Correlation Study on Polymorphism of Ovoinhibitor (OIH) and Gonadotropin-inhibitor Hormone (GnIH) with Laying Performance in Jinding Duck (Anas platyrhynchos domestica)
CAO Yong-Qing1,2, ZENG Tao2, LIU Guo-Fa3, ZHOU Wei3, SHI Fang-Xiong1*, LU Li-Zhi2*
1 College of Animal Science and Technology, Nanjing Agricultural University, Nanjing 210095, China; 2 Institute of Animal Husbandry and Veterinary Science, Zhejiang Academy of Agricultural Sciences, Hangzhou 310000, China; 3 Zhoukou Guiliu Duck Breeding Co, Ltd., Zhoukou 461300, China
Abstract:Jinding duck (Anas platyrhynchos domestica) is a good breed of laying duck in China. It has many advantages, such as more eggs, strong resistance to stress and so on. It is excellent materials for breeding of new breed (matching line) of laying duck. In this study, 487 Jinding ducks were selected as the research objects, and the ovoinhibitor gene (OIH) and gonadotropin inhibitor gene (GnIH) were detected by DNA direct sequencing for SNP and genetic analysis, and the correlation with the age at first egg, egg numbers at 300 d and 500 d old was analyzed. The results showed that there were 7 polymorphic loci in the OIH gene exon and 4 polymorphic loci in the GnIH gene exon of Jinding duck, and all the loci produced 3 genotypes, 7 of which were missense mutations. The results of genetic analysis showed that all the 11 loci were in Hardy-Weinberg equilibrium (P>0.05), 8 of them were moderate polymorphism (0.50>PIC>0.25), 3 of them were low polymorphism (PIC<0.25). The results of linkage disequilibrium analysis showed that G2344A and T2363C, C2385T and C5749T were complete linkage disequilibrium, G1946A, T1949C and T2218C were complete linkage disequilibrium between any two of them. The results of correlation analysis showed that the C469T locus of OIH gene was significantly correlated with the age at first egg and egg numbers at 300 d old (P<0.05), and AA was the dominant genotype; A517G, C2385T, C5749T and G5801A loci of OIH gene had significant influence on the age at first egg (P<0.05); C2089T locus of GnIH gene was significantly correlated with the egg numbers at 500 d old (P<0.05). In this study, SNPs with genetic effect on laying performance of Jinding duck were screened, which could provide reference for the establishment of candidate genes of laying performance and molecular marker assisted selection.
操勇清, 曾涛, 刘国发, 周玮, 石放雄, 卢立志. 金定鸭卵抑制剂基因(OIH)和促性腺激素抑制激素基因(GnIH)多态性与产蛋性能的相关性研究[J]. 农业生物技术学报, 2020, 28(2): 282-290.
CAO Yong-Qing, ZENG Tao, LIU Guo-Fa, ZHOU Wei, SHI Fang-Xiong, LU Li-Zhi. Correlation Study on Polymorphism of Ovoinhibitor (OIH) and Gonadotropin-inhibitor Hormone (GnIH) with Laying Performance in Jinding Duck (Anas platyrhynchos domestica). 农业生物技术学报, 2020, 28(2): 282-290.
