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高山美利奴羊×巴基斯坦奶山羊杂交一代初产繁殖性状的遗传参数估计和遗传进展分析。

Estimation of genetic parameters and genetic change of first parity reproductive traits in Alpine × Beetal goats.

机构信息

Division of Animal Genetics and Breeding, ICAR-National Dairy Research Institute, Karnal, Haryana, India.

出版信息

Reprod Domest Anim. 2023 Sep;58(9):1188-1198. doi: 10.1111/rda.14418. Epub 2023 Jul 11.

Abstract

The study of reproductive traits is crucial for improving genetic potential of goats because of their significant utility in meat production. Hence, genetic analysis was conducted for reproductive traits on Alpine × Beetal goats using animal model for first parity data. Information on 1462 reproductive records were collected over five decades from ICAR-National Dairy Research Institute, Karnal, Haryana (1971-2021). Single-trait and multi-trait animal models were used for genetic analysis. Estimates of (co)variance components and genetic parameters were obtained using Gibbs Sampler for Animal Model due to non-normal distribution of data. Six single-trait animal models (including or excluding maternal and environmental effects) were fitted and best models were determined based on Deviance Convergence Criterion values. The prolificacy for the A × B goats for first parity data was 32%, having 68% single births, 31% twins and 1% triplets/quadruplets. The least squares mean for age at first service (AFS), age at first kidding (AFK), service period (SP), dry period (DP), gestation length (GL), kidding interval (KI), litter weight (LW), number of kids born (NKB) and number of females kids born (NFKB) in first parity were 546.15 ± 4.10 days, 679.05 ± 4.07 days, 226.51 ± 4.02 days, 67.96 ± 2.76 days, 150.74 ± 0.13 days, 362.53 ± 3.35 days, 3.99 ± 0.04 kg, 1.32 ± 0.02 and 0.64 ± 0.02, respectively. The heritability estimates obtained from best model for AFS, AFK, GL, KI, SP, and DP were 0.12 ± 0.00, 0.10 ± 0.00, 0.09 ± 0.01, 0.03 ± 0.00, 0.04 ± 0.00, and 0.05 ± 0.00, respectively. For NKB, NFKB and LW, heritability estimates were 0.16 ± 0.01, 0.03 ± 0.03, and 0.04 ± 0.00, respectively. These results imply lower heritability estimates for reproductive traits, and hence meagre scope for selection for further improvement. Maternal effects contributed significantly for traits such as GL, NKB and NFKB. Genetic correlation for number of female kids born was negative with SP and DP which is favourable. Furthermore, genetic correlation was negative for dry period and litter weight which is favourable as number of kids born and litter weight are traits of direct economic importance. Results reveal high genetic potential of this breed for meat industry owing to high prolificacy, provided consistent efforts are made for the genetic improvement of this germplasm.

摘要

对生殖性状的研究对于提高山羊的遗传潜力至关重要,因为它们在肉类生产中具有重要的用途。因此,本研究使用动物模型对高山 × 比德羊的第一胎数据进行了生殖性状的遗传分析。从印度农业研究理事会国家乳品研究所(ICAR-National Dairy Research Institute)收集了 1462 份繁殖记录,时间跨度为 50 年(1971-2021 年)。由于数据呈非正态分布,使用 Gibbs 抽样器进行动物模型分析来获取(协)方差分量和遗传参数的估计值。拟合了六个单性状动物模型(包括或不包括母体和环境效应),并根据偏差收敛标准值确定了最佳模型。高山 × 比德羊的第一胎繁殖率为 32%,单胎产仔率为 68%,双胞胎产仔率为 31%,三胞胎/四胞胎产仔率为 1%。第一胎的初配年龄(AFS)、初产年龄(AFK)、配种期(SP)、干奶期(DP)、妊娠期(GL)、产羔间隔(KI)、产仔数(LW)、产仔数(NKB)和产母仔数(NFKB)的最小二乘均值分别为 546.15±4.10 天、679.05±4.07 天、226.51±4.02 天、67.96±2.76 天、150.74±0.13 天、362.53±3.35 天、3.99±0.04 千克、1.32±0.02 头和 0.64±0.02 头。最佳模型的 AFS、AFK、GL、KI、SP 和 DP 的遗传力估计值分别为 0.12±0.00、0.10±0.00、0.09±0.01、0.03±0.00、0.04±0.00 和 0.05±0.00。对于 NKB、NFKB 和 LW,遗传力估计值分别为 0.16±0.01、0.03±0.03 和 0.04±0.00。这些结果表明,繁殖性状的遗传力估计值较低,因此进一步改进的选择余地不大。母体效应对 GL、NKB 和 NFKB 等性状有显著贡献。母羊产仔数与 SP 和 DP 的遗传相关性为负,这是有利的。此外,干奶期和产仔数的遗传相关性为负,这是有利的,因为产仔数和产仔数是直接经济重要性状。研究结果表明,由于高繁殖率,该品种具有很高的肉类生产遗传潜力,但需要为该种质的遗传改良做出持续努力。

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