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Physiological and behavioral basis for the successful adaptation of goats to severe water restriction under hot environmental conditions

Published online by Cambridge University Press:  10 August 2015

M. Kaliber
Affiliation:
Department of Animal Science, Agricultural Faculty, Cukurova University, 01330 Adana, Turkey
N. Koluman
Affiliation:
Department of Animal Science, Agricultural Faculty, Cukurova University, 01330 Adana, Turkey
N. Silanikove*
Affiliation:
The Volcani Center, Institute of Animal Science, Agricultural Research Organization (A.R.O.), PO Box 6, Bet Dagan 50250, Israel
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Abstract

Among domestic ruminants, goats are renowned for their ability to tolerate water deprivation, water restriction and energy restriction. However, some basic questions regarding their ability to endure water restriction under heat stress are still open. Three levels of water restriction (56%, 73% and 87% of the ad libitum) were imposed on 20 cross-bred 3-year-old female goats (75% German Fawn and 25% Hair Goat) distributed into four groups, with five animals per treatment. The experiment was conducted from the beginning of July to the end of August in a farm located in the Eastern Mediterranean region of Turkey (40 m in altitude; 36 59' N, 35 18'E), in which subtropical weather conditions prevail. The average daily temperature during the experiment was 34.2°C, whereas the highest and lowest temperatures were 42°C and 23.1°C, respectively. The average relative humidity was 68.2% and wind speed was 1.2 km/h. Weekly average thermal heat indexes during the experiment were 78.3 (week 1), 79.1 (week 2), 80.1 (weak 3), 79.8 (weak 4), 81.3 (weak 5) and on average 79.7. Feed intake, heart rate, thermoregulatory responses (rectal temperature, respiration rate), blood plasma concentrations of ions (Na, K), antidiuretic hormone (ADH), metabolites (glucose, cholesterol, creatinine and urea) and behavioral aspects (standing, walking, lying) were studied over 30 days. The responses to water restriction were proportional to the level of restriction. The reductions in feed intake (up to 13%), BW (up to 4.6%) and the increases in rectal temperature (0.5°C) and breath rate (10 respirations/min) were moderate and also were far from responses encountered under severe heat and water stresses. The increase in plasma Na (from 119 to 140 mM) and ADH concentrations (from 12.6 to 17.4 pg/ml) indicates that the physiological response to water restriction was in response to mild dehydration, which also explains the increase in blood plasma concentrations of glucose, cholesterol, creatinine and urea. Behavioral responses (reduction in walking from 226 to 209 min/day and increase in lying from 417 to 457 min/day) were associated with conservation of energy or thermoregulation (reducing the exposure to direct radiation).

