Seasonal patterns of reproduction and production in Nili-Ravi buffaloes


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Authors

  • M H JAN ICAR-Central Institute for Research on Buffaloes, Sub-Campus Nabha, Punjab 147 201 India
  • S KUMAR ICAR-Central Institute for Research on Buffaloes, Sub-Campus Nabha, Punjab 147 201 India
  • A GUPTA ICAR-Central Institute for Research on Buffaloes, Sub-Campus Nabha, Punjab 147 201 India
  • K L MEHRARA ICAR-Central Institute for Research on Buffaloes, Sub-Campus Nabha, Punjab 147 201 India
  • R MEHTA ICAR-Central Institute for Research on Buffaloes, Sub-Campus Nabha, Punjab 147 201 India

https://doi.org/10.56093/ijans.v90i7.106679

Keywords:

Buffalo, Conception rate, Milk yield, Season, Service period

Abstract

Records of Nili-Ravi buffalo maintained at ICAR-Central Institute for Research on Buffaloes, sub-campus Nabha for the period 2009–2018, were analysed with the aim to study the effect of season on various reproductive and productive parameters. Seasons were categorized as follows: winter –Nov. to Feb.; summer – Mar. to Jun.; and rainy – Jul. to Oct. The average temperature ranged from as high as 32.3°C in summer to as low as 18.4°C in winter. The average humidity ranged from as low as 28.2% in summer to as high as 52.8% in rainy season. Data of 4,203 estruses during this period revealed significant effect on estrus expression with lower expression in summer, and highest during winter. A significant reduction in estrus detection efficiency during summer and rainy seasons as compared to winter was recorded. The conception rate was significantly higher during winter as compared to summer and rainy season. During this period, 1,398 calvings were recorded. It was observed that buffaloes that calved in summer tended to have highest calving to first service interval as well as service period (135 and 167 d, respectively) and lowest in rainy season (78 and 114 d, respectively). The wet and herd averages were significantly higher in winter as compared to summer and rainy. Animals that calved in rainy season had significantly lower lactation length (299±13 d) as compared to summer (373±13 d) and winter (320±17 d). It may be concluded that high temperature and humidity during summer and rainy season exert negative effect on reproductive and productive performance in Nili-Ravi buffaloes.

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References

Abayawansa W D, Prabhakar S, Singh A K and Brar P S. 2011. Effect of climatic changes on reproductive performance of Murrah buffaloes in Punjab: A retrospective analysis. Indian Journal of Animal Sciences 81(4): 334.

Afzal M, Anwar M and Mirza M A. 2007. Some factors affecting milk yield and lactation length in Nili Ravi Buffaloes. Pakistan Veterinary Journal 27(3): 113–17.

Ali A. 2015. Seasonal variations of the ovarian activity and pregnancy rate in the Egyptian buffalo cows (Bubalus bubalis). Tropical Animal Health and Production 47(5): 815– 18. DOI: https://doi.org/10.1007/s11250-015-0793-8

Barile V L. 2005. Improving reproductive efficiency in female buffaloes. Livestock Production Science 92: 183–94. DOI: https://doi.org/10.1016/j.livprodsci.2004.06.014

Bouraoui R, Lehmar M, Majdoub A and Belyea R. 2002. The relationship of Temperature Humidity-Index with milk production of dairy cows in Mediterranean climate. Animal Research 51: 479–91. DOI: https://doi.org/10.1051/animres:2002036

Burke C R, Tiddy R and Beukes P C. 2008. Case studies exploring the potential impact of farm system changes on herd reproductive performance, production and profitability. Proceedings of the Dairy Cattle Veterinarians Conference 268: 25–33.

Campanile G and Neglia G. 2007. Embryonic mortality in buffalo cows. Italian Journal of Animal Science 6(suppl. 2): 119–29. DOI: https://doi.org/10.4081/ijas.2007.s2.119

Campanile G, Neglia G, Gasparrini B, Galiero G, Prandi A, Di Palo R, D’Occhio M J and Zicarelli L. 2005. Embryonic mortality in buffaloes synchronized and mated by AI during the seasonal decline in reproductive function. Theriogenology 63: 2334–40. DOI: https://doi.org/10.1016/j.theriogenology.2004.10.012

Das G K and Khan F A. 2010. Summer anoestrus in buffalo. Reproduction in Domestic Animals 45: 483–94. DOI: https://doi.org/10.1111/j.1439-0531.2010.01598.x

Dash S, Chakravarty A K, Sah V, Jamuna V, Behera R, Kashyap N and Deshmukh B. 2015. Influence of temperature and humidity on pregnancy rate of Murrah buffaloes under subtropical climate. Asian-Australasian Journal of Animal Sciences 28(7): 943–50. DOI: https://doi.org/10.5713/ajas.14.0825

Gasparrini B. 2002. In vitro embryo production in Buffalo species: State of the Art. Theriogenology 57: 237–56. DOI: https://doi.org/10.1016/S0093-691X(01)00669-0

Ghuman S P S and Dhami D S. 2017. Seasonal variation in AI and pregnancy rate in buffalo and improving their fertility status following application of FTAI during non-breeding season. Indian Journal of Animal Reproduction 38(1): 4–8.

Ghuman S P S, Singh J, Honparkhe M, Dadarwal D, Dhaliwal G S and Jain A K. 2010. Induction of ovulation of ovulatory size non-ovulatory follicles and initiation of ovarian cyclicity in summer anoestrous buffalo heifers (Bubalus bubalis) using melatonin implants. Reproduction in Domestic Animals 45: 600–07.

