Genetic Analysis of Stayability and its Relationships with Production, Conformation, Fertility and Health Traits in Holstein Cattle
Simple Summary
Abstract
1. Introduction
2. Materials and Methods
2.1. Phenotypic Data
2.2. Survival Analysis
2.3. Statistical Model
- Model 1: Single-trait animal model
- Model 2: Bi-variate animal model
2.4. Variance Component
2.4.1. The Formula for Heritability
2.4.2. The Formula for Genetic Correlation
2.4.3. The Formula for Phenotypic Correlation
2.4.4. The SE Formula for the Genetic Correlation
2.5. Calculation of Approximate Genetic Correlations
2.5.1. The Formula of Approximate Genetic Correlation
2.5.2. The SE Formula for the Approximate Genetic Correlations
3. Results
3.1. Descriptive Statistics of Stayability Traits
3.2. The Survival Analysis for Holstein Cattle
3.3. Genetic Parameters of Stayability Traits in Holstein Cattle
3.4. Approximate Genetic Correlation Between Stayability and Production Traits
3.5. Approximate Genetic Correlation Between Stayability and Conformation Traits
3.6. Approximate Genetic Correlation Between Stayability and Fertility Traits
3.7. Approximate Genetic Correlation Between Stayability and Health Traits
4. Discussion
4.1. Stayability Survival Analysis in Holstein Cattle
4.2. Genetic Parameters of Stayability Traits
4.3. Approximate Genetic Correlation Between Stayability and Production, SCS Traits
4.4. Approximate Genetic Correlation Between Stayability and Conformation Traits
4.5. Approximate Genetic Correlation Between Stayability and Fertility Traits
4.6. Approximate Genetic Correlation Between Stayability and Health Traits
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Eetvelde, M.V.; Verdru, K.; Jong, G.D.; Pelt, M.L.V.; Opsomer, G. Researching 100 tonne cows: An innovative approach to identify intrinsic cows factors associated with a high lifetime milk production. Prev. Vet. Med. 2021, 193, 105392. [Google Scholar] [CrossRef] [PubMed]
- Hu, H.; Mu, T.; Ma, Y.; Wang, X.P.; Ma, Y. Analysis of longevity traits in Holstein cattle: A review. Front. Genet. 2021, 12, 695543. [Google Scholar] [CrossRef]
- Kerslake, J.I.; Amer, P.R.; O’Neill, P.L.; Wong, S.L.; Roche, J.R.; Phyn, C.V.C. Economic costs of recorded reasons for cow mortality and culling in a pasture-based dairy industry. J. Dairy Sci. 2018, 101, 1795–1803. [Google Scholar] [CrossRef]
- Trk, E.; Komlósi, I.; Sznyi, V.; Béri, B.; Mészáros, G.; Posta, J. Combinations of linear type traits affecting the longevity in hungarian Holstein-Friesian cows. Animals 2021, 11, 3065. [Google Scholar] [CrossRef]
- Sdiri, C.; Ben Souf, I.; Ben Salem, I.; M’Hamdi, N.; Ben Hamouda, M. Assessment of genetic and health management of Tunisian Holstein dairy herds with a focus on longevity. Genes 2023, 14, 670. [Google Scholar] [CrossRef]
