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水稻重组自交系中适应性植物结构对超亲耐盐性的贡献:基于转录网络的分子机制

Contributions of Adaptive Plant Architecture to Transgressive Salinity Tolerance in Recombinant Inbred Lines of Rice: Molecular Mechanisms Based on Transcriptional Networks.

作者信息

Pabuayon Isaiah Catalino M, Kitazumi Ai, Gregorio Glenn B, Singh Rakesh Kumar, de Los Reyes Benildo G

机构信息

Department of Plant and Soil Science, Texas Tech University, Lubbock, TX, United States.

International Rice Research Institute, Los Baños, Philippines.

出版信息

Front Genet. 2020 Oct 23;11:594569. doi: 10.3389/fgene.2020.594569. eCollection 2020.

Abstract

Genetic novelties are important nucleators of adaptive speciation. Transgressive segregation is a major mechanism that creates genetic novelties with morphological and developmental attributes that confer adaptive advantages in certain environments. This study examined the morpho-developmental and physiological profiles of recombinant inbred lines (RILs) from the salt-sensitive IR29 and salt-tolerant Pokkali rice, representing the total range of salt tolerance including the outliers at both ends of the spectrum. Morpho-developmental and physiological profiles were integrated with a hypothesis-driven interrogation of mRNA and miRNA transcriptomes to uncover the critical genetic networks that have been rewired for novel adaptive architecture. The transgressive super-tolerant FL510 had a characteristic small tiller angle and wider, more erect, sturdier, and darker green leaves. This unique morphology resulted in lower transpiration rate, which also conferred a special ability to retain water more efficiently for osmotic avoidance. The unique ability for water retention conferred by such adaptive morphology appeared to enhance the efficacy of defenses mediated by Na exclusion mechanism (-effects) inherited from Pokkali. The super-tolerant FL510 and super-sensitive FL499 had the smallest proportions of differentially expressed genes with little overlaps. Genes that were steadily upregulated in FL510 comprised a putative cytokinin-regulated genetic network that appeared to maintain robust growth under salt stress through well-orchestrated cell wall biogenesis and cell expansion, likely through major regulatory () and biosynthetic () genes in the cytokinin signaling pathway. Meanwhile, a constitutively expressed cluster in FL510 prominently featured two transcription factors () that control tiller angle and growth habit through the brassinosteroid signaling pathway. Both the putative cytokinin-mediated and brassinosteroid-mediated clusters appeared to function as highly coordinated network synergies in FL510. In contrast, both networks appeared to be sub-optimal and inferior in the other RILs and parents as they were disjointed and highly fragmented. Transgressively expressed miRNAs () were also identified as prominent signatures of FL510, with functional implications to mechanisms that support robust growth, homeostasis, and osmotic stress avoidance. Results of this study demonstrate how genetic recombination creates novel morphology that complements inducible defenses hence transgressive adaptive phenotypes.

摘要

遗传新奇性是适应性物种形成的重要促成因素。超亲分离是一种主要机制,它能创造出具有形态和发育特征的遗传新奇性,这些特征在特定环境中赋予适应性优势。本研究考察了来自盐敏感型IR29和耐盐型Pokkali水稻的重组自交系(RILs)的形态发育和生理特征,这些重组自交系代表了包括两端极端情况在内的整个耐盐范围。将形态发育和生理特征与对mRNA和miRNA转录组的假设驱动式探究相结合,以揭示为新的适应性结构而重新布线的关键遗传网络。超耐盐的FL510具有特征性的小分蘖角以及更宽、更直立、更粗壮和更深绿色的叶片。这种独特的形态导致较低的蒸腾速率,这也赋予了其更有效地保留水分以避免渗透胁迫的特殊能力。这种适应性形态赋予的独特保水能力似乎增强了从Pokkali遗传而来的钠排斥机制(-效应)介导的防御功效。超耐盐的FL510和超敏感的FL499差异表达基因的比例最小,且几乎没有重叠。在FL510中稳定上调的基因构成了一个假定的细胞分裂素调节的遗传网络,该网络似乎通过精心编排的细胞壁生物合成和细胞扩张在盐胁迫下维持强劲生长,可能是通过细胞分裂素信号通路中的主要调节()和生物合成()基因。同时,FL510中一个组成型表达的簇显著地以两个转录因子()为特征,这两个转录因子通过油菜素内酯信号通路控制分蘖角和生长习性。在FL510中,假定的细胞分裂素介导的簇和油菜素内酯介导的簇似乎都作为高度协调的网络协同作用发挥功能。相比之下,在其他RILs和亲本中,这两个网络似乎都次优且较差,因为它们是不连贯且高度碎片化的。超亲表达的miRNA()也被鉴定为FL510的显著特征,对支持强劲生长、稳态和避免渗透胁迫的机制具有功能意义。本研究结果表明遗传重组如何创造出新的形态,从而补充诱导性防御,进而形成超亲适应性表型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6e29/7644915/eeebbe1a3dbe/fgene-11-594569-g001.jpg

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