全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...
棉花学报  2015 

海陆渐渗系棉花吐絮期叶绿素含量、荧光参数及相关性状的QTL定位分析

DOI: 10.11963/issn.1002-7807.201505005, PP. 417-426

Keywords: 棉花,海陆渐渗系,叶绿素荧光参数,SSR标记,QTL定位

Full-Text   Cite this paper   Add to My Lib

Abstract:

以海陆渐渗系13-1×辽棉12组配的195个单株的F2群体为作图群体,利用SSR(Simplesequencerepeat)标记和JoinMap3.0软件构建遗传连锁图谱,构建的遗传连锁图谱包含39个多态性标记、13个连锁群,该图谱总长1174.4cM,覆盖棉花基因组的26.7%,利用IciMapping完备区间作图法对F23家系进行相关性状的QTL定位,共检测到30个叶绿素荧光参数、7个叶片干物质含量、6个叶面积指数、1个叶绿素含量的QTL位点,分布在8条染色体上,在同一染色体共标记区间内存在多个性状的QTL,部分位点加性遗传效应来自同一亲本,与干物质含量、最大光化学效应相关的QTL位点在3条染色体上不同标记区间内重复出现,与叶面积指数、最大光化学效应相关的QTL位点在4条染色体上不同标记区间内重复出现,表现出遗传上的一因多效或基因连锁效应,可用于高光效聚合育种。

