Variations of Physiological Parameters and HSP70 and HSP90 Polymorphisms in Water Buffaloes in Taiwan During Cool and Warm Season

Authors

  • Pi Hua Chuang Eastern Region Branch, Taiwan Livestock Research Institute, Ministry of Agriculture, No. 28-1, Jishui Rd., Wujie Township, Yilan County 268020, Taiwan (R.O.C.)
  • Yi Ting Chen Ministry of Agriculture, No. 37, Nanhai Rd., Zhongzheng District, Taipei City 100212, Taiwan (R.O.C.)
  • Liang Yuan Wei Eastern Region Branch, Taiwan Livestock Research Institute, Ministry of Agriculture, No. 28-1, Jishui Rd., Wujie Township, Yilan County 268020, Taiwan (R.O.C.)

DOI:

https://doi.org/10.6000/1927-520X.2023.12.15

Keywords:

Water buffalo, rectal temperature, respiratory rate, temperature–humidity index, heat tolerance coefficient, heat shock protein

Abstract

Background: This study examined the physiological parameters of water buffaloes in Taiwan in the cool (February) and warm (August) seasons of 2020 and 2021.

Methods: Data was collected for a study in February, August 2020, and 2021. The ambitious temperature, humidity, water buffaloes’ rectal temperature (RT), and respiratory rate (RR) were recorded. The plasma expression levels of heat-shock protein (HSP)70 and HSP90 were examined using an ELISA kit. Furthermore, the HSP70 and HSP90 fragment genetic sequence variations were analyzed using the PCR method and MEGA6 software.

Results: The results revealed that in the warm season, the rectal temperature (RT), respiratory rate (RR), and heat tolerance coefficient (HTC) were significantly higher compared to the cool season (all P < 0.05). Additionally, the temperature-humidity index (THI) had moderate to high correlations with RT (0.518), RR (0.744), and HTC (0.757). Plasma HSP70 expression levels were higher in the warm season than in the cool season (P < 0.05). The genetic sequences of HSP70 and HSP90 fragments were compared, and five single-nucleotide variation (SNV) sites were identified. However, each genotype showed no significant physiological difference between the cool and warm seasons.

Conclusion: Temperature and humidity changes in Taiwan had a significant correlation with the physical condition of water buffaloes. This information can be valuable in improving the living conditions of these animals, leading to better animal welfare. Additionally, the HSP70 and HSP90 gene variations in water buffaloes in Taiwan could be used as a reference for future research on breeding and identifying molecular markers.

References

Ferreira, FC, Gennari RS, Dahl GE, De Vries A. Economic feasibility of cooling dry cows across the United States. J Dairy Sci 2016; 99: 9931-41. https://doi/org/10.3168/jds.2016-11566 DOI: https://doi.org/10.3168/jds.2016-11566

Lamarca, DSF, Pereira DF, Magalhães MM, Salgado DD. Climate change in layer poultry farming: impact of heat waves in Bastos, Brazil. Braz J Poultry Sci 2018; 20: 657-64. https://doi/org/10.1590/1806-9061-2018-0750 DOI: https://doi.org/10.1590/1806-9061-2018-0750

Izar-Tenorio J, Jaramillo P, Griffin WM, Small M. Impacts of projected climate change scenarios on heating and cooling demand for industrial broiler chicken farming in the Eastern US. J Clean Prod 2020; 255: 120306.

https://doi.org/10.1016/j.jclepro.2020.120306 DOI: https://doi.org/10.1016/j.jclepro.2020.120306

Misra AK, Tyagi S. In vivo embryo production in buffalo: present and perspectives. Ital J Anim Sci 2007; 6: 74-91. https://doi/org/10.4081/ijas.2007.s2.74 DOI: https://doi.org/10.4081/ijas.2007.s2.74

Michelizzi VN, Dodson MV, Pan Z, et al. Water buffalo genome science comes of age. Int J Biol Sci 2010; 6: 333-349. https://doi/org/10.7150/ijbs.6.333 DOI: https://doi.org/10.7150/ijbs.6.333

