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Impacts of parental genomic divergence in non-syntenic regions on cotton heterosis. | LitMetric

Impacts of parental genomic divergence in non-syntenic regions on cotton heterosis.

J Adv Res

Zhejiang Provincial Key Laboratory of Crop Genetic Resources, Institute of Crop Science, Plant Precision Breeding Academy, College of Agriculture and Biotechnology, Zhejiang University, Hangzhou 310058, China; Hainan Institute of Zhejiang University, Sanya 572025, China. Electronic address:

Published: August 2024

AI Article Synopsis

  • Heterosis has significantly improved agricultural output, with a focus on understanding its mechanisms, particularly using the super hybrid upland cotton, Xiangzamian 2# (XZM2).
  • The study investigated the genetic differences between the parent lines CRI12 and J8891, highlighting how non-syntenic regions contribute to heterosis by harboring genes with greater heterotic effects.
  • Results revealed that structural variations in these non-syntenic areas lead to increased gene expression diversity, positively impacting traits, including lint yield, and ultimately enhancing the overall hybrid performance.

Article Abstract

Introduction: Heterosis has revolutionized crop breeding, enhancing global agricultural production. However, the mechanisms underlying heterosis remain obscure. Xiangzamian 2# (XZM2), a super hybrid upland cotton (Gossypium hirsutum L.) characterized by high-yield heterosis, has been developed and extensively planted in China.

Objectives: We conducted a systematic analysis of CRI12 and J8891, two parents of XZM2. We aimed to reveal the precise genetic information and the role of non-syntenic divergence in shaping heterosis, laying a foundation for advancing understanding of heterosis.

Methods: We de novo assembled high-quality genomes of CRI12 and J8891, and further uncovered abundant genetic variations and non-syntenic regions between the parents. Whole-genome comparison, association analysis, transcriptomic analysis and relative identity-by-descent (rIBD) estimation were conducted to identify structural variations (SVs) and introgressions within non-syntenic blocks and to analyze their impacts on promoting heterosis.

Results: Parental genetic divergence increased in non-syntenic regions. Furthermore, these regions, accounting for only 16.71% of the total genome, contained more loci with significantly higher heterotic effects, far exceeding the syntenic background. SVs covered 97.26% of non-syntenic sequences and caused widespread gene expression differences in these regions, driving dynamic complementation of gene expression in the hybrid. A set of SVs were responsible for trait improvement and had positive effects on heterosis, contributing larger heritability than short variations. We characterized numerous parental-specific introgressions from G. barbadense. Specifically, a functional introgression segment within non-syntenic blocks introduced an elite haplotype, which significantly increased lint yield and enhanced heterosis.

Conclusion: Our study clarified non-syntenic regions to harbor more loci with higher heterotic effects, revealed their importance in promoting heterosis and supported the crucial role of genetic complementation in heterosis. SVs and introgressions were identified as key factors responsible for non-syntenic divergence between the parents. They had important effects on gene expression and trait improvement, positively contributing to heterosis.

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Source
http://dx.doi.org/10.1016/j.jare.2024.08.010DOI Listing

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