[1] 胡彦竞科. 2017. 四川白鹅GnRH、GnIH基因克隆、多态性及其与产蛋量的关联性研究[D]. 硕士学位论文, 西南大学, 导师: 刘安芳, pp. 23-42. (Hu Y J K.2017. Cloning, polymorphism of GnRH and GnIH genes and their association with egg production in Sichuan White Goose[D]. Thesis for M.S., South west University, Supervisor: Liu A F, pp. 23-42.) [2] 黄种彬. 2011. 中国地方鸭品种资源保护与利用[J]. 中国家禽, 33(18): 43-46. (Huang Z B.2011. Protection and utilization of local duck breed resources in China[J]. China Poultry, 33(18): 43-46.) [3] 凌姣姣. 2016. PLIN基因对金茅花鸡生长、屠宰和肉质性状的遗传效应及表达规律研究[D]. 硕士学位论文, 扬州大学, 导师: 王金玉, pp. 26-27. (Ling J J.2016. Studies on the genetic effects and mechanism of PLIN gene on growth, carcass and meat quality traits and their expression characterization in Jinmao hua chicken[D]. Thesis for M.S., Yangzhou University, Supervisor: Wang J Y, pp. 26-27.) [4] 王蒙. 2015. 鸭OIH、FSHβ基因多态性及其与产蛋性状的关联研究[D]. 硕士学位论文, 华中农业大学, 导师: 龚炎长, pp. 15-32. (Wang M.2015. Studies on polymorphisms of duck OIH and FSHβ gene and their association with the egg performance[D]. Thesis for M.S., Huazhong Agricultural University, Supervisor: Gong Y C, pp. 15-32.) [5] 夏佳豪. 2018. 汶上芦花鸡蛋品质及其候选基因遗传效应分析[D]. 硕士学位论文, 山东农业大学, 导师: 唐辉, pp. 19-65. (Xia J H.2018. Analysis on characteristics of egg quality and genetic effects of its candidate gene in WenShang Barred chicken[D]. Thesis for M.S., Shandong Agricultural University, Supervisor: Tang H, pp. 19-65.) [6] 严研. 2013. 山羊GnIH基因SNP的研究及其与产羔数的关联分析[D]. 硕士学位论文, 西北农林科技大学, 导师: 曹斌云, pp. 18-25. (Yan Y.2013. Relationship of SNP of GnIH with prolific performance of goats[D]. Thesis for M.S., Northwest A&F University, Supervisor: Cao B Y, pp. 18-25.) [7] 詹慧琴. 2006. 鸡产蛋相关基因的SNPs检测及其与蛋用性能关系的研究[D]. 硕士学位论文, 华中农业大学, 导师: 龚炎长, pp. 25-38. (Zhan H Q.2006. Studies on the SNPs in the chicken genes and their association with the egg performance of laying hen[D]. Thesis for M.S., Huazhong Agricultural University, Supervisor: Gong Y C, pp. 25-38.) [8] 张美容, 黄种彬, 钟志新, 等. 2012. 两群金定鸭体重体尺及产蛋性能的测定和比较[J]. 畜禽业, (10): 60-62. (Zhang M R, Huang Z B, Zhong Z X, et al. 2012. Determination and comparison of body weight and egg production performance of two groups of Jinding duck[J]. Livestock and Poultry Industry, (10): 60-62.) [9] 朱燕, 谭千洪, 王永康, 等. 2014. 金定鸭引种在重庆地区舍饲条件下的生产性能测定[J]. 湖北畜牧兽医, (02): 5-6. (Zhu Y, Tan Q H, Wang Y K, et al. 2014. Determination of production performance of Jinding duck introduced in Chongqing area[J]. Hubei Journal of Animal and Veterinary Sciences, (02): 5-6.) [10] Ardlie K G, Leonid K, Mark S.2002. Patterns of linkage disequilibrium in the human genome[J]. Nature Reviews Genetics, 3(4): 299-309. [11] Bentley G E, Jensen J P, Kaur G J, et al.2006. Rapid inhibition of female sexual behavior by gonadotropin-inhibitory hormone (GnIH)[J]. Hormones & Behavior, 49(4): 550-555. [12] Fraley G S, Coombs E, Gerometta E, et al.2013. Distribution and sequence of gonadotropin-inhibitory hormone and its potential role as a molecular link between feeding and reproductive systems in the Pekin duck (Anas platyrhynchos domestica)[J]. General and Comparative Endocrinology, 184: 103-110. [13] Gertler A, Feinstein G.2010. Inhibition of porcine elastase by turkey ovomucoid and chicken ovoinhibitor[J]. European Journal of Biochemistry, 20(4): 547-552. [14] Hu Y D, Huang Q K, Zhu Q, et al.2015. Identification and association of single-nucleotide polymorphisms in gonadotropin-inhibitory hormone (GnIH) gene with egg production traits in Erlang mountainous chickens[J]. Genetics & Molecular Research, 14(1): 294-303. [15] Huang T, Ma J, Gong Y, et al.2019. Polymorphisms in the ovoinhibitor gene (OIH) and their association with egg quality of Xinhua E-strain chickens[J]. British Poultry Science, 60(2): 88-93. [16] Ikemoto T, Park M K.2005. Chicken