Kendall PE, Webster JR. Season and physiological status affect the circadian body temperature rhythm of dairy cows. Livest Sci 2009; 125: 155-60. https://doi/org/10.1016/j.livsci.2009.04.004 DOI: https://doi.org/10.1016/j.livsci.2009.04.004

Vale WG. Effects of environment on buffalo reproduction. Ital J Anim Sci 2007; 6: 130-42. https://doi/org/10.4081/ijas.2007.s2.130 DOI: https://doi.org/10.4081/ijas.2007.s2.130

Somparn P, Gibb MJ, Markvichitr K, Chaiyabutr N, Thummabood S, Vajrabukka C. Analysis of climatic risk for cattle and buffalo production in northeast Thailand. Int J Biometeorol 2004; 49: 59-64. https://doi/org/10.1007/s00484-004-0206-6 DOI: https://doi.org/10.1007/s00484-004-0206-6

Dash S, Chakravarty AK, Singh A, et al. Assessment of expected breeding values for fertility traits of Murrah buffaloes under subtropical climate. Vet World 2015; 8: 320-5. https://doi/org/10.14202/vetworld.2015.320-325 DOI: https://doi.org/10.14202/vetworld.2015.320-325

Manjari R, Yadav M, Ramesh K, et al. HSP70 as a marker of heat and humidity stress in Tarai buffalo. Trop Anim Health Prod 2015; 47: 111-16. https://doi/org/10.1007/s11250-014-0692-4 DOI: https://doi.org/10.1007/s11250-014-0692-4

Collier RJ, Collier JL, Rhoads RP, Baumgard LH. Invited review: genes involved in the bovine heat stress response. J Dairy Sci 2008; 91: 445-54. https://doi/org/10.3168/jds.2007-0540 DOI: https://doi.org/10.3168/jds.2007-0540

Bhat S, Pushpendra K, Neeraj K, et al. Effect of heat shock protein 70 polymorphism on thermo tolerance in Tharparkar cattle. Vet World 2016; 9: 113-17. https://doi/org/10.14202/vetworld.2016.113-117 DOI: https://doi.org/10.14202/vetworld.2016.113-117

Benezra MV. A new index for measuring the adaptability of cattle to tropical conditions. J Anim Sci 1954; 43: 505.

Singh SV, Soren S, Beenam, Singh AK, Kumar S. Heat tolerance indices for cattle and buffalo. In: Singh SV, Upadhyay RC, Sirohi S, Singh AK, editors. Climate resilient livestock and production system. Karnal, Haryana, India: Intech Printers and Publishers 2013; pp. 270-72.

Tamura K, Stecher G, Peterson D, Filipski A, Kumar S. MEGA6: molecular evolutionary genetics analysis version 6.0. Mol Biol Evol 2016; 30: 2725-9. https://doi/org/10.1093/molbev/mst197 DOI: https://doi.org/10.1093/molbev/mst197

Liu S, Li J, Li Z, et al. Effect of season and breed on physiological and blood parameters in buffaloes. J Dairy Res 2018; 85: 181-4. https://doi/org/10.1017/S0022029918000286

Petrocchi Jasinski F, Evangelista C, Basiricò L, Bernabucci U. Responses of dairy buffalo to heat stress conditions and mitigation strategies: a review. Animals 2013; 13: 1260. https://doi/org/10.3390/ani13071260 DOI: https://doi.org/10.3390/ani13071260

Shenhe L, Jun L, Zipeng L, et al. Effect of season and breed on physiological and blood parameters in buffaloes. J Dairy Res 2018; 85: 181-84. https://doi/org/10.1017/S0022029918000286 DOI: https://doi.org/10.1017/S0022029918000286

Kubkomawa IH, Emenalom OO, Okoli IC. Body condition score, rectal temperature, respiratory, pulse and heart rates of tropical indigenous zebu cattle: a review. Int J Agric Innov Res 2015; 4: 448-54.

