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Identification of CAPN11 Gene SNPs in White King Pigeons (Columba livia) and Their Impact on Slaughter Traits |
XIANG Jin1, LONG Xia1, PANG Jin-Lan2, CHENG Min3, ZHANG Yi-Yu1,*, YANG A-Ming2,* |
1 College of Animal Science/Key Laboratory of Genetic Breeding and Reproduction of Plateau and Mountain Animals/Key Laboratory of Animal Genetic Breeding and Reproduction of Guizhou Province, Guizhou University, Guiyang 550025, China; 2 Agriculture and Rural Bureau of Qianxi City, Qianxi 551500, China; 3 Guizhou Yuqian Agricultural Biotechnology Development Co., Ltd., Qianxi 551500, China |
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Abstract White king pigeon (Columba livia) is an important economic poultry in China. To explore the relationship between calpain 11 (CAPN11) gene polymorphism and slaughtering traits is of great significance to the genetic improvement of slaughtering traits and the improvement of economic traits. In this study, SNP of CAPN11 gene of white king pigeon was screened by PCR direct sequencing method, and the relationship between SNP locus and slaughtering traits was analyzed. Through the identification of the SNPs of the CAPN11 gene of the white king pigeon, it was found that g.3641644C>T and g.3641746C>T 2 synonymous mutations were found at positions 636 and 738 in the exon 6 region of CAPN11 gene of the white king pigeon, all of which had 3 genotypes, the dominant genotypes and alleles were CT and C, 0.25<PIC<0.5. χ2 test showed that the genotypic distribution of the two SNPs loci were in accordance with Hardy-Weinberg equilibrium. Linkage disequilibrium analysis showed that D'>0.80 and r2>0.33 were not satisfied between the 2 SNPs, indicating that there was no strong linkage disequilibrium effect. Correlation analysis showed that g.3641644C>T locus had a significant effect on antemortem live weight (P<0.05). The effects of g.3641746C>T locus on pre-slaughter live weight, dressed weight, eviscerated weight, chest muscle weight and leg muscle weight of white king pigeons reached significant level (P<0.05). Diplotype analysis showed that 4 haplotypes and 10 diplotypes were detected at 2 SNPs loci in the experimental population. The antemortem live weight, dressed weight, eviscerated weight and leg muscle weight of individuals with haplotype H2H2 (CCTT) were significantly higher than those of the other 9 diplotypes, and the chest muscle weight of individuals with haplotype H2H2 (CCTT) was significantly higher than that of individuals with other diplotypes except H3H3 (TTCC) and H3H4 (TTCT). Through the analysis of the secondary structure of haplotype mRNA, it was found that haplotypes H1 (CC), H2 (CT) and H3 (TC) all caused changes in the mRNA secondary structure of CAPN11 gene, which might affect the efficiency of transcription and translation, and then affect the slaughtering performance. In summary, CAPN11 gene can be used as a potential candidate gene to improve molecular marker selection for slaughtering traits of white king pigeons. This study provides a theoretical basis for accelerating the breeding process of white king pigeons and reference for improving molecular marker breeding of slaughtering traits of white king pigeons.
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Received: 21 November 2023
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Corresponding Authors:
* zyy8yyc@163.com;414761721@qq.com