- Shabalina, T.; Yin, T.; Konig, S. Influence of common health disorders on the length of productive life and stayability in German Holstein cows. J. Dairy Sci. 2020, 103, 583–596. [Google Scholar] [CrossRef]
- Esslemont, R.J.; Kossaibati, M.A. Culling in 50 dairy herds in England. Vet. Rec. 1997, 140, 36–39. [Google Scholar] [CrossRef]
- Armengol, R.; Fraile, L. Descriptive study for culling and mortality in five high-producing Spanish dairy cattle farms (2006–2016). Acta Vet. Scand. 2019, 60, 45. [Google Scholar] [CrossRef]
- Parker, J.B.; Bayley, N.D.; Fohrman, M.H.; Plowman, R.D. Factors influencing dairy cattle longevity. J. Dairy Sci. 1960, 43, 401–409. [Google Scholar] [CrossRef]
- Hargrove, G.L.; Salazar, J.J.; Legates, J.E. Relationships among first-lactation and lifetime measurements in a dairy population. J. Dairy Sci. 1969, 52, 651–656. [Google Scholar] [CrossRef] [PubMed]
- Hardie, L.C.; Heins, B.J.; Dechow, C.D. Genetic parameters for stayability of Holsteins in US organic herds. J. Dairy Sci. 2021, 104, 4507–4515. [Google Scholar] [CrossRef] [PubMed]
- Hu, H.; Li, F.; Mu, T.; Han, L.; Feng, X.F.; Ma, Y.F.; Jiang, Y.; Xue, X.; Du, B.Q.; Li, R. Genetic analysis of longevity and their associations with fertility traits in Holstein cattle. Animal 2023, 17, 100851. [Google Scholar] [CrossRef]
- ICAR. Guidelines for Health, Female Fertility, Udder Health, Claw Health Traits, Lameness and Calving Traits in Bovine; ICAR: Utrecht, The Netherlands, 2022. [Google Scholar]
- Hu, H.H.; Mu, T.; Zhang, Z.B.; Zhang, J.X.; Feng, X.; Han, L.Y.; Hao, F.; Ma, Y.F.; Jiang, Y.; Ma, Y. Genetic analysis of health traits and their associations with longevity, fertility, production, and conformation traits in Holstein cattle. Animal 2024, 18, 101177. [Google Scholar] [CrossRef]
- Roxstr, M.A.; Ducrocq, V.; Strandberg, E. Survival analysis of longevity in dairy cattle on a lactation basis. Genet. Sel. Evol. 2003, 35, 305. [Google Scholar] [CrossRef]
- Madsen, P.; Jensen, J.; Labouriau, R.; Christensen, O.F.; Sahana, G. DMU—A package for analyzing multivariate mixed models in quantitative genetics and genomics. In Proceedings of the 10th World Congress of Genetics Applied to Livestock Production, Vancouver, BC Canada, 17–22 August 2014. [Google Scholar]
- Calo, L.L.; Mcdowell, R.E.; Vanvleck, L.D.; Miller, P.D. Pedigree selected for milk production genetic aspects of beef production among Holstein-Friesians. J. Anim. Sci. 1973, 37, 676–682. [Google Scholar] [CrossRef]
- Luo, H.; Brito, L.F.; Li, X.; Su, G.; Dou, J.; Xu, W.; Yan, X.; Zhang, H.; Guo, G.; Liu, L. Genetic parameters for rectal temperature, respiration rate, and drooling score in Holstein cattle and their relationships with various fertility, production, body conformation, and health traits. J. Dairy Sci. 2021, 104, 4390–4403. [Google Scholar] [CrossRef]
- Dikmen, S.; Cole, J.B.; Null, D.J.; Hansen, P.J. Heritability of rectal temperature and genetic correlations with production and reproduction traits in dairy cattle. J. Dairy Sci. 2012, 95, 3401–3405. [Google Scholar] [CrossRef]
