Novel quantitative trait loci from an interspecific Brassica rapa derivative improve pod shatter resistance in Brassica napus

被引:4
|
作者
Raman, Harsh [1 ]
Raman, Rosy [1 ]
Sharma, Niharika [2 ]
Cui, Xiaobo [3 ]
Mcvittie, Brett [1 ]
Qiu, Yu [1 ]
Zhang, Yuanyuan [3 ]
Hu, Qiong [3 ]
Liu, Shengyi [3 ]
Gororo, Nelson [4 ]
机构
[1] Wagga Wagga Agr Inst, New South Wales NSW Dept Primary Ind, Wagga Wagga, NSW, Australia
[2] Orange Agr Inst, New South Wales NSW Dept Primary Ind, Orange, NSW, Australia
[3] Chinese Acad Agr Sci, Oil Crops Res Inst, Wuhan, Hubei, Peoples R China
[4] Nuseed Pty Ltd, Horsham, Vic, Australia
来源
关键词
pod shattering; domestication; genetic mapping; canola; genetic analysis; sequence variation; SEED DISPERSAL; ARABIDOPSIS-THALIANA; NATURAL VARIATION; SILIQUA STRENGTH; CELL-SEPARATION; FLOWERING TIME; FRUIT; GENE; INDEHISCENT; DEHISCENCE;
D O I
10.3389/fpls.2023.1233996
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Pod shatter is a trait of agricultural relevance that ensures plants dehisce seeds in their native environment and has been subjected to domestication and selection for non-shattering types in several broadacre crops. However, pod shattering causes a significant yield reduction in canola (Brassica napus L.) crops. An interspecific breeding line BC95042 derived from a B. rapa/B. napus cross showed improved pod shatter resistance (up to 12-fold than a shatter-prone B. napus variety). To uncover the genetic basis and improve pod shatter resistance in new varieties, we analysed F2 and F2:3 derived populations from the cross between BC95042 and an advanced breeding line, BC95041, and genotyped with 15,498 DArTseq markers. Through genome scan, interval and inclusive composite interval mapping analyses, we identified seven quantitative trait loci (QTLs) associated with pod rupture energy, a measure for pod shatter resistance or pod strength, and they locate on A02, A03, A05, A09 and C01 chromosomes. Both parental lines contributed alleles for pod shatter resistance. We identified five pairs of significant epistatic QTLs for additive x additive, additive dominance and dominance x dominance interactions between A01/C01, A03/A07, A07/C03, A03/C03, and C01/C02 chromosomes for rupture energy. QTL effects on A03/A07 and A01/C01 were in the repulsion phase. Comparative mapping identified several candidate genes (AG, ABI3, ARF3, BP1, CEL6, FIL, FUL, GA2OX2, IND, LATE, LEUNIG, MAGL15, RPL, QRT2, RGA, SPT and TCP10) underlying main QTL and epistatic QTL interactions for pod shatter resistance. Three QTLs detected on A02, A03, and A09 were near the FUL (FRUITFULL) homologues BnaA03g39820D and BnaA09g05500D. Focusing on the FUL, we investigated putative motifs, sequence variants and the evolutionary rate of its homologues in 373 resequenced B. napus accessions of interest. BnaA09g05500D is subjected to purifying selection as it had a low Ka/Ks ratio compared to other FUL homologues in B. napus. This study provides a valuable resource for genetic improvement for yield through an understanding of the genetic mechanism controlling pod shatter resistance in Brassica species.
引用
收藏
页数:17
相关论文
共 50 条
  • [21] A candidate gene-based association study of introgressed pod shatter resistance in Brassica napus
    Dhaliwal, I
    Banga, S.
    Kumar, N.
    Salisbury, P.
    Banga, S. S.
    INDIAN JOURNAL OF TRADITIONAL KNOWLEDGE, 2021, 20 (01): : 267 - 276
  • [22] Unraveling the Complex Trait of Crop Yield With Quantitative Trait Loci Mapping in Brassica napus
    Shi, Jiaqin
    Li, Ruiyuan
    Qiu, Dan
    Jiang, Congcong
    Long, Yan
    Morgan, Colin
    Bancroft, Ian
    Zhao, Jianyi
    Meng, Jinling
    GENETICS, 2009, 182 (03) : 851 - 861
  • [23] Comparative quantitative trait loci for silique length and seed weight in Brassica napus
    Ying Fu
    Dayong Wei
    Hongli Dong
    Yajun He
    Yixin Cui
    Jiaqin Mei
    Huafang Wan
    Jiana Li
    Rod Snowdon
    Wolfgang Friedt
    Xiaorong Li
    Wei Qian
    Scientific Reports, 5
  • [24] Comparative quantitative trait loci for silique length and seed weight in Brassica napus
    Fu, Ying
    Wei, Dayong
    Dong, Hongli
    He, Yajun
    Cui, Yixin
    Mei, Jiaqin
    Wan, Huafang
    Li, Jiana
    Snowdon, Rod
    Friedt, Wolfgang
    Li, Xiaorong
    Qian, Wei
    SCIENTIFIC REPORTS, 2015, 5
  • [25] Oilseed rape (Brassica napus L.) pod shatter resistance and its relationship with whole plant and pod characteristics
    Qing, Yiren
    Li, Yaoming
    Xu, Lizhang
    Ma, Zheng
    Tan, Xiaoli
    Wang, Zheng
    INDUSTRIAL CROPS AND PRODUCTS, 2021, 166
  • [26] RECONSTRUCTION OF ALLOPOLYPLOID BRASSICAS THROUGH NONHOMOLOGOUS RECOMBINATION - INTROGRESSION OF RESISTANCE TO POD SHATTER IN BRASSICA-NAPUS
    PRAKASH, S
    CHOPRA, VL
    GENETICS RESEARCH, 1990, 56 (01) : 1 - 2
  • [27] Increased resistance to pod shatter is associated with changes in the vascular structure in pods of a resynthesized Brassica napus line
    Child, RD
    Summers, JE
    Babij, J
    Farrent, JW
    Bruce, DM
    JOURNAL OF EXPERIMENTAL BOTANY, 2003, 54 (389) : 1919 - 1930
  • [28] Quantitative trait loci for flowering time and morphological traits in multiple populations of Brassica rapa
    Lou, Ping
    Zhao, Jianjun
    Kim, Jung Sun
    Shen, Shuxing
    Del Carpio, Dunia Pino
    Song, Xiaofei
    Jin, Mina
    Vreugdenhil, Dick
    Wang, Xiaowu
    Koornneef, Maarten
    Bonnema, Guusje
    JOURNAL OF EXPERIMENTAL BOTANY, 2007, 58 (14) : 4005 - 4016
  • [29] Detection of quantitative trait loci controlling morphological traits in Brassica rapa L.
    Kubo, Nakao
    Saito, Masanori
    Tsukazaki, Hikaru
    Kondo, Tomohiro
    Matsumoto, Satoru
    Hirai, Masashi
    BREEDING SCIENCE, 2010, 60 (02) : 164 - 171
  • [30] Quantitative trait loci (QTL) mapping of silique length and petal colour in Brassica rapa
    Kebede, Berisso
    Rahman, Habibur
    PLANT BREEDING, 2014, 133 (05) : 609 - 614