揭示玉米穗径杂种优势的遗传机制

Liangfa Wang , Juan Li , Baiyu Yuan , Huiyu Zhang , Yuan Lin , Jiong Wan , Jiawen Zhao , Qiyue Wang , Xiaolong Ju , Xiaoyang Chen , Xuehai Zhang , Yadong Xue , Rui Song , Zhiyuan Fu , Hongbing Luo , Dong Ding , Jihua Tang
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引用次数: 0

摘要

杂交长期以来一直是育种者培育对全球粮食安全至关重要的高产作物的关键策略。然而,驱动杂种优势(杂种优势)的确切分子机制仍然是一个有争议的话题。玉米(Zea mays)具有明显的杂种优势,是研究这一现象的理想模型。在本研究中,我们仔细测量了穗径的表型变化,追踪了其从花序分生组织(IM)到花分生组织(FM)阶段的发育过程。研究结果揭示了一个复杂的过程:杂交种的穗径在小穗和小穗对分生组织(SPM)阶段呈加性模式,在小穗分生组织(SM)阶段转变为不完全显性,最终在小穗分生组织(FM)阶段表现为超显性。值得注意的是,SM阶段发生了显著的表型变化,基因表达主要表现为非加性模式。基因本体(GO)富集分析强调了细胞氧化还原稳态基因的作用,这些基因在杂交种中表现出过显性表达,是杂种优势的关键贡献者。此外,我们在F1杂交(DMP)中发现了一种不同的基因表达类别——显性的母系或父系基因表达——其特征是在杂交和亲本一方中独占表达,而在另一方中保持不活性。这类DMP基因在形成杂交种中观察到的不同基因表达模式方面起着关键作用,将它们与亲本系区分开来。综上所述,非加性表达的广泛存在似乎提高了杂交种生物过程和能量分配的效率,最终推动了杂种优势的表现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Unraveling the genetic mechanisms of maize ear diameter heterosis
Hybridization has long been a crucial strategy for breeders aiming to develop high-yield crops vital for global food security. However, the exact molecular mechanisms driving heterosis (hybrid vigor) remain a topic of debate. Maize (Zea mays), which demonstrates pronounced heterosis, serves as an ideal model for studying this phenomenon. In our study, we carefully measured phenotypic changes in ear diameter, tracing its development from the inflorescence meristem (IM) to the floral meristem (FM) stages. Our findings revealed a complex progression: the hybrid's ear diameter followed an additive pattern during the IM and spikelet pair meristem (SPM) stages, shifted to incomplete dominance at the spikelet meristem (SM) stage, and ultimately displayed over-dominance at the FM stage. Notably, significant phenotypic changes occurred during the SM stage with gene expression primarily showing non-additive patterns. Gene Ontology (GO) enrichment analysis highlighted the role of cell redox homeostasis genes, which exhibited over-dominant expression in hybrids, as key contributors to heterosis. Furthermore, we identified a distinct gene expression category—dominant maternal or paternal gene expression in F1 hybrids (DMP)—characterized by exclusive expression in the hybrid and one parent, while remaining inactive in the other. This category of DMP genes plays a pivotal role in shaping the diverse gene expression patterns observed in hybrids, distinguishing them from their parental lines. In conclusion, the widespread occurrence of non-additive expression seems to enhance the efficiency of biological processes and energy distribution in hybrids, ultimately driving the manifestation of heterosis.
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