- Garcia-Peniche, T.B.; Cassell, B.G.; Misztal, I. Effects of breed and region on longevity traits through five years of age in Brown Swiss, Holstein, and Jersey cows in the United States. J. Dairy Sci. 2006, 89, 3672–3680. [Google Scholar] [CrossRef]
- Klevenhusen, F.; Humer, E.; Metzler-Zebeli, B.; Podstatzky-Lichtenstein, L.; Wittek, T.; Zebeli, Q. Metabolic profile and inflammatory responses in dairy cows with left displaced abomasum kept under small-scaled farm conditions. Animals 2015, 5, 1021–1033. [Google Scholar] [CrossRef]
- Boulay, G.; Francoz, D.; Dore, E.; Dufour, S.; Veillette, M.; Badillo, M.; Belanger, A.M.; Buczinski, S. Preoperative cow-side lactatemia measurement predicts negative outcome in Holstein dairy cattle with right abomasal disorders. J. Dairy Sci. 2014, 97, 212–221. [Google Scholar] [CrossRef]
- Neculai-Valeanu, A.S.; Ariton, A.M. Udder health monitoring for prevention of bovine mastitis and improvement of milk quality. Bioengineering 2022, 9, 608. [Google Scholar] [CrossRef] [PubMed]
- Williams, R.E. Linear and Threshold Models to Estimate Heritability and Trends for Stayability in Beef Cattle. Ph.D. Thesis, The University of Georgia, Athens, GA, USA, 2002. [Google Scholar]
- Zhang, H.; Liu, A.; Wang, Y.; Luo, H.; Yan, X.; Guo, X.; Li, X.; Liu, L.; Su, G. Genetic parameters and genome-wide association studies of eight longevity traits representing either full or partial lifespan in Chinese Holsteins. Front. Genet. 2021, 12, 634986. [Google Scholar] [CrossRef] [PubMed]
- Irano, N.; Bignardi, A.B. Genetic association between milk yield, stayability, and mastitis in Holstein cows under tropical conditions. Trop. Anim. Health Prod. 2014, 46, 529–535. [Google Scholar] [CrossRef]
- Pritchard, T.; Coffey, M.; Mrode, R.; Wall, E. Genetic parameters for production, health, fertility and longevity traits in dairy cows. Animal 2013, 7, 34–46. [Google Scholar] [CrossRef]
- Miglior, F.; Sewalem, A.; Jamrozik, J.; Lefebvre, D.M.; Moore, R.K. Analysis of milk urea nitrogen and lactose and their effect on longevity in Canadian dairy cattle. J. Dairy Sci. 2006, 89, 4886–4894. [Google Scholar] [CrossRef]
- Buckley, F.; O’Sullivan, K.; Mee, J.F.; Evans, R.D.; Dillon, P. Relationships among milk yield, body condition, cow weight, and reproduction in spring-calved Holstein-Friesians. J. Dairy Sci. 2003, 86, 2308–2319. [Google Scholar] [CrossRef]
- Wasana, N.; Cho, G.H.; Park, S.B.; Kim, S.D.; Do, C.H. Genetic relationship of productive life, production and type traits of Korean Holsteins at early lactations. Asian-Australas. J. Anim. Sci. 2015, 28, 1259–1265. [Google Scholar] [CrossRef] [PubMed]
- Short, T.H.; Lawlor, T.J. Genetic parameters of conformation traits, milk yield, and herd life in Holsteins. J. Dairy Sci. 1992, 75, 1987–1998. [Google Scholar] [CrossRef]