Yáñez-Pizaña A, de la Cruz-Cruz LA, Tarazona-Morales A, et al. Physiological and behavioral changes of water buffalo in warm and cold systems: review. J Buffalo Sci 2020; 9: 110-20. https://doi/org/10.6000/1927-520X.2020.09.13 DOI: https://doi.org/10.6000/1927-520X.2020.09.13

Marai IFM, Haeeb AAM. Buffalo's biological functions as affected by heat stress -A review. Livest Sci 2010; 127: 89-109. https://doi/org/10.1016/j.livsci.2009.08.001 DOI: https://doi.org/10.1016/j.livsci.2009.08.001

Dash S, Chakravarty AK, Singh A, Upadhyay A, Singh M, Yousuf S. Effect of heat stress on reproductive performances of dairy cattle and buffaloes: a review. Vet World 2016; 9: 235-44. https://doi/org/10.14202/vetworld.2016.235-244 DOI: https://doi.org/10.14202/vetworld.2016.235-244

Presicce GA. Reproduction and production of water buffaloes (Bubalus bubalis) around the world. Saif Zone Sharjah: Bentham Science Publishers 2017.

Abbaya HY, Philimon Y, Elihu A, Lawal AU, Lumbonyi IA. Species, age, and sex effect on thermoregulatory parameters of animals in the warm season of Mubi. J Biol Genet Res 2022; 8: 1-12. https://doi/org/10.56201/jbgr.v8.no2.2022.pg1.12 DOI: https://doi.org/10.56201/jbgr.v8.no2.2022.pg1.12

Kaciuba-Uscilko H, Grucza R. Gender differences in thermoregulation. Curr Opin Clin Nutr Metab Care 2001; 4: 533-6. https://doi/org/10.1097/00075197-200111000-00012 DOI: https://doi.org/10.1097/00075197-200111000-00012

Yanovich R, Ketko I, Charkoudian N. Sex differences in human thermoregulation: relevance for 2020 and beyond. Physiology 2020; 35: 177-84. https://doi/org/10.1152/physiol.00035.2019 DOI: https://doi.org/10.1152/physiol.00035.2019

De Andrade Pantoja MH, da Silva JAR, Barbosa AVC, et al. Assessment of indices of thermal stress indicators among male buffaloes reared in the Eastern Brazilian Amazon. Acta Scientiarum Anim Sci 2018; 40: 1-6. https://doi/org/10.4025/actascianimsci.v40i1.37831 DOI: https://doi.org/10.4025/actascianimsci.v40i1.37831

Liu S, Ye T, Li Z, Li J, Jamil AM, Zhou Y, et al. Identifying hub genes for heat tolerance in water buffalo (Bubalus Bubalis) using transcriptome data. Front Genet 2019; 10: 209. https://doi/org/10.3389/fgene.2019.00209 DOI: https://doi.org/10.3389/fgene.2019.00209

Nangia OP, Singh N, Sukhija SS. Effect of exercise on thermal and acid-base balance in buffaloes. Trop Anim Health Prod 1980; 12: 185-8. https://doi/org/10.1007/BF02242652 DOI: https://doi.org/10.1007/BF02242652

Gudev D, Popova-Ralcheva S, Moneva P, Aleksiev Y, Peeva Tz, Penchev P, et al. Physiological indices in buffaloes exposed to sun. Archiva Zootechn 2007; 10: 127-33.

Garcia, AR. Influencia defatores ambientais sobre as caracteristicas reprodutivas de bufalos do rio (Bubalus bubalis). Rev Cien Agr 2007; 45: 1-13.

