油菜是我国重要的油料作物,常年种植面积约1亿亩,每年可生产约450万t菜籽油,占国内植物油总消费量的19.7%。与发达国家相比,我国油菜产业主要问题是产量低、品质差,年进口油菜籽约500万t。油菜基因组测序的完成,极大地推动了油菜育种行...油菜是我国重要的油料作物,常年种植面积约1亿亩,每年可生产约450万t菜籽油,占国内植物油总消费量的19.7%。与发达国家相比,我国油菜产业主要问题是产量低、品质差,年进口油菜籽约500万t。油菜基因组测序的完成,极大地推动了油菜育种行业的科研工作。据统计(Web of Science检索),2017年与油菜育种相关的SCI论文共有728篇,其中完全由中国学者完成的181篇,与其他国家合作完成的62篇,合计约占全世界的33.38%,但高水平论文数量还有待提高。2017年的研究进展主要集中在油菜籽含油量及品质、油菜籽产量、基因组驯化、雄性不育、非生物胁迫及抗病育种等方面。这些成果将积极地推动油菜育种产业的高产、优质及多元化发展,为我国油菜分子设计育种的实现提供了重要的理论基础。展开更多
As an important oil crop and a potential bioenergy crop, Brassica napus L. is becoming a model plant for basic research on seed lipid biosynthesis as well as seed oil content, which has always been the key breeding ob...As an important oil crop and a potential bioenergy crop, Brassica napus L. is becoming a model plant for basic research on seed lipid biosynthesis as well as seed oil content, which has always been the key breeding objective. In this review, we present current progress in understanding of the regulation of oil content in B. napus, including genetics, biosynthesis pathway,transcriptional regulation, maternal effects and QTL analysis. Furthermore, the history of breeding for high oil content in B. napus is summarized and the progress in breeding ultra-high oil content lines is described. Finally,prospects for breeding high oil content B. napus cultivars are outlined.展开更多
To address the global demand for rapeseed while considering farmers’profit,we face the challenges of making a quantum leap in seed yield and,at the same time,reducing yield loss due to biotic and abiotic stresses.We ...To address the global demand for rapeseed while considering farmers’profit,we face the challenges of making a quantum leap in seed yield and,at the same time,reducing yield loss due to biotic and abiotic stresses.We also face the challenge of efficiently applying new transformative biotechnology tools such as gene editing and breeding by genome design to increase rapeseed productivity and profitability.In this Perspective,we review advances in research on the physiological and genetic bases of both stress factorsaffected yield stability and seed yield potential,focusing on source–sink relationships and allocation of photosynthetic assimilates to vegetative growth and seed development.We propose research directions and highlight the role of plant architecture in the relative contributions of the root system,leaves,and pods to seed yield.We call for de novo design of new rapeseed crops.We review trait variation in existing germplasm and biotechnologies available for crop design.Finally,we discuss opportunities to apply fundamental knowledge and key germplasm to rapeseed production and propose an ideotype for de novo design of future rapeseed cultivars.展开更多
文摘油菜是我国重要的油料作物,常年种植面积约1亿亩,每年可生产约450万t菜籽油,占国内植物油总消费量的19.7%。与发达国家相比,我国油菜产业主要问题是产量低、品质差,年进口油菜籽约500万t。油菜基因组测序的完成,极大地推动了油菜育种行业的科研工作。据统计(Web of Science检索),2017年与油菜育种相关的SCI论文共有728篇,其中完全由中国学者完成的181篇,与其他国家合作完成的62篇,合计约占全世界的33.38%,但高水平论文数量还有待提高。2017年的研究进展主要集中在油菜籽含油量及品质、油菜籽产量、基因组驯化、雄性不育、非生物胁迫及抗病育种等方面。这些成果将积极地推动油菜育种产业的高产、优质及多元化发展,为我国油菜分子设计育种的实现提供了重要的理论基础。
基金This work was supported by the High-technology Research and Development Program of China (No. 2004AA211150) and Ph.D Education Foundation from the Ministry of Education of China (No. 20020504009).
基金supported by the National Key Basic Research Program of China (2015CB150200)the National High Technology Research and Development Program of China (2013AA102602)
文摘As an important oil crop and a potential bioenergy crop, Brassica napus L. is becoming a model plant for basic research on seed lipid biosynthesis as well as seed oil content, which has always been the key breeding objective. In this review, we present current progress in understanding of the regulation of oil content in B. napus, including genetics, biosynthesis pathway,transcriptional regulation, maternal effects and QTL analysis. Furthermore, the history of breeding for high oil content in B. napus is summarized and the progress in breeding ultra-high oil content lines is described. Finally,prospects for breeding high oil content B. napus cultivars are outlined.
基金the National Natural Science Foundation of China(U20A2034 and 32070217)the Agricultural Science and Technology Innovation Program of the Chinese Academy of Agricultural Sciences(CAAS-ZDRW202105 and CAASASTIP-2013-OCRI)。
文摘To address the global demand for rapeseed while considering farmers’profit,we face the challenges of making a quantum leap in seed yield and,at the same time,reducing yield loss due to biotic and abiotic stresses.We also face the challenge of efficiently applying new transformative biotechnology tools such as gene editing and breeding by genome design to increase rapeseed productivity and profitability.In this Perspective,we review advances in research on the physiological and genetic bases of both stress factorsaffected yield stability and seed yield potential,focusing on source–sink relationships and allocation of photosynthetic assimilates to vegetative growth and seed development.We propose research directions and highlight the role of plant architecture in the relative contributions of the root system,leaves,and pods to seed yield.We call for de novo design of new rapeseed crops.We review trait variation in existing germplasm and biotechnologies available for crop design.Finally,we discuss opportunities to apply fundamental knowledge and key germplasm to rapeseed production and propose an ideotype for de novo design of future rapeseed cultivars.