- Vukainovi, N.; Moll, J.; Künzi, N. Genetic relationships among longevity, milk production, and type traits in Swiss Brown cattle. Livest Prod Sci. 1995, 41, 11–18. [Google Scholar] [CrossRef]
- Weigel, K.A.; Lawlor, T.J.; Vanraden, P.M.; Wiggans, G.R. Use of linear type and production data to supplement early predicted transmitting abilities for productive life. J. Dairy Sci. 1998, 81, 2040–2044. [Google Scholar] [CrossRef]
- Van Doormaal, B.J.; Burnside, E.B.; Schaeffer, L.R. An analysis of the relationships among stayability, production, and type in Canadian milk-recording programs. J. Dairy Sci. 1986, 69, 510–517. [Google Scholar] [CrossRef]
- Rogers, G.W.; Mcdaniel, B.T.; Dentine, M.R.; Funk, D.A. Genetic correlations between survival and linear type traits measured in first lactation1. J. Dairy Sci. 1989, 72, 523–527. [Google Scholar] [CrossRef]
- Harris, B.L.; Freeman, A.E.; Metzger, E. Analysis of herd life in Guernsey dairy cattle. J. Dairy Sci. 1992, 75, 2008–2016. [Google Scholar] [CrossRef]
- Stefani, G.; El Faro, L.; Júnior, M.L.S.; Tonhati, H. Association of longevity with type traits, milk yield and udder health in Holstein cows. Livest. Sci. 2018, 218, 1–7. [Google Scholar] [CrossRef]
- Berry, D.P.; Harris, B.L.; Winkelman, A.M.; Montgomerie, W. Phenotypic associations between traits other than production and longevity in New Zealand dairy cattle. J. Dairy Sci. 2005, 88, 2962–2974. [Google Scholar] [CrossRef]
- Ali, T.E.; Burnside, E.B.; Schaeffer, L.R. Relationship between external body measurements and calving difficulties in Canadian Holstein-Friesian cattle. J. Dairy Sci. 1984, 67, 3034–3044. [Google Scholar] [CrossRef]
- Schneider, M.P.; Durr, J.W.; Cue, R.I.; Monardes, H.G. Impact of type traits on functional herd life of Quebec Holsteins assessed by survival analysis. J. Dairy Sci. 2003, 86, 4083–4089. [Google Scholar] [CrossRef]
- Sewalem, A.; Miglior, F.; Kistemaker, G.J.; Sullivan, P.; Doormaal, B.J.V. Relationship between reproduction traits and functional longevity in Canadian dairy cattle. J. Dairy Sci. 2008, 91, 1660–1668. [Google Scholar] [CrossRef]
- Pinedo, P.J.; De Vries, A. Effect of days to conception in the previous lactation on the risk of death and live culling around calving. J. Dairy Sci. 2010, 93, 968–977. [Google Scholar] [CrossRef]
- Jairath, L.K.; Hayes, J.F.; Cue, R.I. Multitrait restricted maximum likelihood estimates of genetic and phenotypic parameters of lifetime performance traits for Canadian Holsteins. J. Dairy Sci. 1994, 77, 303–312. [Google Scholar] [CrossRef]
- Emanuelson, U.; Oltenacu, P.A.; Grohn, Y.T. Nonlinear mixed model analyses of five production disorders of dairy cattle. J. Dairy Sci. 1993, 76, 2765–2772. [Google Scholar] [CrossRef]
- Bicalho, R.C.; Galvao, K.N.; Cheong, S.H.; Gilbert, R.O.; Warnick, L.D.; Guard, C.L. Effect of stillbirths on dam survival and reproduction performance in Holstein dairy cows. J. Dairy Sci. 2007, 90, 2797–2803. [Google Scholar] [CrossRef]
