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美国的水产养殖基因组学、遗传学与育种:现状、挑战及未来研究重点

Aquaculture genomics, genetics and breeding in the United States: current status, challenges, and priorities for future research.

作者信息

Abdelrahman Hisham, ElHady Mohamed, Alcivar-Warren Acacia, Allen Standish, Al-Tobasei Rafet, Bao Lisui, Beck Ben, Blackburn Harvey, Bosworth Brian, Buchanan John, Chappell Jesse, Daniels William, Dong Sheng, Dunham Rex, Durland Evan, Elaswad Ahmed, Gomez-Chiarri Marta, Gosh Kamal, Guo Ximing, Hackett Perry, Hanson Terry, Hedgecock Dennis, Howard Tiffany, Holland Leigh, Jackson Molly, Jin Yulin, Khalil Karim, Kocher Thomas, Leeds Tim, Li Ning, Lindsey Lauren, Liu Shikai, Liu Zhanjiang, Martin Kyle, Novriadi Romi, Odin Ramjie, Palti Yniv, Peatman Eric, Proestou Dina, Qin Guyu, Reading Benjamin, Rexroad Caird, Roberts Steven, Salem Mohamed, Severin Andrew, Shi Huitong, Shoemaker Craig, Stiles Sheila, Tan Suxu, Tang Kathy F J, Thongda Wilawan, Tiersch Terrence, Tomasso Joseph, Prabowo Wendy Tri, Vallejo Roger, van der Steen Hein, Vo Khoi, Waldbieser Geoff, Wang Hanping, Wang Xiaozhu, Xiang Jianhai, Yang Yujia, Yant Roger, Yuan Zihao, Zeng Qifan, Zhou Tao

机构信息

School of Fisheries, Aquaculture and Aquatic Sciences, Auburn University, Auburn, AL, 36849, USA.

Department of Biological Sciences, Auburn University, Auburn, AL, 36849, USA.

出版信息

BMC Genomics. 2017 Feb 20;18(1):191. doi: 10.1186/s12864-017-3557-1.

Abstract

Advancing the production efficiency and profitability of aquaculture is dependent upon the ability to utilize a diverse array of genetic resources. The ultimate goals of aquaculture genomics, genetics and breeding research are to enhance aquaculture production efficiency, sustainability, product quality, and profitability in support of the commercial sector and for the benefit of consumers. In order to achieve these goals, it is important to understand the genomic structure and organization of aquaculture species, and their genomic and phenomic variations, as well as the genetic basis of traits and their interrelationships. In addition, it is also important to understand the mechanisms of regulation and evolutionary conservation at the levels of genome, transcriptome, proteome, epigenome, and systems biology. With genomic information and information between the genomes and phenomes, technologies for marker/causal mutation-assisted selection, genome selection, and genome editing can be developed for applications in aquaculture. A set of genomic tools and resources must be made available including reference genome sequences and their annotations (including coding and non-coding regulatory elements), genome-wide polymorphic markers, efficient genotyping platforms, high-density and high-resolution linkage maps, and transcriptome resources including non-coding transcripts. Genomic and genetic control of important performance and production traits, such as disease resistance, feed conversion efficiency, growth rate, processing yield, behaviour, reproductive characteristics, and tolerance to environmental stressors like low dissolved oxygen, high or low water temperature and salinity, must be understood. QTL need to be identified, validated across strains, lines and populations, and their mechanisms of control understood. Causal gene(s) need to be identified. Genetic and epigenetic regulation of important aquaculture traits need to be determined, and technologies for marker-assisted selection, causal gene/mutation-assisted selection, genome selection, and genome editing using CRISPR and other technologies must be developed, demonstrated with applicability, and application to aquaculture industries.Major progress has been made in aquaculture genomics for dozens of fish and shellfish species including the development of genetic linkage maps, physical maps, microarrays, single nucleotide polymorphism (SNP) arrays, transcriptome databases and various stages of genome reference sequences. This paper provides a general review of the current status, challenges and future research needs of aquaculture genomics, genetics, and breeding, with a focus on major aquaculture species in the United States: catfish, rainbow trout, Atlantic salmon, tilapia, striped bass, oysters, and shrimp. While the overall research priorities and the practical goals are similar across various aquaculture species, the current status in each species should dictate the next priority areas within the species. This paper is an output of the USDA Workshop for Aquaculture Genomics, Genetics, and Breeding held in late March 2016 in Auburn, Alabama, with participants from all parts of the United States.

摘要

提高水产养殖的生产效率和盈利能力取决于利用多种遗传资源的能力。水产养殖基因组学、遗传学和育种研究的最终目标是提高水产养殖的生产效率、可持续性、产品质量和盈利能力,以支持商业部门并造福消费者。为了实现这些目标,了解水产养殖物种的基因组结构和组织、它们的基因组和表型变异,以及性状的遗传基础及其相互关系非常重要。此外,了解基因组、转录组、蛋白质组、表观基因组和系统生物学水平的调控机制和进化保守性也很重要。利用基因组信息以及基因组与表型组之间的信息,可以开发标记/因果突变辅助选择、基因组选择和基因组编辑技术,用于水产养殖。必须提供一套基因组工具和资源,包括参考基因组序列及其注释(包括编码和非编码调控元件)、全基因组多态性标记、高效基因分型平台、高密度和高分辨率连锁图谱,以及包括非编码转录本在内的转录组资源。必须了解重要生产性能和生产性状的基因组和遗传控制,如抗病性、饲料转化效率、生长速度、加工产量、行为、繁殖特性,以及对低溶解氧、高或低水温及盐度等环境应激源的耐受性。需要鉴定数量性状位点(QTL),在不同品系、品系和群体中进行验证,并了解其控制机制。需要鉴定因果基因。必须确定重要水产养殖性状的遗传和表观遗传调控,开发标记辅助选择、因果基因/突变辅助选择、基因组选择以及使用CRISPR和其他技术的基因组编辑技术,证明其适用性,并应用于水产养殖行业。包括遗传连锁图谱、物理图谱、微阵列、单核苷酸多态性(SNP)阵列、转录组数据库和基因组参考序列的各个阶段在内,几十种鱼类和贝类物种的水产养殖基因组学已取得重大进展。本文对水产养殖基因组学、遗传学和育种的现状、挑战和未来研究需求进行了综述,重点关注美国的主要水产养殖物种:鲶鱼、虹鳟鱼、大西洋鲑鱼、罗非鱼、条纹鲈、牡蛎和虾。虽然不同水产养殖物种的总体研究重点和实际目标相似,但每个物种的现状应决定该物种内的下一个优先领域。本文是2016年3月下旬在美国阿拉巴马州奥本举行的美国农业部水产养殖基因组学、遗传学和育种研讨会的成果,与会者来自美国各地。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6e13/5319170/4fefdec24c3d/12864_2017_3557_Fig1_HTML.jpg

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