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1.
Anim Genet ; 51(6): 899-909, 2020 Dec.
Article in English | MEDLINE | ID: mdl-33006182

ABSTRACT

The presence of intermuscular bones in fisheries products limits the consumption and commercialization potential of many fish species, including tambaqui (Colossoma macropomum). These bones have caused medical emergencies and are an undesirable characteristic for fish farming because their removal is labor-intensive during fish processing. Despite the difficulty in identifying genes related to the lack of intermuscular bone in diverse species of fish, the discovery of individuals lacking intermuscular bones in a Neotropical freshwater characiform fish has provided a unique opportunity to delve into the genetic mechanisms underlying the pathways of intermuscular bone formation. In this study, we carried out a GWAS among boneless and wt tambaqui populations to identify markers associated with a lack of intermuscular bone. After analyzing 11 416 SNPs in 360 individuals (12 boneless and 348 bony), we report 675 significant (Padj  < 0.003) associations for this trait. Of those, 13 associations were located near candidate genes related to the reduction of bone mass, promotion of bone formation, inhibition of bone resorption, central control of bone remodeling, bone mineralization and other related functions. To the best of our knowledge, for the first time, we have successfully identified genes related to a lack of intermuscular bones using GWAS in a non-model species.


Subject(s)
Bone and Bones/anatomy & histology , Characiformes/genetics , Genetic Association Studies/veterinary , Osteogenesis/genetics , Animals , Brazil , Characiformes/anatomy & histology , Gene Frequency , Genetic Linkage , Linkage Disequilibrium , Polymorphism, Single Nucleotide , Zebrafish
2.
BMC Genomics ; 19(1): 375, 2018 May 21.
Article in English | MEDLINE | ID: mdl-29783944

ABSTRACT

BACKGROUND: Despite the health concerns and nutritional importance of fatty acids, there is a relative paucity of studies in the literature that report genetic or genomic parameters, especially in the case of sheep populations. To investigate the genetic architecture of fatty acid composition of sheep, we conducted genome-wide association studies (GWAS) and estimated genomic heritabilities for fatty acid profile in Longissimus dorsi muscle of 216 male sheep. RESULTS: Genomic heritability estimates for fatty acid content ranged from 0.25 to 0.46, indicating that substantial genetic variation exists for the evaluated traits. Therefore, it is possible to alter fatty acid profiles through selection. Twenty-seven genomic regions of 10 adjacent SNPs associated with fatty acids composition were identified on chromosomes 1, 2, 3, 5, 8, 12, 14, 15, 16, 17, and 18, each explaining ≥0.30% of the additive genetic variance. Twenty-three genes supporting the understanding of genetic mechanisms of fat composition in sheep were identified in these regions, such as DGAT2, TRHDE, TPH2, ME1, C6, C7, UBE3D, PARP14, and MRPS30. CONCLUSIONS: Estimates of genomic heritabilities and elucidating important genomic regions can contribute to a better understanding of the genetic control of fatty acid deposition and improve the selection strategies to enhance meat quality and health attributes.


Subject(s)
Fatty Acids/metabolism , Genome-Wide Association Study , Genomics , Quantitative Trait, Heritable , Sheep/genetics , Sheep/metabolism , Animals , Multivariate Analysis
3.
J Anim Breed Genet ; 133(5): 384-95, 2016 Oct.
Article in English | MEDLINE | ID: mdl-26968150

ABSTRACT

Information about genetic parameters is essential for selection decisions and genetic evaluation. These estimates are population specific; however, there are few studies with dairy cattle populations reared under tropical and sub-tropical conditions. Thus, the aim was to obtain estimates of heritability and genetic correlations for milk yield and quality traits using pedigree and genomic information from a Holstein population maintained in a tropical environment. Phenotypic records (n = 36 457) of 4203 cows as well as the genotypes for 57 368 single nucleotide polymorphisms from 755 of these cows were used. Covariance components were estimated using the restricted maximum likelihood method under a mixed animal model, considering a pedigree-based relationship matrix or a combined pedigree-genomic matrix. High heritabilities (around 0.30) were estimated for lactose and protein content in milk whereas moderate values (between 0.19 and 0.26) were obtained for percentages of fat, saturated fatty acids and palmitic acid in milk. Genetic correlations ranging from -0.38 to -0.13 were determined between milk yield and composition traits. The smaller estimates compared to other similar studies can be due to poor environmental conditions, which may reduce genetic variability. These results highlight the importance in using genetic parameters estimated in the population under evaluation for selection decisions.


Subject(s)
Cattle/classification , Cattle/genetics , Fatty Acids/analysis , Milk/chemistry , Animals , Cattle/physiology , Climate , Female , Genotype , Milk/economics , Pedigree , Polymorphism, Single Nucleotide
4.
Genet Mol Res ; 14(3): 10717-28, 2015 Sep 09.
Article in English | MEDLINE | ID: mdl-26400301

ABSTRACT

Genetic selection for production traits has resulted in a rapid improvement in animal performance and development. Previous studies have mapped quantitative trait loci for body weight at 35 and 41 days, and drum and thigh yield, onto chicken chromosome 4. We investigated this region for single nucleotide polymorphisms and their associations with important economic traits. Three positional candidate genes were studied: KLF3 (Krüeppel-like factor 3), SLIT2 (Slit homolog 2), and PPARGC1A (peroxisome proliferator-activated receptor gamma, coactivator 1 alpha). Fragment sequencing of these genes was conducted in 11 F1 animals, and one polymorphism in each gene was selected and genotyped in an F2 population (N = 276) and a paternal broiler line TT (N = 840). Associations were identified with growth, carcass, and fat traits in the F2 and the paternal line (P < 0.05). Using single markers in both the F2 and the TT line, KLF3 was associated with weight gain (P < 0.05), PPPARGC1A was associated with liver and wing-parts weights and yields (P < 0.05), and SLIT2 was associated with back yield (P < 0.05) and fat traits (P < 0.05). Using multiple markers, KLF3 lost its significance in both populations, and SLIT2 was associated with feed conversion only in the TT population (P < 0.05). The QTLs mapped in the F2 population could be partly explained by PPARGC1A and SLIT2, which were associated with body weight at 35 and 41 days, respectively, and with drum and thigh yield in the same population. The results of this study indicate the importance of these genes for production traits.


Subject(s)
Chromosomes/chemistry , Intercellular Signaling Peptides and Proteins/genetics , Meat , Nerve Tissue Proteins/genetics , Polymorphism, Single Nucleotide , Quantitative Trait Loci , Transcription Factors/genetics , Adipose Tissue/anatomy & histology , Adipose Tissue/metabolism , Animals , Body Weight/genetics , Chickens , Chromosome Mapping , Female , Gene Expression , Genotype , Kruppel-Like Transcription Factors/genetics , Liver/anatomy & histology , Liver/metabolism , Male , Organ Size/genetics , Phenotype , Quantitative Trait, Heritable , Wings, Animal/anatomy & histology , Wings, Animal/metabolism
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