- Nielsen, U.S.; Pedersen, G.A.; Pedersen, J.; Jensen, J. Genetic variation in disease trait and their relationships with survival in Danish dairy cattle. In Proceedings of the International Workshop on Genetic Improvement of Functional Traits in Cattle, Jouy-en-Josas, France, 18 December 2010. Interbull Bulletin No. 21. [Google Scholar]
- Gröhn, Y.T.; Eicker, S.W.; Ducrocq, V.; Hertl, J.A. Effect of diseases on the culling of Holstein dairy cows in New York State. J. Dairy Sci. 1998, 81, 966–978. [Google Scholar] [CrossRef]
- Leblanc, S.J.; Leslie, K.E.; Duffield, T.F. Metabolic predictors of displaced abomasum in dairy cattle. J. Dairy Sci. 2005, 88, 159–170. [Google Scholar] [CrossRef] [PubMed]
- Reynen, J.L.; Kelton, D.F.; LeBlanc, S.J.; Newby, N.C.; Duffield, T.F. Factors associated with survival in the herd for dairy cows following surgery to correct left displaced abomasum. J. Dairy Sci. 2015, 98, 3806–3813. [Google Scholar] [CrossRef]


| Trait (Units) | Definition | NTotal 1 | Survival Probability |
|---|---|---|---|
| S36 | the ability of cows to remain 36 months in herd after first calving | 13,165 | 0.23 |
| S42 | the ability of cows to remain 42 months in herd after first calving | 8982 | 0.19 |
| S48 | the ability of cows to remain 48 months in herd after first calving | 6724 | 0.12 |
| S54 | the ability of cows to remain 54 months in herd after first calving | 4472 | 0.08 |
| S60 | the ability of cows to remain 60 months in herd after first calving | 3170 | 0.06 |
| S72 | the ability of cows to remain 72 months in herd after first calving | 1352 | 0.024 |
| S84 | the ability of cows to remain 84 months in herd after first calving | 430 | 0.08 |
| Traits | S36 | S42 | S48 | S54 | S60 | S72 | S84 |
|---|---|---|---|---|---|---|---|
| S36 | 0.048 (0.006) | 0.910 (0.019) | 0.836 (0.030) | 0.783 (0.036) | 0.735 (0.040) | 0.623 (0.054) | 0.382 (0.064) |
| S42 | 0.719 (0.0001) | 0.063 (0.006) | 0.975 (0.008) | 0.939 (0.017) | 0.882 (0.024) | 0.735 (0.043) | 0.472 (0.057) |
| S48 | 0.575 (0.0001) | 0.799 (0.0001) | 0.074 (0.007) | 0.965 (0.009) | 0.933 (0.016) | 0.757 (0.038) | 0.538 (0.050) |
| S54 | 0.428 (0.0001) | 0.597 (0.0001) | 0.750 (0.0001) | 0.099 (0.007) | 0.964 (0.008) | 0.792 (0.031) | 0.500 (0.045) |
| S60 | 0.338 (0.0001) | 0.475 (0.0001) | 0.598 (0.0001) | 0.798 (0.0001) | 0.115 (0.007) | 0.881 (0.022) | 0.568 (0.039) |
| S72 | 0.196 (0.0001) | 0.281 (0.0001) | 0.356 (0.0001) | 0.478 (0.0001) | 0.601 (0.0001) | 0.088 (0.007) | 0.785 (0.029) |
| S84 | 0.090 (0.001) | 0.136 (0.001) | 0.179 (0.0001) | 0.243 (0.0001) | 0.311 (0.0001) | 0.532 (0.0001) | 0.118 (0.008) |
| Traits | S36 | S42 | S48 | S54 | S60 | S72 | S84 |
|---|---|---|---|---|---|---|---|
| Milk yield | 0.250 (0.007) | 0.648 (0.005) | 0.573 (0.005) | 0.512 (0.004) | 0.372 (0.005) | 0.466 (0.005) | 0.337 (0.005) |
