数字农科院2.0

Fine mapping of the fiber length-related qFL-A12-2 QTL through the use of chromosome segment substitution lines and candidate gene validation

文献类型: 外文期刊

作者: Xianghui Xiao;Ruixian Liu;Yongbo Wang;Juwu Gong;Pengtao Li;Wankui Gong;Rui Yang;Aiying Liu;Qun Ge;Haibo Zhang;Yu Chen;Zhihao Sun;Yangming Liu;Renhai Peng;Haihong Shang;Junwen Li;Haoliang Yan;Jingtao Pan;Yuzhen Shi;Youlu Yuan;Quanwei Lu

作者机构:

关键词: BSA;Fiber length;Fine mapping;GhALMT12_A12;Single segment introgression line

期刊名称: Industrial Crops and Products

ISSN: 0926-6690

年卷期: 2024 年 220 卷

页码:

收录情况: SCIE(2024版) ; ; EI(2024版)

摘要: Fiber length (FL) is one of the primary factors used to determine the quality of cotton fibers, serving as a primary target for the domestication and breeding of cotton plants through artificial selection. While many studies have identified quantitative trait loci (QTLs) associated with fiber length, few efforts have explored the mechanisms underlying the development of cotton fibers through fine mapping or the validation of related candidate genes. In a previous study, qFL-A12–2 was identified as a QTL on chromosome A12 that was associated with higher levels of fiber quality in the MBI7747 (BC4F3:5) chromosome segment substitution line (CSSL). For fine mapping the QTL, a single-segment substitution line (CSSL-023) screened from BC5F2 was backcrossed with the recurrent parental CCRI45 line to establish a large segregation population. Subsequently, 2092 individual BC6F2 specimens were utilized in a fine-mapping effort employing highly dense simple sequence markers, which narrowed qFL-A12–2 to a 0.65 Mb genomic region in Gossypium hirsutum containing 12 annotated genes. The most promising candidate gene within this interval was identified through qRT-PCR and complete coding sequence comparative analyses as GhALMT12_A12, which encodes an aluminum-activated malate transporter. Two non-synonymous mutations were identified when the protein-coding portions of GhALMT12_A12 were compared among the Hai1, MBI7747, and CCRI45 varieties. Verification of GhALMT12_A12 silencing by VIGS in cotton revealed that the FL of silenced plants was significantly shorter than that of the control plants. When overexpressed, GhALMT12_A12 significantly enhanced Arabidopsis resistance to salt stress and drought conditions through altering ion transport. The outcomes underscore the notable function of GhALMT12_A12 in developing cotton fibers, providing a fundamental basis for scholars aiming at augmenting the length of cotton fibers.

分类号:

  • 相关文献

[1]小麦矮秆新基因的SSR标记. 石涛,王洪刚,何方,邓世民,高居荣. 2008

[2]cDNA-AFLP结合BSA研究马铃薯晚疫病菌小种特异无毒基因差异表达片段. 郭军,屈冬玉,王晓武,金黎平,谢开云,Rays Jiang,Francine Govers. 2004

[3]玉米雄性不育基因(ms30)的RFLP作图. 梁业红,周洪生,蒋琬茹. 2000

[4]猪带绦虫六钩蚴重组蛋白TSOL18与BSA偶连蛋白的制备. 张少华,李克生,景志忠,杜惠芬,骆学农,才学鹏. 2007

[5]梨果实酸/低酸性状的SSR分析. 刘金义,崔海荣,王龙,王新卫,杨健. 2011

[6]大白菜中与芜菁花叶病毒(TuMV)感病基因连锁的AFLP标记. 韩和平,孙日飞,张淑江,李菲,章世蕃,钮心恪. 2004

[7]小麦耐盐基因的标记和标记的克隆. 翁跃进,陈道明. 2002

[8]超小氧化石墨烯-氧化铁纳米粒子复合材料的可控制备及磁共振成像研究. 王海明,曹玉华,闫丹,马宇飞,张智军,孙世琪,郭慧琛. 2013

[9]基于BSA分析法的分子标记基因定位技术在农作物中的应用. 白凤虎,李德芳,陈安国,唐慧娟. 2006

[10]甜瓜果皮颜色遗传分析及基因定位. 欧点点,赵光伟,贺玉花,王平勇,徐志红,孔维虎,张健,徐永阳. 2019

[11]利用RAPD-BSA法筛选亚麻耐渍基因的分子标记. 张晓平,薛召东,邱财生,郝冬梅,黄海燕,王玉富. 2007

[12]AFLP Molecular Markers Linked to the Pear Scab Resistance Gene. Dong, Xingguang,Lin, Shenghua,Wang, Fei,Wang, Zhigang,Fan, Li,Fang, Chengquan. 2010

[13]Study on the processing of stretch-broken ramie yarns in a cotton spinning system. Guan, Saipeng,Zhong, Hai,Yang, Jianping,Yu, Chongwen,Yu, Chongwen.

[14]Identification of a new resistance gene Pi-Da(t) from Dacca6 against rice blast fungus (Magnaporthe oryzae) in Jin23B background. Zheng, Y. M.,Liu, Y. Q.,Zhao, M. F.,Shi, B. H.,Zhang, J. H.,Vera Cruz, C. M.,Zheng, T. Q..

[15]Effects of fiber wax and cellulose content on colored cotton fiber quality. Zhaoe Pan,Donglei Sun,Junling Sun,Zhongli Zhou,Yinhua Jia,Baoyin Pang,Zhiying Ma,Xiongming Du.

[16]A cDNA-AFLP based strategy to identify transcripts associated with avirulence in Phytophthora infestans. Guo, J,Jiang, RHY,Kamphuis, LG,Govers, F. 2006

[17]Spatial distribution of potassium uptake across the cotton plant affects fiber length. Yuan Chen,Yabing Li,Dapeng Hu,Xiang Zhang,Yujin Wen,Dehua Chen.

[18]Bulked segregant CGT-Seq-facilitated map-based cloning of a powdery mildew resistance gene originating from wild emmer wheat (Triticum dicoccoides). Qiuhong Wu,Fei Zhao,Yongxing Chen,Panpan Zhang,Huaizhi Zhang,Guanghao Guo,Jingzhong Xie,Lingli Dong,Ping Lu,Miaomiao Li,Shengwei Ma,Tzion Fahima,Eviatar Nevo,Hongjie Li,Yijing Zhang,Zhiyong Liu. 2021

[19]Identification of candidate genes associated with slow-melting flesh trait in peach using bulked segregant analysis and RNA-seq. Chen Changwen,Guo Jian,Cao Ke,Zhu Gengrui,Fang Weichao,Wang Xinwei,Li Yong,Wu Jinlong,Xu Qiang,Wang Lirong. 2021

[20]Identification of Candidate Cotton Genes Associated With Fiber Length Through Quantitative Trait Loci Mapping and RNA-Sequencing Using a Chromosome Segment Substitution Line. Quanwei Lu,Xianghui Xiao,Juwu Gong,Pengtao Li,Yan Zhao,Jiajia Feng,Renhai Peng,Yuzhen Shi,Youlu Yuan. 2021

作者其他论文 更多>>