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优良自交系PH207的草图组装为了解玉米基因组和转录组多样性提供了见解。

Draft Assembly of Elite Inbred Line PH207 Provides Insights into Genomic and Transcriptome Diversity in Maize.

作者信息

Hirsch Candice N, Hirsch Cory D, Brohammer Alex B, Bowman Megan J, Soifer Ilya, Barad Omer, Shem-Tov Doron, Baruch Kobi, Lu Fei, Hernandez Alvaro G, Fields Christopher J, Wright Chris L, Koehler Klaus, Springer Nathan M, Buckler Edward, Buell C Robin, de Leon Natalia, Kaeppler Shawn M, Childs Kevin L, Mikel Mark A

机构信息

Department of Agronomy and Plant Genetics, University of Minnesota, St. Paul, Minnesota 55108

Department of Plant Pathology, University of Minnesota, St. Paul, Minnesota 55108.

出版信息

Plant Cell. 2016 Nov;28(11):2700-2714. doi: 10.1105/tpc.16.00353. Epub 2016 Nov 1.

Abstract

Intense artificial selection over the last 100 years has produced elite maize (Zea mays) inbred lines that combine to produce high-yielding hybrids. To further our understanding of how genome and transcriptome variation contribute to the production of high-yielding hybrids, we generated a draft genome assembly of the inbred line PH207 to complement and compare with the existing B73 reference sequence. B73 is a founder of the Stiff Stalk germplasm pool, while PH207 is a founder of Iodent germplasm, both of which have contributed substantially to the production of temperate commercial maize and are combined to make heterotic hybrids. Comparison of these two assemblies revealed over 2500 genes present in only one of the two genotypes and 136 gene families that have undergone extensive expansion or contraction. Transcriptome profiling revealed extensive expression variation, with as many as 10,564 differentially expressed transcripts and 7128 transcripts expressed in only one of the two genotypes in a single tissue. Genotype-specific genes were more likely to have tissue/condition-specific expression and lower transcript abundance. The availability of a high-quality genome assembly for the elite maize inbred PH207 expands our knowledge of the breadth of natural genome and transcriptome variation in elite maize inbred lines across heterotic pools.

摘要

在过去100年里,高强度的人工选择培育出了优良的玉米(Zea mays)自交系,这些自交系杂交后可产生高产杂交种。为了进一步了解基因组和转录组变异如何促成高产杂交种的产生,我们构建了自交系PH207的基因组草图,以补充现有的B73参考序列并进行比较。B73是坚秆种质库的创始成员,而PH207是艾奥瓦坚秆种质的创始成员,二者都对温带商业玉米的生产做出了重大贡献,并且被用于培育杂种优势杂交种。对这两个基因组组装结果的比较揭示了仅在两种基因型之一中存在的2500多个基因,以及136个经历了广泛扩增或收缩的基因家族。转录组分析揭示了广泛的表达变异,在单个组织中,多达10564个转录本存在差异表达,且有7128个转录本仅在两种基因型之一中表达。基因型特异性基因更有可能具有组织/条件特异性表达,且转录本丰度较低。优良玉米自交系PH207高质量基因组组装的可得性,扩展了我们对不同杂种优势群中优良玉米自交系自然基因组和转录组变异广度的认识。

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