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

被引:0
作者
Hisham Abdelrahman
Mohamed ElHady
Acacia Alcivar-Warren
Standish Allen
Rafet Al-Tobasei
Lisui Bao
Ben Beck
Harvey Blackburn
Brian Bosworth
John Buchanan
Jesse Chappell
William Daniels
Sheng Dong
Rex Dunham
Evan Durland
Ahmed Elaswad
Marta Gomez-Chiarri
Kamal Gosh
Ximing Guo
Perry Hackett
Terry Hanson
Dennis Hedgecock
Tiffany Howard
Leigh Holland
Molly Jackson
Yulin Jin
Karim Khalil
Thomas Kocher
Tim Leeds
Ning Li
Lauren Lindsey
Shikai Liu
Zhanjiang Liu
Kyle Martin
Romi Novriadi
Ramjie Odin
Yniv Palti
Eric Peatman
Dina Proestou
Guyu Qin
Benjamin Reading
Caird Rexroad
Steven Roberts
Mohamed Salem
Andrew Severin
Huitong Shi
Craig Shoemaker
Sheila Stiles
Suxu Tan
Kathy F. J. Tang
机构
[1] School of Fisheries,Department of Biological Sciences
[2] Aquaculture and Aquatic Sciences,Aquaculture Genetics & Breeding Technology Center
[3] Auburn University,Department of Biology
[4] Auburn University,USDA
[5] Environmental Genomics Inc.,ARS
[6] Virginia Institute of Marine Science,NL Wheat & Corn Collections at a Glance GRP
[7] Middle Tennessee State University,Department of Fisheries and Wildlife
[8] Aquatic Animal Health Research Unit,Haskin Shellfish Research Laboratory, Department of Marine and Coastal Sciences
[9] USDA-ARS,Department of Biological Sciences
[10] National Animal Germplasm Program,Department of Biology
[11] USDA-ARS/CGRU,Department of Applied Ecology
[12] 141 Experimental Station Road,USDA ARS Office of National Programs
[13] Center for Aquaculture Technologies,Genome Informatics Facility, Office of Biotechnology
[14] Oregon State University,School of Animal and Comparative Biomedical Sciences
[15] Department of Fisheries,Aquatic Germplasm and Genetic Resources Center
[16] Animal & Veterinary Science,Aquaculture Genetics and Breeding Laboratory
[17] Rutgers University,Key Laboratory of Experimental Marine Biology, Institute of Oceanology
[18] Department of Genetics,undefined
[19] Cell Biology and Development,undefined
[20] University of Southern California,undefined
[21] Taylor Shellfish Farms,undefined
[22] University of Maryland,undefined
[23] National Center for Cool and Cold Water Aquaculture,undefined
[24] Agricultural Research Service,undefined
[25] United States Department of Agriculture,undefined
[26] Troutlodge,undefined
[27] USDA ARS NEA NCWMAC Shellfish Genetics at the University Rhode Island,undefined
[28] North Carolina State University,undefined
[29] George Washington Carver Center Room 4-2106,undefined
[30] School of Aquatic and Fishery Sciences,undefined
[31] University of Washington,undefined
[32] Iowa State University,undefined
[33] USDOC/NOAA,undefined
[34] National Marine Fisheries Service,undefined
[35] NEFSC,undefined
[36] Milford Laboratory,undefined
[37] University of Arizona,undefined
[38] School of Renewable Natural Resources,undefined
[39] Louisiana State University Agricultural Center,undefined
[40] Stonebridge breeding Ltd,undefined
[41] The Ohio State University South Centers,undefined
[42] Chinese Academy of Sciences,undefined
[43] Hybrid Catfish Company,undefined
来源
BMC Genomics | / 18卷
关键词
Aquaculture; Genetic resources; Genome; Transcriptome; QTL; RNA-Seq; SNP; Fish; Shellfish;
D O I
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中图分类号
学科分类号
摘要
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.
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