期刊文献+

大白菜叶色突变体的HRM鉴定及其叶绿素荧光参数分析 被引量:8

HRM Identification and Chlorophyll Fluorescence Characteristics on Leaf Color Mutants in Chinese Cabbage
原文传递
导出
摘要 将大白菜经甲基磺酸乙酯(EMS)诱变种子获得的42株叶色突变体按照生殖时期叶片颜色和叶绿素含量分为9种类型:深绿色、灰绿色、绿色、浅绿色、白绿色、白浅绿色、黄绿色、黄浅绿色、黄色;利用高分辨率熔解曲线(high resolution melting,HRM)技术对叶绿素荧光基因HCF164突变进行了筛选并结合叶绿素荧光参数测定,获得了1株黄绿色高光合效率突变体A29,1株黄绿色光合结构损伤突变体A35和1株浅绿色光合电子传递受阻突变体A21;对另外7个叶色相关基因的突变进行了HRM鉴定,表明叶绿素相关基因ATRCCR、CLH2、PORA突变可能是造成18个突变体叶色变化的主要原因,黄叶特异基因家族YLS突变与叶色变化也有关系。 Forty-two leaf color mutants of Chinese cabbage obtained through EMS seeds mutagenesis were used as materials in this study. According to leaf color and leaf chlorophyll content at generative growth mutations were suggested to be divided into 9 types:Dark green,gray-green,green,light green,white-green,light white-green,yellow-green,light yellow-green and yellow. By detecting the nucleotide variation of the gene HCF164 related to chlorophyll fluorescence using HRM technology and by measuring chlorophyll fluorescence characteristics,we identified one yellow-green leaf color mutant A29 with high photosynthesis efficiency,one yellow-green leaf color mutant A35 with photosynthetic structure damages,one light green mutant A21 with photosynthetic electron transport obstruction. Through identifying other 7 leaf-color-related genes by HRM,mutation of chlorophyll-related genes ATRCCR,CLH2 and PORA could be the main reason resulted in 18 leaf color mutants,mutation of yellow-leafspecific genes was also affected the variation of leaf color.
出处 《园艺学报》 CAS CSCD 北大核心 2014年第11期2215-2224,共10页 Acta Horticulturae Sinica
基金 河北省海外高层次人才百人计划项目(E2013100011) 河北省杰出青年科学基金项目(C2013204118) ‘十二五’农村领域国家科技计划课题(2012AA100202-5) 农业部农业科研杰出人才培养计划项目(2130106) 高等学校博士学科点专项基金项目(20121302110006)
关键词 大白菜 诱变 突变体叶色 HRM 叶绿素荧光 Chinese cabbage EMS mutation leaf color HRM chlorophyll fluorescence
  • 相关文献

参考文献9

二级参考文献39

  • 1梁英,冯力霞,田传远,王帅.高温胁迫对盐藻和塔胞藻叶绿素荧光动力学的影响[J].中国水产科学,2007,14(6):961-968. 被引量:25
  • 2王梅,高志奎,黄瑞虹,王惠英,张文丽,高荣孚.茄子光系统Ⅱ的热胁迫特性[J].应用生态学报,2007,18(1):63-68. 被引量:46
  • 3陈福明.混合法测定叶绿素含量的研究[J].林业科技通讯,1984,(2):4-6. 被引量:11
  • 4Robert M S, Suzaa E H, Davies W J. 1999. Photosynthetic activity of the calyx, green shoulder, pericarp and locular parenchyma of tomato fruit. Journal of Experimental Botany, 50:707 - 718. 被引量:1
  • 5Schreiber Ulrich. 1997. ChlorophylIfluorescence and photosynthetic energy conversion: Simple introductory experiments with the TEACHING-PAM ehlorophy II fluorometer. Heinz Walz GmbH: 23-24. 被引量:1
  • 6Steer B T, Pearson C J. 1976. Photosynthetic translocation in Capsicum annuun. Planta, 128: 155 - 162. 被引量:1
  • 7Suzan E H, Robert M S, Davies W J. 1998. Photosynthetic activities of vegetative and fruit tissues of tomato. Journal of Experimental Botany, 48: 1173 - 1181. 被引量:1
  • 8Aoki K, Wada K. 1996. Temporal and spatial distribution of ferredoxin isoproteins in tomato fuit. Plant Physiology, 12:651 - 657. 被引量:1
  • 9Babani F, Lichtenthaler H K. 1996. Light-induced and age-de-pendent development of chloroplasts in etiolated barley leaves as visualized by determination of photosynthetic pig-ments, CO2 assimilation rates and different kinds of chlorophyll fluorescence ratios. Plant Physiol, 148: 555 - 566. 被引量:1
  • 10Braun G, Malkin S. 1990. Regulation of the imbalance in light excitation between photosystem I[ and photosystem I by cations and by the energized state of the thylakoid membrane. Biochimcaet Biophysica Acta, 1017: 79 - 90. 被引量:1

共引文献149

同被引文献98

引证文献8

二级引证文献52

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部