首页> 外文期刊>棉花研究(英文) >Genetic map construction and functional characterization of genes within the segregation distortion regions(SDRs)in the F2:3 populations derived from wild cotton species of the D genome
【24h】

Genetic map construction and functional characterization of genes within the segregation distortion regions(SDRs)in the F2:3 populations derived from wild cotton species of the D genome

机译:遗传地图在F2中的分离变形区域(SDR)内基因的结构和功能表征:3种源自D基因组的野性棉种群

获取原文
获取原文并翻译 | 示例
       

摘要

Background:Segregation distortion(SD)is a common phenomenon among stable or segregating populations,and the principle behind it still puzzles many researchers.The F2:3 progenies developed from the wild cotton species of the D genomes were used to investigate the possible plant transcription factors within the segregation distortion regions(SDRs).A consensus map was developed between two maps from the four D genomes,map A derived from F2:3 progenies of Gossypium klotzschianum and G.davidsonii while Map B from G.thurberi and G.trilobum F2:3 generations.In each map,188 individual plants were used.Results:The consensus linkage map had 1492 markers across the 13 linkage groups with a map size of 1467.445 cM and an average marker distance of 1.0370 cM.Chromosome D502 had the highest percentage of SD with 58.6%,followed by Chromosome D507 with 47.9%.Six thousand and thirty-eight genes were mined within the SDRs on chromosome D502 and D507 of the consensus map.Within chromosome D502 and D507,2308 and 3730 genes were mined,respectively,and were found to belong to 1117 gourp out of which 622 groups were common across the two chromosomes.Moreover,genes within the top 9 groups related to plant resistance genes(R genes),whereas 188 genes encoding protein kinase domain(PF00069)comprised the largest group.Further analysis of the dominant gene group revealed that 287 miRNAs were found to target various genes,such as the gra-miR398,gramiR5207,miR164a,miR164b,miR164c among others,which have been found to target top-ranked stress-responsive transcription factors such as NAC genes.Moreover,some of the stress-responsive cis-regulatory elements were also detected.Furthermore,RNA profiling of the genes from the dominant family showed that higher numbers of genes were highly upregulated under salt and osmotic stress conditions,and also they were highly expressed at different stages of fiber development.Conclusion:The results indicated the critical role of the SDRs in the evolution of the key regulatory genes in plants.
机译:背景:隔离失真(SD)是稳定或隔离人群中的常见现象,其背后的原则仍然难以困扰着许多研究人员。F2:3从D基因组的野生棉种类中发育的3个后代探讨了可能的植物转录分离失真地区(SDRS)的因素.A共识图是在四个D基因组的两张地图之间开发的,Map A来自Gossypium Klotzschianum和G.Davidsonii的衍生自G.Thurberi和G.Trilobum的地图B. F2:3代。每张地图,使用188个单独的植物。方法:共有联系地图具有1492个标记,横跨13个连接组,地图尺寸为1467.445cm,平均标记距离为1.0370cm.chromosomed502 58.6%的SD的百分比,其次是染色体D507,在共有染色体D502和D507的SDR上开采了47.9%,三十八个基因。染色体D502和D507,2分别分别进行308和3730基因,并发现属于1117孔,其中622组在两种染色体上常见。oreover,与植物抗性基因(R基因)相关的前9组内的基因,而188基因编码蛋白激酶结构域(PF00069)包含最大的基团。发现显性基因组的含量分析显示,发现287个miRNA靶向各种基因,例如GRA-MIR398,GRAMIR5207,MIR164A,MIR164B,MIR164C等等发现靶向诸如NAC基因的排名级应激响应性转录因子。还检测到一些应激响应性CIS-调节元件。来自优势家族的基因的RNA分析显示出较高数量的基因在盐和渗透胁迫条件下高度上调,并且它们在纤维发育的不同阶段高度表达。结论:结果表明了SDR在K的演变中的关键作用植物中的调节基因。

著录项

  • 来源
    《棉花研究(英文)》 |2020年第004期|P.278-296|共19页
  • 作者单位

    State Key Laboratory of Cotton Biology/Institute of Cotton Research Chinese Academy of Agricultural Science Anyang 455000 Henan China;

    State Key Laboratory of Cotton Biology/Institute of Cotton Research Chinese Academy of Agricultural Science Anyang 455000 Henan ChinaSchool of Biological Physical Mathematics and Actuarial Sciences(SBPMAS) Jaramogi Oginga Odinga University of Science and Technology(JOOUST) 210-40601 Bondo Kenya;

    State Key Laboratory of Cotton Biology/Institute of Cotton Research Chinese Academy of Agricultural Science Anyang 455000 Henan China;

    State Key Laboratory of Cotton Biology/Institute of Cotton Research Chinese Academy of Agricultural Science Anyang 455000 Henan China;

    State Key Laboratory of Cotton Biology/Institute of Cotton Research Chinese Academy of Agricultural Science Anyang 455000 Henan China;

    State Key Laboratory of Cotton Biology/Institute of Cotton Research Chinese Academy of Agricultural Science Anyang 455000 Henan China;

    State Key Laboratory of Cotton Biology/Institute of Cotton Research Chinese Academy of Agricultural Science Anyang 455000 Henan China;

    School of Biological Physical Mathematics and Actuarial Sciences(SBPMAS) Jaramogi Oginga Odinga University of Science and Technology(JOOUST) 210-40601 Bondo Kenya;

    School of Life Science Henan University/State Key Laboratory of Cotton Biology/Henan Key Laboratory of Plant Stress Biology Keifang 475004 Henan China;

    State Key Laboratory of Cotton Biology/Institute of Cotton Research Chinese Academy of Agricultural Science Anyang 455000 Henan China;

    State Key Laboratory of Cotton Biology/Institute of Cotton Research Chinese Academy of Agricultural Science Anyang 455000 Henan China;

    State Key Laboratory of Cotton Biology/Institute of Cotton Research Chinese Academy of Agricultural Science Anyang 455000 Henan China;

    State Key Laboratory of Cotton Biology/Institute of Cotton Research Chinese Academy of Agricultural Science Anyang 455000 Henan ChinaSchool of Agricultural Sciences Zhengzhou University Zhengzhou 450001 Henan China.;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 chi
  • 中图分类 肿瘤学;
  • 关键词

    Genetic map; Segregation distortion region; Cis-regulatory elements; Genes; miRNA;

    机译:遗传图;隔离扭曲区域;顺式调节元素;基因;miRNA;
  • 入库时间 2022-08-19 04:49:05
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号