| Fat percentage | −0.231 (0.007) | −0.339 (0.006) | −0.276 (0.006) | −0.329 (0.005) | −0.253 (0.005) | −0.221 (0.005) | −0.158 (0.005) |
| Protein percentage | −0.152 (0.007) | −0.472 (0.005) | −0.387 (0.005) | −0.386 (0.005) | −0.271 (0.005) | −0.344 (0.005) | −0.246 (0.005) |
| Fat yield | 0.180 (0.007) | 0.522 (0.005) | 0.457 (0.005) | 0.371 (0.005) | 0.254 (0.005) | 0.328 (0.005) | 0.239 (0.005) |
| Protein yield | 0.257 (0.007) | 0.588 (0.005) | 0.525 (0.005) | 0.444 (0.005) | 0.321 (0.005) | 0.384 (0.005) | 0.271 (0.005) |
| Lactose percentage | 0.688 (0.006) | 0.678 (0.005) | 0.576 (0.005) | 0.380 (0.005) | 0.242 (0.006) | 0.315 (0.006) | 0.214 (0.006) |
| Urea nitrogen | −0.223 (0.010) | −0.031 (0.009) | 0.188 (0.009) | 0.044 (0.009) | 0.045 (0.009) | 0.181 (0.009) | −0.026 (0.009) |
| SCS | −0.866 (0.002) | −0.821 (0.004) | −0.605 (0.005) | −0.385 (0.005) | −0.279 (0.005) | −0.276 (0.005) | −0.212 (0.005) |
| Traits | S36 | S42 | S48 | S54 | S60 | S72 | S84 |
|---|---|---|---|---|---|---|---|
| Body depth | −0.494 (0.015) | −0.543 (0.013) | −0.474 (0.014) | −0.452 (0.014) | −0.442 (0.014) | −0.337 (0.015) | −0.146 (0.016) |
| Chest width | −0.347 (0.015) | −0.661 (0.011) | −0.446 (0.013) | −0.429 (0.013) | −0.382 (0.014) | −0.265 (0.014) | −0.159 (0.014) |
| Loin strength | 0.362 (0.017) | 0.451 (0.015) | 0.38 (0.016) | 0.2 (0.017) | 0.122 (0.017) | 0.053 (0.017) | 0.21 (0.017) |
| Stature | −0.504 (0.010) | −0.414 (0.009) | −0.330 (0.009) | −0.34 (0.008) | −0.295 (0.008) | −0.354 (0.008) | −0.313 (0.008) |
| Bone quality | 0.533 (0.020) | 0.631 (0.018) | 0.241 (0.023) | 0.155 (0.154) | 0.13 (0.023) | −0.094 (0.024) | 0.195 (0.023) |
| Foot angle | 0.032 (0.020) | 0.159 (0.019) | 0.125 (0.019) | 0.132 (0.019) | 0.173 (0.019) | 0.020 (0.020) | 0.017 (0.019) |
| Rear leg rear view | 0.112 (0.118) | −0.057 (0.117) | 0.075 (0.117) | 0.204 (0.114) | 0.155 (0.115) | 0.04 (0.116) | 0.111 (0.116) |
| Rear legs side view | 0.662 (0.018) | 0.826 (0.013) | 0.510 (0.020) | 0.428 (0.021) | 0.314 (0.022) | −0.077 (0.024) | 0.202 (0.023) |
| Heel depth | −0.115 (0.027) | −0.191 (0.027) | −0.161 (0.027) | −0.247 (0.026) | −0.190 (0.026) | −0.268 (0.026) | −0.161 (0.027) |
| Fore attachment | 0.504 (0.012) | 0.875 (0.006) | 0.83 (0.007) | 0.821 (0.007) | 0.729 (0.008) | 0.554 (0.010) | 0.506 (0.010) |
| Fore teat placement | 0.422 (0.03) | 0.323 (0.031) | 0.125 (0.033) | 0.164 (0.033) | 0.15 (0.033) | 0.054 (0.033) | 0.057 (0.033) |
| Median suspensory | 0.379 (0.013) | 0.121 (0.012) | −0.066 (0.012) | −0.013 (0.012) | −0.052 (0.012) | −0.088 (0.012) | −0.208 (0.012) |
| Rear attachment height | 0.462 (0.018) | 0.746 (0.013) | 0.478 (0.018) | 0.579 (0.016) | 0.550 (0.017) | 0.386 (0.019) | 0.159 (0.020) |
| Rear attachment width | −0.342 (0.014) | −0.554 (0.011) | −0.718 (0.009) | −0.709 (0.009) | −0.632 (0.010) | −0.683 (0.010) | −0.627 (0.010) |
