The Roslin Institute and Royal (Dick) School of Veterinary Studies, University of Edinburgh, Easter Bush Campus, UK.
Sustainable Aquaculture Futures, Biosciences, College of Life and Environmental Sciences, University of Exeter, Exeter, UK.
Nat Rev Genet. 2020 Jul;21(7):389-409. doi: 10.1038/s41576-020-0227-y. Epub 2020 Apr 16.
Aquaculture is the fastest-growing farmed food sector and will soon become the primary source of fish and shellfish for human diets. In contrast to crop and livestock production, aquaculture production is derived from numerous, exceptionally diverse species that are typically in the early stages of domestication. Genetic improvement of production traits via well-designed, managed breeding programmes has great potential to help meet the rising seafood demand driven by human population growth. Supported by continuous advances in sequencing and bioinformatics, genomics is increasingly being applied across the broad range of aquaculture species and at all stages of the domestication process to optimize selective breeding. In the future, combining genomic selection with biotechnological innovations, such as genome editing and surrogate broodstock technologies, may further expedite genetic improvement in aquaculture.
水产养殖是增长最快的养殖食品部门,很快将成为人类饮食中鱼类和贝类的主要来源。与作物和畜牧业生产相比,水产养殖生产来自许多非常多样化的物种,这些物种通常处于驯化的早期阶段。通过精心设计和管理的繁殖计划,对生产性状进行遗传改良,具有很大的潜力来满足人口增长带来的海鲜需求的增长。随着测序和生物信息学的不断进步,基因组学越来越多地应用于广泛的水产养殖物种和驯化过程的各个阶段,以优化选择性繁殖。未来,将基因组选择与生物技术创新(如基因组编辑和替代亲鱼技术)相结合,可能会进一步加快水产养殖的遗传改良。