RFamide-related peptide (GnIH) and two distinct receptor subtypes: Identification, molecular characterization, and evolutionary considerations[J]. Journal of Reproduction and Development, 51(3): 359-377. [17] Liu S, He S, Chen L, et al.2017. Estimates of linkage disequilibrium and effective population sizes in Chinese Merino (Xinjiang type) sheep by genome-wide SNPs[J]. Genes & Genomics, 39(7): 733-745. [18] Long J R, Zhao L J, Liu P Y, et al.2004. Patterns of linkage disequilibrium and haplotype distribution in disease candidate genes[J]. BMC Genetics, 5(1): 11. [19] Matsushima I.1958. An undescribed trypsin inhibitor in egg white[J]. Science, 127(3307): 1178-1179. [20] Mcconn B R, Yi J, Gilbert E R, et al.2016. Stimulation of food intake after central administration of gonadotropin-inhibitory hormone is similar in genetically selected low and high body weight lines of chickens[J]. General and Comparative Endocrinology, 232: 96-100. [21] Montgomery S.2008. Linkage disequilibrium-understanding the evolutionary past and mapping the medical future[J]. Nature Reviews Genetics, 9(6): 477-485. [22] Osugi T.2004. Gonadotropin-inhibitory hormone in Gambel\"s white-crowned sparrow (Zonotrichia leucophrys gambelii): cDNA identification, transcript localization and functional effects in laboratory and field experiments[J]. Journal of Endocrinology, 182(1): 33-42. [23] Oubre C M, Els D' Hondt, Moore R W, et al.2003. The chicken pituitary expresses an ovoinhibitor-like protein in subpopulations of some, but not all, hormone-producing cell types[J]. Domestic Animal Endocrinology, 25(4): 389-397. [24] Rangel P L, Gutierrez C G.2014. Reproduction in hens: Is testosterone necessary for the ovulatory process?[J]. General and Comparative Endocrinology, 203: 250-261. [25] Scott M J, Huckaby C S, Kato I, et al.1987. Ovoinhibitor introns specify functional domains as in the related and linked ovomucoid gene[J]. Journal of Biological Chemistry, 262(12): 5899-5907. [26] Seo D, Lee D H, Choi N, et al.2018. Estimation of linkage disequilibrium and analysis of genetic diversity in Korean chicken lines[J]. PLOS ONE, 13(2): e192063. [27] Shimizu M, Bédécarrats G Y.2010. Activation of the chicken gonadotropin-inhibitory hormone receptor reduces gonadotropin releasing hormone receptor signaling[J]. General and Comparative Endocrinology, 167: 331-337. [28] Tsutsui K, Bentley G E, Ubuka T, et al.2007. The general and comparative biology of gonadotropin-inhibitory hormone (GnIH)[J]. General and Comparative Endocrinology, 153(1-3): 365-370. [29] Tsutsui K, Saigoh E, Ukena K, et al.2000. A novel avian hypothalamic peptide inhibiting gonadotropin release[J]. Biochemical & Biophysical Research Communications, 275(2): 661-667. [30] Tsutsui K, Ubuka T, Yin H, et al.2007. Discovery of gonadotropin-inhibitory hormone in a domesticated bird, its mode of action and functional significance[J]. Journal of Ornithology, 148(Suppl 2): S515-S520. [31] Wang Y, Xu H Y, Gilbert E R, et al.2014. Detection of SNPs in the TBC1D1 gene and their association with carcass traits in chicken[J]. Gene, 547(2): 288-294. [32] Zhao X Z, Gao G L, Wang H W, et al.2017. Effect of photoperiod on serum hormone concentrations during the annual reproductive cycle in geese[J]. Genetics and Molecular Research, 16(1): 1-8. [33] Zhu H, Chen Z, Shao X, et al.2017. Reproductive axis gene regulation during photostimulation and photorefractoriness in Yangzhou goose ganders[J]. Frontiers in Zoology, 14(1): 11. [34] Zhu H, Shao X, Chen Z, et al.2017. Induction of out-of-season egg laying by artificial photoperiod in Yangzhou geese and the associated endocrine and molecular regulation mechanisms[J]. Animal Reproduction Science, 180: 127-136.