| Rear teat placement | −0.274 (0.013) | −0.252 (0.011) | −0.323 (0.010) | −0.237 (0.010) | −0.182 (0.010) | −0.067 (0.010) | −0.086 (0.010) |
| Teat length | −0.605 (0.014) | −0.697 (0.012) | −0.476 (0.015) | −0.432 (0.015) | −0.288 (0.016) | −0.276 (0.016) | −0.136 (0.016) |
| Udder depth | −0.134 (0.012) | 0.168 (0.010) | 0.395 (0.009) | 0.377 (0.008) | 0.392 (0.008) | 0.459 (0.008) | 0.38 (0.008) |
| Angularity | −0.607 (0.076) | −0.434 (0.086) | −0.294 (0.091) | −0.302 (0.090) | −0.21 (0.092) | −0.15 (0.093) | −0.176 (0.093) |
| Rump angle | −0.237 (0.013) | −0.462 (0.010) | −0.326 (0.010) | −0.358 (0.010) | −0.298 (0.010) | −0.298 (0.010) | −0.408 (0.010) |
| Rump width | −0.719 (0.010) | −0.914 (0.005) | −0.786 (0.007) | −0.695 (0.008) | −0.648 (0.008) | −0.511 (0.010) | −0.495 (0.009) |
| Traits | S36 | S42 | S48 | S54 | S60 | S72 | S84 |
|---|---|---|---|---|---|---|---|
| Age at first calving | 0.875 (0.004) | 0.834 (0.004) | 0.699 (0.005) | 0.515 (0.006) | 0.394 (0.007) | 0.207 (0.007) | 0.127 (0.007) |
| Age at first service | 0.737 (0.005) | 0.663 (0.005) | 0.457 (0.005) | 0.339 (0.005) | 0.255 (0.005) | 0.213 (0.005) | 0.158 (0.005) |
| Interval from first to last inseminations in heifer | 0.081 (0.049) | 0.148 (0.049) | 0.187 (0.048) | 0.211 (0.048) | 0.2 (0.048) | 0.184 (0.048) | 0.063 (0.049) |
| Conception rate of first insemination in heifer | −0.017 (0.007) | 0.256 (0.006) | 0.225 (0.006) | 0.023 (0.006) | −0.008 (0.006) | −0.141 (0.006) | −0.096 (0.006) |
| Calving interval | 0.408 (0.048) | 0.177 (0.052) | 0.034 (0.053) | −0.215 (0.052) | −0.175 (0.052) | −0.236 (0.052) | −0.197 (0.052) |
| Days open | −0.243 (0.019) | −0.222 (0.019) | −0.510 (0.017) | −0.552 (0.016) | −0.510 (0.017) | 0.415 (0.018) | −0.282 (0.019) |
| Interval from calving to first insemination | −0.008 (0.006) | −0.148 (0.006) | −0.346 (0.005) | −0.158 (0.005) | −0.204 (0.005) | −0.187 (0.005) | −0.193 (0.005) |
| Interval from first to last inseminations in cow | −0.409 (0.035) | −0.337 (0.036) | −0.518 (0.032) | −0.505 (0.033) | −0.397 (0.035) | −0.262 (0.036) | −0.15 (0.037) |
| Conception rate of first insemination in cow | 0.259 (0.012) | 0.368 (0.012) | 0.764 (0.008) | 0.673 (0.009) | 0.364 (0.012) | 0.077 (0.012) | 0.117 (0.013) |
| Calving ease | 0.141 (0.022) | 0.113 (0.021) | −0.051 (0.021) | −0.066 (0.020) | −0.128 (0.019) | −0.156 (0.020) | −0.16 (0.019) |
| Gestation length | −0.106 (0.008) | −0.189 (0.007) | 0.066 (0.007) | 0.014 (0.006) | 0.021 (0.006) | 0.044 (0.007) | 0.02 (0.006) |
| Calf survival | −0.238 (0.007) | −0.680 (0.005) | −0.255 (0.006) | −0.159 (0.006) | −0.066 (0.006) | 0.187 (0.006) | 0.001 (0.006) |
| Birth weight | −0.182 (0.009) | −0.251 (0.008) | −0.148 (0.007) | −0.183 (0.007) | −0.118 (0.007) | −0.046 (0.007) | −0.065 (0.007) |
| Traits | S36 | S42 | S48 | S54 | S60 | S72 | S84 |