References

[1]  null 艾先涛, 李雪源, 莫明, 等. 新疆棉花纤维品质性状的QTL分析[J]. 棉花学报, 2008, 20(6): 473-476.
[2]  Ai Xiantao, Li Xueyuan, Mo Ming, et al. QTL analysis on cotton fiber for quality traits in Xinjiang[J]. Cotton Science, 2008, 20(6): 473-476.
[3]  Mae T. Physiological nitrogen efficiency in rice: nitrogen utilization, photosynthesis and yield potential[J]. Plant and Soil, 1997, 196: 201-210.
[4]  张守仁. 叶绿素荧光动力学参数的意义及讨论[J]. 植物学通报, 1999, 16 (4): 444-448.
[5]  Zhang Shouren. A Discussion on chlorophyll fluorescence kinetics parameters and their significance[J]. Chinese Bulletin of Botany, 1996, 16(4): 444-448.
[6]  赵会杰, 邹琦, 于振文. 叶绿素荧光分析技术及其在植物光合机理研究中的应用[J]. 河南农业大学学报, 2000, 34(3): 248- 251.
[7]  Zhao Huijie, Zou Qi, Yu Zhenwen. Chlorophyll fluoresence analysis technique and its application to photosynthesis of plant[J]. Journal of Henan Agricultural University, 2000, 34(3): 248-251.
[8]  林世青, 许春晖, 张其德, 等. 叶绿素荧光动力学在植物抗性生理学、生态学和农业现代化中的应用[J]. 植物学通报, 1992, 9(1): 1-16.
[9]  Lin Shiqing, Xu Chunhui, Zhang Qide, et al. Some application of chlorophyll fluorescence kinetics to plant stress physiologyphytoecology and agricultural modernization[J]. Chinese Bulletin of Botany, 1992, 9(1): 1-16.
[10]  李志博, 魏亦农, 张荣华, 等. 棉花不同叶位叶绿素荧光特性初探[J]. 棉花学报, 2005, 17(3): 189-190.
[11]  Li Zhibo, Wei Yinong, Zhang Ronghua, et al. Primary studies on shlorophyll fluorescence characteristics of cotton leaves at different leaf position[J]. Cotton Science, 2005, 17(3): 189-190.
[12]  胡茂龙, 王春明, 杨权海, 等. 水稻光合功能相关性状QTL分析[J]. 遗传学报, 2005, 32(8): 818-824.
[13]  Hu Maolong, Wang Chunming, Yang Quanhai, et al. QTL Analysis for traits associated with photosynthetic functions in rice(Oryza sativa L.)[J]. Acta Genetica Sinica, 2005, 32(8): 818-824.
[14]  Yang Delong, Jing Ruilian, Chang Xiaoping, et al. Quantitative trait loci mapping for chlorophyll fluorescence and associated traits in wheat(Triticum aestivum L.)[J]. Journal of Integrative Plant Biology, 2007, 49(5): 646-654.
[15]  单大鹏, 齐照明, 邱红梅, 等. 大豆油分含量相关的 QTL 间的上位效应和 QE 互作效应[J]. 作物学报, 2008, 34(6): 952-957.
[16]  Shan Dapeng, Qi Zhaoming, Qiu Hongmei, et al. Epistatic effects of QTLs and QE interaction effects on oil content in soybean[J]. Acta Agronomica Sinica, 2008, 34(6): 952-957.
[17]  周蓉, 王贤智, 陈海峰, 等. 大豆倒伏性及其相关性状的QTL分析[J]. 作物学报, 2009, 35(1): 57-65.
[18]  Zhou Rong, Wang Xianzhi, Chen Haifeng, et al. QTL analysis of lodging and related traits in soybean[J]. Acta Agronomica Sinica, 2009, 35(1): 57-65.
[19]  印志同, 宋海娜, 孟凡凡, 等. 大豆光合气体交换参数的 QTL 分析[J]. 作物学报, 2010, 36(1): 92-100.
[20]  Yin Zhitong, Song Haina, Meng Fanfan, et al. QTL mapping for photosynthetic gas exchange parameters in soybean[J]. Acta Agronomica Sinica, 2010, 36(1): 92-100.
[21]  印志同, 孟凡凡, 宋海娜, 等. 大豆开花盛期快速叶绿素荧光参数的 QTL 分析[J]. 中国农业科学, 2011, 44(24): 4980-4987.
[22]  Yin Zhitong, Meng Fanfan, Song Haina, et al. QTL mapping for fast chlorophyll fluorescence parameters in soybean[J]. Scientia Agricultura Sinica, 2011, 44(24): 4980-4987.
[23]  梁燕, 张坤普, 赵亮, 等. 小麦苗期光合作用及其相关性状的 QTL分析[J]. 作物学报, 2010, 36(2): 267-275.
[24]  Liang Yan, Zhang Kunpu, Zhao Liang, et al. Analysis of QTLs associated with photosynthesis characteristics in wheat seedlings[J]. Acta Agronomica Sinica, 2010, 36(2): 267-275.
[25]  刘胜男, 甘剑锋, 张海萍, 等. 小麦 RILs 群体叶绿素含量和千粒重相关分析及QTL定位[J]. 安徽农业大学学报, 2013, 40(4): 570-574.
[26]  Liu Shengnan, Gan Jianfeng, Zhang Haiping, et al. QTL mapping and analysis of correlation between chlorophyll content and 1000-kernal weight in RILs population of wheat[J]. Journal of Anhui Agricultural University, 2013, 40(4): 570-574.
[27]  刘进, 王嘉宇, 姜树坤, 等. 水稻叶绿素含量动态QTL分析[J].植物生理学报, 2012, 48(6): 577-583.
[28]  Liu Jin, Wang Jiayu, Jiang Shukun, et al. Detection and analysis of dynamic QTL of leaf chlorophyll content in rice[J]. Plant Physiology Journal, 2012, 48(6): 577-583.
[29]  秦鸿德, 张天真. 棉花叶绿素含量和光合速率的QTL定位[J].棉花学报, 2008, 20(5): 394-398.
[30]  Qin Hongde, Zhang Tianzhen. QTL mapping of leaf chlorophyll content and photosynthetic rates in cotton[J]. Cotton Science, 2008, 20(5): 394-398.
[31]  张建, 刘大军, 林刚, 等. 陆地棉叶绿素质量分数QTL定位[J].西南大学学报: 自然科学版, 2011, 33(4): 1-4.
[32]  Zhang Jian, Liu Dajun, Lin Gang, et al. QTL mapping forchlorophyll content in upland cotton(Gossypium hirsutum L.)[J]. Journal of Southwest University: Natural Science Edition, 2011, 33(4): 1-4.
[33]  叶磊, 王茜. 一种适于SSR-PCR的棉花基因组DNA提取法[J]. 分子植物育种, 2007, 5(5): 738-742.
[34]  Ye Lei, Wang Qian. A rapid method for the identification of rice foreign gene[J]. Molecular Plant Breeding, 2007, 5(5): 738- 742.
[35]  张军, 武耀廷, 郭旺珍, 等. 棉花微卫星标记的 PAGE/银染快速检测[J]. 棉花学报, 2000, 12(5): 267-269.
[36]  Zhang Jun, Wu Yaoting, Guo Wangzhen, et al. Fast screening of microsatellite markers in cotton with PAGE/silver staining[J].Cotton Science, 2000, 12(5): 267-269.
[37]  李立群, 王培, 王小利, 等. SSR标记变性聚丙烯酰胺凝胶电泳方法改进[J]. 安徽农业科学, 2012, 40(34): 16541-16544.
[38]  Li Liqun, Wang Pei, Wang Xiaoli, et al. Improvement of the methods for denatured polyacrylamide gel electrophoresis in detecting SSR[J]. Journal of Anhui Agricultual Sciences, 2012, 40(34):16541-16544.
[39]  许玉兰, 蔡年辉, 康向阳, 等. SSR-PCR反应体系建立与优化的研究概述[J]. 生物技术, 2012, 22(2): 73-74.
[40]  Xu Yulan, Cai Nianhui, Kang Xiangyang, et al. A review on the establishment and optimization of the SSR-PCR reaction system[J]. Biology Technology, 2012, 22(2): 73-74.
[41]  陈祖海, 刘金兰 ,聂以春. 陆地棉族系种质系与陆地棉品种间的杂种优势利用研究[J]. 棉花学报, 1994, 6(3): 151-154.
[42]  Chen Zuhai, Liu Jinlan, Nie Yichun. Heterosis in upland cotton:useness of breeding lines developed from primitive race stocks(Gossypium hirsutum L.)[J]. Cotton Science, 1994, 6(3): 151- 154.
[43]  Bhatt J G, Rao M R. Heterosis in growth and photosynthetic rates in hybrids of cotton[J]. Euphytica, 1980, 30: 129-133.
[44]  Saranga Y, Men M, Jiang C X, et al. Genomic dissection of genotype ×environment interactions conferring adaptation of cotton to arid conditions[J]. Genome Research, 2001, 11: 1988- 1995.
[45]  宋美珍. 短季棉早熟不早衰生化遗传机制及QTL定位[D]. 北京: 中国农业科学院, 2006.
[46]  Song Meizhen. Biochemical genetic mechanism and QTLs of early maturing without decrepitude in shorted-season upland cotton(G.hirsutum L.)[D]. Beijing: Chinese Academy of Agricultural Sciences, 2006.

Full-Text

Contact Us

[email protected]

QQ:3279437679

WhatsApp +8615387084133