415)杂交而来。第15染色体上的一个区域与条蛾抗性、含油量和果皮厚度的邻近QTL相关,部分解释了这些性状之间的权衡。5号和14号染色体上额外的果皮强度QTL与含油量之间的权衡较少。5号染色体上的果皮强度和16号染色体上的果皮厚度QTL与5号染色体上的大结构变异和16号染色体上的推定结构变异相关,5号染色体上的候选基因存在/缺失差异。了解表型权衡的起源和本质对植物生物学家和向日葵育种家来说是有益的,因为他们试图了解适应和不适应性状的起源和遗传结构。
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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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