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[1] 卜柱, 厉宝林, 赵振华, 等. 2010. 中国肉鸽主要品种资源与育种现状[J]. 中国畜牧兽医, 37(06): 116-119. (Bu Z, Li B L, Zhao Z H, et al.2010. Resources and breeding status of major meat pigeons in China[J]. Animal Husbandry and Veterinary Medicine of China, 37(06): 116-119.) [2] 陈灿, 陈维林, 丁浩, 等. 2023. 白羽王鸽胚胎期胸肌肌纤维发育规律及相关基因表达分析[J]. 中国畜牧杂志, 59(07): 99-104. (Chen C, Chen W L, Ding H, et al.2023. Analysis of muscle fiber development of pectoralis muscle in white king pigeon[J]. Chinese Animal Husbandry Journal, 59(07): 99-104.) [3] 丁丽艳, 殷元虎, 韩永胜, 等. 2018. 分子育种技术在肉牛育种中的应用研究进展[J]. 现代畜牧科技,(10): 21-22+110. (Ding L Y, Yin Y H, Han Y S, et al.2018. Progress in the application of molecular breeding techniques in beef cattle breeding[J]. Modern Animal Husbandry Science and Technology,(10): 21-2, 110.) [4] 杜炳旺. 2017. 中国肉鸽种质资源研究和品种选育任重道远[J]. 养禽与禽病防治, (04): 5-7. (Du B W. 2017. Research on germplasm resources and variety breeding of Chinese pigeons has a long way to go[J]. Poultry breeding and poultry disease control, (04): 5-7.) [5] 何翔, 屠云洁, 苏一军, 等. 2010. 白羽王鸽屠宰性能及肉品质研究[J]. 江苏农业科学, (02): 215-217. (He X, Tu Y J, Su Y J, et al. 2010. Study on slaughter performance and meat quality of white feather king pigeon[J]. Jiangsu Agricultural Science, (02): 215-217.) [6] 李丰耘, 张茹, 王坤, 等. 2020. 盐津乌骨鸡MyoG和IGF-1基因表达及其与生长、屠宰性状的相关性分析[J]. 中国畜牧兽医, 47(08): 2502-2509. (Li F Y, Zhang R, Wang K, et al.2020. Analysis of MyoG and IGF-1 gene expression and its correlation with growth and slaughter traits[J]. Animal Husbandry and Veterinary Medicine, China, 47(08): 2502-2509.) [7] 肖长峰, 朱丽慧, 杨长锁, 等. 2023.肉鸽不同生长阶段特点及饲养管理要点研究[J]. 上海农业科技,(02): 71-72+94. (Xiao C F, Zhu L H, Yang C S, et al.2023. Research on the characteristics of meat pigeons at different growth stages and the key points of feeding and management[J]. Shanghai Agricultural Science and Technology,(02): 71-72 + 94.) [8] 薛梅. 2015. 分子育种技术在动物性状改造方面的应用[J].农业与技术,35(19): 128-129. (Xue M.2015. Application of molecular breeding techniques in the modification of animal traits[J]. Agriculture and Technology, 35(19): 128-129.) [9] 潘泽滚, 李志雄. 2022.藏鸡FoxO1基因多态性及与屠宰和生长性状的关联分析[J]. 中国家禽, 44(04): 13-21. (Pan Z W, Li Z X.2022. Analysis of FoxO1 gene polymorphisms and association with slaughter and growth traits in Tibetan chickens[J]. Chinese Poultry, 44(04): 13-21.) [10] 王玲. 2010. 普通牛FoxO1、FoxO3、FoxO4基因的克隆、表达及其对肉质性状的遗传效应分析[D]. 博士学位论文, 四川农业大学, 导师: 赖松家. (Wang L.2010. Cloning and expression of FoxO1, FoxO3 and FoxO4 genes and analysis of their genetic effects on meat quality traits[D]. Doctoral dissertation, Sichuan Agricultural University, tutor: Lai S F.) [11] 张彩霞, 吴建平, 赵生国, 等. 2014. 部分肉牛类群CAPN1基因第9外显子多态性及其与肉质性状的相关性[J]. 西北农业学报, 23(03): 14-19. (Zhang C X, Wu J P, Zhao S G, et al.2014. Polymorphism in exon 9 of the CAPN 1 gene and its correlation with meat quality traits in some beef cattle groups[J]. Journal of Northwest Agriculture, 23(03): 14-19.) [12] 张宇, 周佳伟, 吴俊静, 等. 2022. 大白猪繁殖性状全基因组关联分析[J]. 中国畜牧杂志, 58(08): 94-99. (Zhang Y, Zhou J W, Wu J J, et al.2022. Genome-wide association analysis of breeding traits in large white pigs[J]. The Chinese Livestock Journal, 58(08): 94-99.) [13] 张增荣, 蒋小松, 杨朝武, 等. 2018. CAPN1基因多态性与鸡生产性状的相关性研究[J]. 四川畜牧兽医, 45(04): 24-26. (Zhang Z R, Jiang X S, Yang C W, et al.2018. Study on the association analysis of single nucleotide polymorphism of CAPN1 gene and performance traits in chicken[J]. Sichuan Animal Husbandry and Veterinary Medicine, 45(04): 24-26.) [14] 张增荣, 朱庆, 蒋小松, 等. 2007. 钙蛋白酶Ⅰ (CAPN1)基因多态性与鸡肉嫩度和屠体性状的相关研究[J]. 遗传, 29(8): 982-988. (Zhang Z R, Zhu Q, Jiang X S, et al.2007. Study on correlation between single nucleotide polymorphism of CAPN1 gene and muscle tenderness and carcass traits in chicken[J]. Hereditas, 29(8): 982-988.) [15] Chen J, Wu Y, Zhang L, et al.2019. Evidence for calpains in cancer metastasis[J]. Cell Physiology, 234(6): 8233-8240. [16] Dear T N, Möller A, Boehm T.1999. CAPN11: A calpain with high mRNA levels in testis and located on chromosome 6[J]. Genomics. 