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A comparative analysis of small RNAs between two Upland cotton backcross inbred lines with different fiber length: Expression and distribution

机译:两种不同纤维长度的陆地棉回交自交系之间小RNA的比较分析:表达和分布

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摘要

The cotton fiber is the most important raw material for the textile industry and an ideal model system for studying cell elongation. However, the genetic variation of fiber elongation in relation to miRNA is poorly understood. A high-throughput comparative RNA-seq of two lines differing in fiber length (FL) from a backcross inbred line (BIL) population of G. hirsutum×G. barbadense revealed differentially expressed (DE) miRNAs and their targets in rapidly elongating fibers. A real-time quantitative PCR analysis was further performed to validate the results. A total of 463 (including 47 DE) miRNAs were identified, and seven DE miRNAs were co-localized with seven FL quantitative trait loci (QTL) identified in the G. hirsutum×G. barbadense population. Of 82 (including 21 DE) targets identified, nine (including one DE) were also co-localized with the seven FL QTL. The relationship between the allopolyploid and its diploid ancestral species with respect to miRNAs and their targets was also characterized. These results will facilitate the understanding of the molecular genetic mechanism of fiber elongation with regards to miRNAs in cotton.
机译:棉纤维是纺织工业最重要的原材料,也是研究细胞伸长的理想模型系统。然而,关于miRNA的纤维伸长的遗传变异知之甚少。高产比较RNA-seq的两个不同系的纤维长度(FL)与G. hirsutum×G的回交近交系(BIL)群体不同。 Barbadense揭示了快速伸长纤维中的差异表达(DE)miRNA及其靶标。进一步进行实时定量PCR分析以验证结果。总共鉴定了463个(包括47个DE)miRNA,并将七个DE miRNA与在G.hirsutum×G中鉴定的七个FL定量性状基因座(QTL)共定位。巴巴登斯人口。在确定的82个(包括21个DE)目标中,有9个(包括一个DE)也与七个FL QTL共同定位。相对于miRNA及其靶标,还表征了异源多倍体与其二倍体祖先物种之间的关系。这些结果将有助于理解关于棉花中miRNA的纤维伸长的分子遗传机制。

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  • 来源
    《作物学报(英文版)》 |2019年第2期|198-208|共11页
  • 作者单位

    State Key Laboratory of Cotton Biology, Cotton Institute of the Chinese Academy of Agricultural Sciences, Key Laboratory of Cotton Genetic Improvement, Ministry of Agriculture, Anyang 455000, Henan, China;

    State Key Laboratory of Cotton Biology, Cotton Institute of the Chinese Academy of Agricultural Sciences, Key Laboratory of Cotton Genetic Improvement, Ministry of Agriculture, Anyang 455000, Henan, China;

    State Key Laboratory of Cotton Biology, Cotton Institute of the Chinese Academy of Agricultural Sciences, Key Laboratory of Cotton Genetic Improvement, Ministry of Agriculture, Anyang 455000, Henan, China;

    State Key Laboratory of Cotton Biology, Cotton Institute of the Chinese Academy of Agricultural Sciences, Key Laboratory of Cotton Genetic Improvement, Ministry of Agriculture, Anyang 455000, Henan, China;

    State Key Laboratory of Cotton Biology, Cotton Institute of the Chinese Academy of Agricultural Sciences, Key Laboratory of Cotton Genetic Improvement, Ministry of Agriculture, Anyang 455000, Henan, China;

    State Key Laboratory of Cotton Biology, Cotton Institute of the Chinese Academy of Agricultural Sciences, Key Laboratory of Cotton Genetic Improvement, Ministry of Agriculture, Anyang 455000, Henan, China;

    State Key Laboratory of Cotton Biology, Cotton Institute of the Chinese Academy of Agricultural Sciences, Key Laboratory of Cotton Genetic Improvement, Ministry of Agriculture, Anyang 455000, Henan, China;

    State Key Laboratory of Cotton Biology, Cotton Institute of the Chinese Academy of Agricultural Sciences, Key Laboratory of Cotton Genetic Improvement, Ministry of Agriculture, Anyang 455000, Henan, China;

    State Key Laboratory of Cotton Biology, Cotton Institute of the Chinese Academy of Agricultural Sciences, Key Laboratory of Cotton Genetic Improvement, Ministry of Agriculture, Anyang 455000, Henan, China;

    Department of Plant and Environmental Sciences, New Mexico State University, Las Cruces, NM 88003, USA;

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