|---|---|---|---|---|---|---|---|
| Udder health | 0.075 (0.01) | 0.077 (0.01) | −0.046 (0.01) | −0.0005 (0.01) | 0.091 (0.01) | −0.142 (0.01) | −0.166 (0.01) |
| Mastitis | 0.258 (0.06) | 0.312 (0.07) | 0.186 (0.06) | 0.047 (0.06) | −0.083 (0.06) | −0.397 (0.05) | −0.317 (0.06) |
| Reproductive disorders | 0.279 (0.08) | 0.305 (0.08) | 0.182 (0.08) | 0.167 (0.08) | 0.180 (0.08) | 0.085 (0.08) | 0.072 (0.08) |
| Gestation disorders and peripartum disorders | −0.035 (0.08) | 0.042 (0.08) | −0.021 (0.08) | −0.038 (0.08) | 0.048 (0.08) | 0.028 (0.08) | −0.033 (0.08) |
| Irregular estrus cycle and sterility | 0.251 (0.08) | 0.293 (0.08) | 0.180 (0.08) | 0.148 (0.08) | 0.111 (0.08) | 0.024 (0.08) | 0.126 (0.08) |
| Metritis | 0.253 (0.08) | 0.301 (0.08) | 0.184 (0.08) | 0.156 (0.08) | 0.109 (0.08) | 0.010 (0.08) | 0.119 (0.08) |
| Locomotory diseases | −0.238 (0.08) | −0.303 (0.08) | −0.454 (0.08) | −0.371 (0.08) | −0.326 (0.08) | −0.193 (0.08) | −0.161 (0.09) |
| Claw diseases | −0.026 (0.07) | −0.309 (0.07) | −0.450 (0.07) | −0.451 (0.07) | −0.433 (0.07) | −0.274 (0.07) | −0.255 (0.07) |
| Laminitis complex | 0.094 (0.09) | −0.014 (0.09) | 0.209 (0.09) | 0.025 (0.09) | −0.044 (0.09) | −0.095 (0.09) | 0.032 (0.09) |
| Digestive disorder | −0.083 (0.07) | −0.072 (0.07) | 0.018 (0.07) | −0.013 (0.07) | 0.017 (0.07) | 0.098 (0.07) | 0.030 (0.07) |
| Abomasal displacement | −0.036 (0.04) | 0.320 (0.03) | 0.576 (0.007) | 0.353 (0.03) | 0.297 (0.03) | 0.254 (0.03) | 0.332 (0.03) |
| Metabolic disorders | −0.139 (0.02) | −0.040 (0.02) | 0.231 (0.17) | 0.171 (0.02) | 0.118 (0.02) | 0.234 (0.17) | 0.185 (0.02) |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2025 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Hu, H.; Xu, Z.; Han, L.; Qiao, Z.; Wang, Y.; Jia, Y.; Mu, T.; Ma, Y. Genetic Analysis of Stayability and its Relationships with Production, Conformation, Fertility and Health Traits in Holstein Cattle. Vet. Sci. 2025, 12, 1105. https://doi.org/10.3390/vetsci12111105
Hu H, Xu Z, Han L, Qiao Z, Wang Y, Jia Y, Mu T, Ma Y. Genetic Analysis of Stayability and its Relationships with Production, Conformation, Fertility and Health Traits in Holstein Cattle. Veterinary Sciences. 2025; 12(11):1105. https://doi.org/10.3390/vetsci12111105
Chicago/Turabian StyleHu, Honghong, Zhaodi Xu, Liyun Han, Zhixuan Qiao, Yi Wang, Yikun Jia, Tong Mu, and Yun Ma. 2025. "Genetic Analysis of Stayability and its Relationships with Production, Conformation, Fertility and Health Traits in Holstein Cattle" Veterinary Sciences 12, no. 11: 1105. https://doi.org/10.3390/vetsci12111105
APA StyleHu, H., Xu, Z., Han, L., Qiao, Z., Wang, Y., Jia, Y., Mu, T., & Ma, Y. (2025). Genetic Analysis of Stayability and its Relationships with Production, Conformation, Fertility and Health Traits in Holstein Cattle. Veterinary Sciences, 12(11), 1105. https://doi.org/10.3390/vetsci12111105