Castro AC, Lourenço Júnior JB, Santos NFA, Monteiro EMM, Aviz MAB, Garcia AR. Sistema silvipastoril na Amazônia: ferramenta para elevaro desempenho produtivo de búfalos. Ciência Rural 2008; 38: 2395-402.

https://doi.org/10.1590/S0103-84782008000800050 DOI: https://doi.org/10.1590/S0103-84782008000800050

Baek YC, Kim M, Jeong JY, Oh YK, Lee SD, Lee YK, et al. Effects of short-term acute heat stress on physiological responses and heat shock proteins of Hanwoo Steer (Korean Cattle). J Anim Reprod Biotechnol 2019; 34: 173-82. https://doi/org/10.12750/JARB.34.3.173 DOI: https://doi.org/10.12750/JARB.34.3.173

Balakrishnan KN, Ramiah SK, Zulkifli I. Heat shock protein response to stress in poultry: a review. Animals 2023; 13: 317. https://doi/org/10.3390/ani13020317 DOI: https://doi.org/10.3390/ani13020317

Ramendra D, Gupta ID, Verma A, Singh A, Chaudhari MV, Upadhyay RC, et al. Genetic polymorphisms in ATP1A1 gene and their association with heat tolerance in Jersey crossbred cows. Ind J Dairy Sci 2015; 68: 50-4.

Sonna LA, Fujita J, Gaffin SL, Lilly CM. Invited review: effects of heat and cold stress on mammalian gene expression. J Appl Physiol 2002; 92: 1725-42. https://doi/org/10.1152/japplphysiol.01143.2001 DOI: https://doi.org/10.1152/japplphysiol.01143.2001

Pockley AG, Shepherd J, Corton JM. Detection of heat shock protein 70 (HSP70) and anti-HSP70 antibodies in the serum of normal individuals. Immunol Invest 1998; 27: 367-77. https://doi/org/10.3109/08820139809022710 DOI: https://doi.org/10.3109/08820139809022710

Charoensook R, Gatphayak K, Sharifi AR, Chaisongkram C, Brenig B, Knorr C. Polymorphisms in the bovine HSP90AB1 gene are associated with heat tolerance in Thai indigenous cattle. Trop Anim Health Prod 2012; 44: 921-8. https://doi/org/10.1007/s11250-011-9989-8 DOI: https://doi.org/10.1007/s11250-011-9989-8

Kumar R, Gupta ID, Verma A, Verma N, Vineeth MR. Genetic polymorphisms within exon 3 of heat shock protein 90AA1 gene and its association with heat tolerance traits in Sahiwal cows. Vet World 2015; 8: 932-6. https://doi/org/10.14202/vetworld.2015.932-936 DOI: https://doi.org/10.14202/vetworld.2015.932-936

Onasanya GO, Msalya GM, Thiruvenkadan AK, Sreekumar C, Tirumurugaan GK, Sanni TM, et al. Single nucleotide polymorphisms at heat shock protein 90 gene and their association with thermo-tolerance potential in selected indigenous Nigerian cattle. Trop Anim Health Prod 2020; 52: 1961-70. https://doi/org/10.1007/s11250-020-02222-9 DOI: https://doi.org/10.1007/s11250-020-02222-9

Mohammed AFN. The potential effect of temperature-humidity index on productive and reproductive performance of buffaloes with different genotypes under warm conditions. Environ Sci Pollut Res 2017; 24: 18073-2. https://doi/org/10.1007/s11356-017-9450-2 DOI: https://doi.org/10.1007/s11356-017-9450-2

Soleimani AF, Zulkifli I, Omar AR, Raha AR. Physiological responses of 3 chicken breeds to acute heat stress Poult Sci 2011; 90: 1435-40. https://doi/org/10.3382/ps.2011-01381 DOI: https://doi.org/10.3382/ps.2011-01381

IBM Corp. IBM SPSS Statistics for Windows, Version 22.0. Armonk, NY: IBM Corp 2013.

Downloads

Published

2023-12-27

How to Cite

Chuang, P. H. ., Chen, Y. T. ., & Wei, L. Y. . (2023). Variations of Physiological Parameters and HSP70 and HSP90 Polymorphisms in Water Buffaloes in Taiwan During Cool and Warm Season. Journal of Buffalo Science, 12, 134–142. https://doi.org/10.6000/1927-520X.2023.12.15

Issue

Section

Articles