数字农科院2.0

Identification of Genomic Regions Associated with Vine Growth and Plant Height of Soybean

文献类型: 外文期刊

作者: Lu, Yipeng;Zhang, Jiaming;Guo, Xiaoyang;Chen, Jingjing;Chang, Ruzhen;Guan, Rongxia;Qiu, Lijuan

作者机构:

关键词: wild soybean;vining growth;plant height;QTL

期刊名称: INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES

ISSN:

年卷期: 2022 年 23 卷 10 期

页码:

摘要: Vining growth (VG) and high plant height (PH) are the physiological traits of wild soybean that preclude their utilization for domesticated soybean breeding and improvement. To identify VG- and PH-related quantitative trait loci (QTLs) in different genetic resources, two populations of recombinant inbred lines (RILs) were developed by crossing a cultivated soybean, Zhonghuang39 (ZH39), with two wild soybean accessions, NY27-38 and NY36-87. Each line from the two crosses was evaluated for VG and PH. Three QTLs for VG and three for PH, detected in the ZH39 x NY27-38 population of the RILs, co-located on chromosomes 2, 17 and 19. The VG- and PH-related QTL in the ZH39 x NY36-87 population co-located on chromosome 19. A common QTL shared by the two populations was located on chromosome 19, suggesting that this major QTL was consistently selected for in different genetic backgrounds. The results suggest that different loci are involved in the domestication or adaptations of soybean of various genetic backgrounds. The molecular markers presented here would benefit the fine mapping and cloning of candidate genes underlying the VG and PH co-localized regions and thus facilitate the utilization of wild resources in breeding by avoiding undesirable traits.

分类号:

  • 相关文献

[1]Stability of QTL Across Environments and QTL-by-Environment Interactions for Plant and Ear Height in Maize. Zhang Yan,Li Yong-xiang,Wang Yang,Liu Zhi-zhai,Peng Bo,Tan Wei-wei,Wang Di,Shi Yun-su,Song Yan-chun,Wang Tian-yu,Li Yu,Liu Cheng,Sun Bao-cheng,Liu Zhi-zhai. 2010

[2]QTL Analysis of Spike Morphological Traits and Plant Height in Winter Wheat (Triticum aestivum L.) Using a High-Density SNP and SSR-Based Linkage Map. Zhai, Huijie,Feng, Zhiyu,Li, Jiang,Liu, Xinye,Ni, Zhongfu,Sun, Qixin,Zhai, Huijie,Feng, Zhiyu,Li, Jiang,Liu, Xinye,Ni, Zhongfu,Sun, Qixin,Xiao, Shihe. 2016

[3]Main Effect QTL with Dominance Determines Heterosis for Dynamic Plant Height in Upland Cotton. Lianguang Shang,Lingling Ma,Yumei Wang,Ying Su,Xiaocui Wang,Yuhua Li,Abdugheni Abduweli,Shihu Cai,Fang Liu,Kunbo Wang,Jinping Hua. 2016

[4]The way to a more precise sheath blight resistance QTL in rice. Zeng, Yuxiang,Ji, Zhijuan,Yang, Changdeng.

[5]QTL analysis for plant height and fine mapping of two environmentally stable QTLs with major effects in soybean. Yu TIAN,Lei YANG,Hong feng LU,Bo ZHANG,Yan fei LI,Chen LIU,Tian li GE,Yu lin LIU,Jia nan HAN,Ying hui LI,Li juan QIU. 2022

[6]Identification and characterization of long-InDels through whole genome resequencing to facilitate fine-mapping of a QTL for plant height in soybean (Glycine max L. Merr.). Chen LIU,Yu TIAN,Zhang xiong LIU,Yong zhe GU,Bo ZHANG,Ying hui LI,Jie NA,Li juan QIU. 2022

[7]Genetic analysis and mapping of dwarf gene without yield penalty in a γ-ray-induced wheat mutant. Qingguo Wang,Hongchun Xiong,Huijun Guo,Linshu Zhao,Yongdun Xie,Jiayu Gu,Shirong Zhao,Yuping Ding,Luxiang Liu. 2023

[8]Genome and transcriptome analysis provide insights into the genetics and breeding of Salix suchowensis growth traits. Wei Liu,Shaobo Gu,Mingjia Zhu,Yu Han,Xiaogang Dai,Huaitong Wu,Tongming Yin,Linjie Guo,Landi Feng,Yanjun Zan,Jianquan Liu. 2025

[9]Identification of a novel variant lacking group A soyasaponin in a Chinese wild soybean (Glycine soja Sieb. & Zucc.): implications for breeding significance. Takahashi, Yuya,Li, Xiang-Hua,Wang, Ke-Jing,Tsukamoto, Chigen. 2016

[10]Genetic diversity and geographical peculiarity of Tibetan wild soybean (Glycine soja). Wang, Ke-Jing,Li, Xiang-Hua. 2012

[11]Microsatellite markers reveal genetic diversity of wild soybean in different habitats and implications for conservation strategies (Glycine soja) in China. Wang, Ke-Jing,Li, Xiang-Hu,Yan, Mao-Fen. 2014

[12]Genetic diversity and gene flow dynamics revealed in the rare mixed populations of wild soybean (Glycine soja) and semi-wild type (Glycine gracilis) in China. Wang, Ke-Jing,Li, Xiang-Hua. 2013

[13]Identification of MicroRNAs in Wild Soybean (Glycine soja). Chen, Rui,Hu, Zheng,Zhang, Hui. 2009

[14]A preliminary comparative evaluation of genetic diversity between Chinese and Japanese wild soybean (Glycine soja) germplasm pools using SSR markers. Wang, Ke-Jing,Takahata, Yoshihito. 2007

[15]The possible origin of thick stem in Chinese wild soybean (Glycine soja). Wang, Ke-Jing,Li, Xiang-Hua. 2014

[16]Categories and components of soyasaponin in the Chinese wild soybean (Glycine soja) genetic resource collection. Takahashi, Yuya,Li, Xiang-Hua,Wang, Ke-Jing,Tsukamoto, Chigen.

[17]Population structure of the wild soybean (Glycine soja) in China: implications from microsatellite analyses. Li, Yinghui,Qiu, Lijuan,Guo, Juan,Wang, Yunsheng,Chen, Jianjun,Wang, Ying,Liu, Yifei,Huang, Hongwen.

[18]Genetic characterization and gene flow in different geographical-distance neighbouring natural populations of wild soybean (Glycine soja Sieb. & Zucc.) and implications for protection from GM soybeans. Wang, Ke-Jing,Li, Xiang-Hua.

[19]The identification of presence/absence variants associated with the apparent differences of growth period structures between cultivated and wild soybeans. Li Yan-fei,Hong Hui-long,Li Ying-hui,Ma Yan-song,Chang Ru-zhen,Qiu Li-juan,Hong Hui-long,Ma Yan-song.

[20]Phylogenetic relationships, interspecific hybridization and origin of some rare characters of wild soybean in the subgenus Glycine soja in China. Wang, Ke-Jing,Li, Xiang-Hua.

作者其他论文 更多>>