Type
Research Article
Copyright
© The Animal Consortium 2015 

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References

Abioja, MO, Osinowo, OA, Adebambo, OA, Bello, NJ and Abiona, JA 2010. Water restriction in goats during hot-dry season in the humid tropic: feed intake and weight gain. Annales de Zootechnie 59, 195203.Google Scholar
Ahmed, MMM and El Kheir, IM 2004. Themoregulation and water balance as affected by water and food restrictions in Sudanese desert goats fed good-quality and poor-quality diets. Tropical Animal Health and Production 36, 191204.CrossRefGoogle Scholar
Alamer, M 2009. Effect of water restriction on lactation performance of Aardi goats under heat stress conditions. Small Ruminant Research 84, 7681.CrossRefGoogle Scholar
Andersson, B 1977. Regulation of body fluids. Annual Review of Physiology 39, 185200.CrossRefGoogle ScholarPubMed
Baker, MA 1989. Effects of dehydration and rehydration on thermoregulatory sweating in goats. Journal of Physiology (London) 417, 421435.CrossRefGoogle ScholarPubMed
Brosh, A 2007. Heart rate measurements as an index of energy expenditure and energy balance in ruminants: a review. Journal of Animal Science 85, 12131227.CrossRefGoogle ScholarPubMed
Burgos, MS, Senn, M, Sutter, F, Kreuzer, M and Langhans, W 2001. Effect of water restriction on feeding and metabolism in dairy cows. American Journal of Physiology: Regulatory Integrative Comparative Physiology 280, R418R427.Google Scholar
Casamassima, D, Pizzo, R, Palazzo, M, D’Alessandro, AG and Martemucci, G 2008. Effect of water restriction on productive performance and blood parameters in comisana sheep reared under intensive condition. Small Ruminant Research 78, 169175.CrossRefGoogle Scholar
Chew, RM 1965. Water physiology of mammals. In Physiological mammalogy. vol. II, (ed. W Mayer and RG Van Gelder), Academic Press, New York.Google Scholar
Darcan, N, Cedden, F and Çankaya, S 2008. Spraying effects on some physiological and behavioral traits of goats in subtropical climate. Italian Journal of Animal Science 7, 7785.CrossRefGoogle Scholar
Jessen, C, Dmi’el, R, Choshniak, I, Ezra, D and Kuhnen, G 1998. Effects of dehydration and rehydration on body temperatures in the black Bedouin goat. Pflügers Archives – European Journal of Physiology 436, 659666.CrossRefGoogle ScholarPubMed
Khan, MS, Ghosh, PK and Sasidharan, TU 1978. Effect of water restriction on plasma proteins and on blood and urinary electrolytes in Barmer goats of the Rajasthan desert. Journal of Agricultural Science 91, 395398.CrossRefGoogle Scholar
Maltz, E, Olson, K, Glick, SM, Fyhroquist, F, Silanikove, N, Choshniak, I and Shkolnik, A 1984. Homeostatic responses to water deprivation or hemorrhage in lactating and non-lactating Bedouin goats. Comparative Biochemistry and Physiology 77A, 7984.CrossRefGoogle Scholar
Meza-Herrera, CA, Calderón-Leyva, G, Soto-Sanchez, MJ, Serradilla, JM, García-Martinez, A, Mellado, M and Veliz-Deras, FG 2014. Glutamate supply positively affects serum cholesterol concentrations without increases in total protein and urea around the onset of puberty in goats. Animal Reproduction Science 147, 106111.CrossRefGoogle ScholarPubMed
Rahardja, DP, Toleng, AL and Lestari, VS 2011. Thermoregulation and water balance in fat-tailed sheep and Kacang goat under sunlight exposure and water restriction in a hot and dry area. Animal 5, 15871593.CrossRefGoogle Scholar
SAS 1999. SAS Institute Inc., SAS OnlineDoc®, Version 8, Cary, NC: SAS Institute Inc., 1999.Google Scholar
Schmidt-Nielsen, K 1983. Animal physiology: adaptation and environment. Cambridge University Press, Cambridge.Google Scholar
Schönhusen, U, Junghans, P, Flöter, A, Steinhoff-Wagner, J, Görs, S, Schneider, F, Cmetges, C and Hammon, HM 2013. First-pass uptake and oxidation of glucose by the splanchnic tissue in young goats fed soy protein-based milk diets with or without amino acid supplementation. Journal of Dairy Science 96, 24002412.CrossRefGoogle ScholarPubMed
Silanikove, N 1984. Renal excretion of urea in response to changes in nitrogen intake in desert (black Bedouin) and non-desert (Swiss Saanen) goats. Comparative Biochemistry and Physiology 79A, 651654.CrossRefGoogle Scholar
Silanikove, N 1985. Effect of dehydration on feed intake and dry matter digestibility in desert (black Bedouin) and non-desert (Swiss Saanen) goats fed on Lucerne hay. Comparative Biochemistry and Physiology 80A, 449452.CrossRefGoogle Scholar
Silanikove, N 1986. Interrelationships between feed quality, digestibility, feed consumption, and energy requirements in desert (Bedouin) and temperate (Saanen) goats. Journal of Dairy Science 69, 21572162.CrossRefGoogle ScholarPubMed
Silanikove, N 1987. Effect of imposed reduction of energy-intake on resting and fasting heat-production in the black Bedouin desert goats. Nutrition Reports International 35, 725731.Google Scholar
Silanikove, N 1988. Impact of shelter in hot Mediterranean climate on feed intake, feed utilization and body fluid distribution in sheep. Appetite 9, 207215.CrossRefGoogle Scholar
Silanikove, N 1989. Interrelationships between water, food and digestible energy intake in desert and temperate goats. Appetite 12, 163170.CrossRefGoogle ScholarPubMed
Silanikove, N 1992. Effects of water scarcity and hot environment on appetite and digestion in ruminants: a review. Livestock Production Science 30, 175193.CrossRefGoogle Scholar
Silanikove, N 1994. The struggle to maintain hydration and osmoregulation in animals experiencing severe dehydration and rapid rehydration: the story of ruminants. Experimental Physiology 79, 281300.CrossRefGoogle ScholarPubMed
Silanikove, N 2000a. Effects of heat stress on the welfare of extensively managed domestic ruminants. Livestock Production Science 67, 118.CrossRefGoogle Scholar
Silanikove, N 2000b. The physiological basis of adaptation in goats to harsh environments. Small Ruminant Research 35, 181193.CrossRefGoogle Scholar
Silanikove, N and Koluman, N 2015. Impact of climate change on the dairy industry in temperate zones: predications on the overall negative impact and on the positive role of dairy goats in adaptation to earth warming. Small Ruminant Research 123, 2734.CrossRefGoogle Scholar