The Use of Genetic and Gene Technologies in Shaping Modern Rapeseed Cultivars (Brassica napus L.)

被引:24
作者
Ton, Linh Bao [1 ]
Neik, Ting Xiang [2 ]
Batley, Jacqueline [1 ]
机构
[1] Univ Western Australia, Sch Biol Sci, Perth, WA 6009, Australia
[2] Sunway Coll Kuala Lumpur, 2 Jalan Univ, Bandar Sunway 47500, Selangor, Malaysia
基金
澳大利亚研究理事会;
关键词
canola; Brassica napus; genetics; gene technology; genomics; disease resistance; POLYUNSATURATED FATTY-ACIDS; GENOME-WIDE SURVEY; SCLEROTINIA-SCLEROTIORUM; PLASMODIOPHORA-BRASSICAE; RESISTANCE; CLUBROOT; CANOLA; CROP; IDENTIFICATION; ARCHITECTURE;
D O I
10.3390/genes11101161
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Since their domestication, Brassica oilseed species have undergone progressive transformation allied with the development of breeding and molecular technologies. The canola (Brassica napus) crop has rapidly expanded globally in the last 30 years with intensive innovations in canola varieties, providing for a wider range of markets apart from the food industry. The breeding efforts of B. napus, the main source of canola oil and canola meal, have been mainly focused on improving seed yield, oil quality, and meal quality along with disease resistance, abiotic stress tolerance, and herbicide resistance. The revolution in genetics and gene technologies, including genetic mapping, molecular markers, genomic tools, and gene technology, especially gene editing tools, has allowed an understanding of the complex genetic makeup and gene functions in the major bioprocesses of the Brassicales, especially Brassica oil crops. Here, we provide an overview on the contributions of these technologies in improving the major traits of B. napus and discuss their potential use to accomplish new improvement targets.
引用
收藏
页码:1 / 22
页数:21
相关论文
共 180 条
[1]  
ACIL Tasman Pty Ltd, 2007, GM CAN INF PACK
[2]   Current status and future possibilities of molecular genetics techniques in Brassica napus [J].
Afzal, Muhammad ;
Alghamdi, Salem Safer ;
Rahman, Muhammad Habib Ur ;
Ahmad, Awais ;
Farooq, Tahir ;
Alam, Mukhtar ;
Khan, Imtiaz Ali ;
Ullah, Hidayat ;
Nasim, Wajid ;
Fahad, Shah .
BIOTECHNOLOGY LETTERS, 2018, 40 (03) :479-492
[3]   Agrobacterium-Mediated Transformation of the Oryza sativa Thaumatin-Like Protein to Canola (R Line Hyola308) for Enhancing Resistance to Sclerotinia sclerotiorum [J].
Aghazadeh, Rustam ;
Zamani, Mohammadreza ;
Motallebi, Mostafa ;
Moradyar, Mehdi .
IRANIAN JOURNAL OF BIOTECHNOLOGY, 2017, 15 (03) :201-207
[4]   Genetic Variation of Sclerotinia sclerotiorum from Multiple Crops in the North Central United States [J].
Aldrich-Wolfe, Laura ;
Travers, Steven ;
Nelson, Berlin D., Jr. .
PLOS ONE, 2015, 10 (09)
[5]  
[Anonymous], 2007, P 12 INT RAP C
[6]  
[Anonymous], 1935, J JPN BOT
[7]  
[Anonymous], 2018, BIOTECHNOL BIOTEC EQ, DOI DOI 10.1080/13102818.2017.1400401
[8]   Glyphosate Use in the European Agricultural Sector and a Framework for Its Further Monitoring [J].
Antier, Clementine ;
Kudsk, Per ;
Reboud, Xavier ;
Ulber, Lena ;
Baret, Philippe, V ;
Messean, Antoine .
SUSTAINABILITY, 2020, 12 (14)
[9]   Weed management in canola (Brassica napus L): a review of current constraints and future strategies for Australia [J].
Asaduzzaman, Md ;
Pratley, Jim E. ;
Luckett, David ;
Lemerle, Deirdre ;
Wu, Hanwen .
ARCHIVES OF AGRONOMY AND SOIL SCIENCE, 2020, 66 (04) :427-444
[10]   Development of a new field inoculation technique to assess partial resistance in soybean to Sclerotinia sclerotiorum [J].
Auclair, J ;
Boland, GJ ;
Cober, E ;
Graef, GL ;
Steadman, JR ;
Zilka, J ;
Rajcan, I .
CANADIAN JOURNAL OF PLANT SCIENCE, 2004, 84 (01) :57-64