Gunwant P, Pandey A K, Singh I, Phogat J B, Kumar S and Kumar S. 2018. Seasonal variation of calving in Murrah buffalo at organized dairy farm. International Journal of Pure and Applied Bioscience 6(1): 1283–87. DOI: https://doi.org/10.18782/2320-7051.5814

Hassan F, Khan M S, Rehman M S, Sarwar M and Bhatti S A. 2007 Seasonality of calving in Nili-Ravi buffaloes, purebred Sahiwal and crossbred cattle in Pakistan. Italian Journal of Animal Science 6(Suppl. 2): 1298–1301. DOI: https://doi.org/10.4081/ijas.2007.s2.1298

Kamble S S, Bhise Balasaheb R and Chauhan D S S. 2014. Impact of climatic parameters on milk production in Murrah buffaloes. Journal of Crop and Weed 10(2): 71–76.

Kamble S S, Bhise Balasaheb R, Chauhan D S S and Ghosh N. 2015. Effect of environmental factors on lactation milk yield and lactation length of Murrah buffaloes. Ecology, Environment and Conservation 21(4): 139–44.

Kendall P E and Webster J R. 2009. Season and physiological status affects the circadian body temperature rhythm of dairy cows. Livestock Science 125(2–3): 155–60. DOI: https://doi.org/10.1016/j.livsci.2009.04.004

Khan M S, Hassan F, Rehman M S, Ahmad S and Rehman Z. 2009. Days open and seasonality of calving in buffaloes and cattle in Pakistan. Pakistan Journal of Zoology 9: 195–99.

Marai I F M, Daader A H, Soliman A M and El-Menshawy S M S. 2009. Non-genetic factors affecting growth and reproduction traits of buffaloes under dry management housing (in subtropical environment) in Egypt. Livestock Research for Rural Development 4(4): 6.

Megahed G A, Anwar M M, Wasfy S I and Hammadeh M E. 2008. Influence of heat stress on the cortisol and oxidant antioxidants balance during oestrous phase in buffalo-cows (Bubalus bubalis): thermo-protective role of antioxidant treatment. Reproduction in Domestic Animals 43: 672–77. DOI: https://doi.org/10.1111/j.1439-0531.2007.00968.x

Nanda A S, Brar P S and Prabhakar S. 2003. Enhancing reproductive performance in dairy buffalo. Reproduction 61(Suppl): 27–36.

Parkinson T J and Barrett D. 2001. Veterinary control of herd fertility. Arthur’s Veterinary Reproduction and Obstetrics. 9 edn, p. 529. (Eds) Noakes D E, Parkinson T J and England G C W. Elsevier, London.

Paul S S, Mandal A B and Pathak N N. 2002. Feeding standards for lactating riverine buffaloes in tropical conditions. Journal of Dairy Research 69: 173–80. DOI: https://doi.org/10.1017/S0022029902005423

Pawar H N, Kumar G R and Narang R. 2012. Effect of year, season and parity on milk production traits in Murrah buffaloes. Journal of Buffalo Science 1(1): 122–25. DOI: https://doi.org/10.6000/1927-520X.2012.01.01.22

Perera B M. 2011. Reproductive cycles of buffalo. Animal Reproduction Science 124(3–4): 194–99. DOI: https://doi.org/10.1016/j.anireprosci.2010.08.022

Phogat J B, Pandey A K and Singh I. 2016. Seasonality in buffaloes reproduction. International Journal of Plant, Animal and Environmental Sciences 6(2): 46–54.

Seerapu S R, Kancharana A R, Chappidi V S and Bandi E R. 2015. Effect of microclimate alteration on milk production and composition in Murrah buffaloes. Veterinary World 8(12): 1444–52. DOI: https://doi.org/10.14202/vetworld.2015.1444-1452

Singh J, Nanda A S and Adams G P. 2000. The reproductive patterns and efficiency of female buffaloes. Animal Reproduction Science 60: 593–604. DOI: https://doi.org/10.1016/S0378-4320(00)00109-3

Singh R and Nanda A S. 1993. Environmental variables governing seasonality in buffalo breeding. Journal of Animal Science 71: 119.

Tailor S P, Banerjee A K, Singh B and Pathodiya O P. 1997. Factors affecting reproductive performance in Surti buffaloes. Indian Journal of Dairy Science 50: 407–09.

Tucker C B, Rogers A R and Schütz K E. 2008. Effect of solar radiation on dairy cattle behaviour, use of shade and body temperature in a pasture-based system. Applied Animal Behaviour Science 109: 141–54. DOI: https://doi.org/10.1016/j.applanim.2007.03.015

Upadhyay R C, Ashutosh, Rani R, Singh S V, Mohanty T K and Gohain M. 2012. Impact of climate change on reproductive functions of Murrah buffaloes. Journal of Animal and Plant Sciences 22: 234–36.

Wood S, Quinn A, Troupe S, Kingsland C and Lewis-Jones I. 2006. Seasonal variation in assisted conception cycles and the influence of photoperiodism on outcome in in-vitro fertilization cycles. Human Fertility 9: 223–29. DOI: https://doi.org/10.1080/14647270600806557

Younis M, Samas H A, Ahmad N and Ahmad I. 2003. Effects of age and season on the body weight, scrotal circumference and libido in Nili-Ravi Buffalo Bulls maintained at the semen production unit, Qadirabad. Pakistan Veterinary Journal 23: 59– 65.

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2020-10-29

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2020-10-29

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How to Cite

JAN, M. H., KUMAR, S., GUPTA, A., MEHRARA, K. L., & MEHTA, R. (2020). Seasonal patterns of reproduction and production in Nili-Ravi buffaloes. The Indian Journal of Animal Sciences, 90(7), 1042-1047. https://doi.org/10.56093/ijans.v90i7.106679
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