59(2): 243-247. [17] Dear T N, Boehm T.2001. Identification and characterization of two novel calpain large subunit genes[J]. Gene. 274(1-2): 245-52. [18] Dedieu S, Mazères G, Dourdin N, et al.2003. Transactivation of capn2 by myogenic regulatory factors during myogenesis[J]. Journal of Molecular Biology, 326(2): 453-465. [19] Goll D E, Thompson V F, Li H, et al.2003. The calpain system[J]. Physiological Reviews, 83(3): 731-801. [20] Honda M, Masui F, Kanzawa N, et al.2008. Specific knockdown of m-calpain blocks myogenesis with cDNA deduced from the corresponding RNAi[J]. American Journal of Physiology-cell Physiology, 294(4): C957-C965. [21] Johnston I A, Bower N I, Macqueen D J.2011. Growth and the regulation of myotomal muscle mass in teleost fish[J]. Journal of Experimental Biology, 214(Pt 10): 1617-1628. [22] Kemp C M, Oliver W T, Wheeler T L, et al.2013. The effects of Capn1 gene inactivation on skeletal muscle growth, development, and atrophy, and the compensatory role of other proteolytic systems[J]. Journal of Animal Science, 91(7): 3155-3167. [23] Kubota S, Vandee A, Keawnakient P, et al.2019. Effects of the MC4R, CAPN1, and ADSL genes on body weight and purine content in slow-growing chickens[J]. Poultry Science, 98(10): 4327-4337. [24] Macqueen D J, Delbridge M L, Manthri S, et al.2010. A newly classified vertebrate calpain protease, directly ancestral to CAPN1 and 2, episodically evolved a restricted physiological function in placental mammals[J]. Molecular Biology and Evolution, 27(8): 1886-1902. [25] Macqueen D J, Wilcox A H.2014. Characterization of the definitive classical calpain family of vertebrates using phylogenetic, evolutionary and expression analyses[J]. Open Biology. 4(4): 130219. [26] Pengelly R J, Tapper W, Gibson J, et al.2015. Whole genome sequences are required to fully resolve the linkage disequilibrium structure of human populations[J]. BMC Genomics, 16(1): 666. [27] Serrote C M L, Reiniger L R S, Silva K B, et al.2020. Determining the polymorphism information content of a molecular marker[J]. Gene, 726: 144175. [28] Sorimachi H, Tsukahara T, Okada-Ban M, et al.1995. Identification of a third ubiquitous calpain species--chicken muscle expresses four distinct calpains[J]. Biochimica et Biophysica Acta, 1261(3): 381-393. [29] Srinivas Y, Pande A, Gole S, et al.2021. Mitochondrial phylogeography reveals high haplotype diversity and unique genetic lineage in Indian dugongs (Dugong dugon)[J]. Aquatic Conservation: Marine and Freshwater Ecosystems, 31(4): 818-829. [30] Wan Y, Qu K, Ouyang Z, et al.2012. Genome-wide measurement of RNA folding energies[J]. Molecular Cell, 26;48(2):169-181. [31] Wigginton J E, Cutler D J, Abecasis G R.2005. A note on exact tests of Hardy-Weinberg equilibrium[J]. American Journal of Human Genetics, 76(5): 887-893. [32] Zhai S, Li M, Li M, et al.2020.Effect of dietary Moringa stem meal level on growth performance, slaughter performance and serum biochemical parameters in geese[J]. Journal of Animal Physiology And Animal Nutrition, 104(1): 126-135. [33] Zhang Z R, Liu Y P, Jiang X, et al.2008. Study on association of single nucleotide polymorphism of CAPN1 gene with muscle fibre and carcass traits in quality chicken populations[J]. Journal of Animal Breeding and Genetics, 125(4): 258-264. [34] Zhang Z R, Jiang X S, Du H R, et al.2010.Tissue-specific expression of the chicken calpain2 gene[J]. Molecular Biology International, 2010: 373241. [35] Ye M, Xu M, Chen C, et al.2018. Expression analyses of candidate genes related to meat quality traits in squabs from two breeds of meat-type pigeon[J]. Journal of Animal Physiology and Animal Nutrition, 102(3): 727-735. |
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