Skip to main content

Nutritional Manipulations to Optimize Productivity During Environmental Stresses in Livestock

  • Chapter
  • First Online:

Abstract

Environmental stresses have huge impact on the production performance of livestock. Stress can be biotic or abiotic in nature. All animals perform better at thermoneutral zone, which are conducive for health and optimum performance. The upper and lower critical temperature is the point at which heat and cold stress begin to affect the animal, respectively. Apart from thermal stress, farm animals are also subjected to other types of stresses such as nutritional, walking, and transportation stress. The severity of the stress becomes pronounced when they occur simultaneously (multiple stresses), resulting in lowered performance and huge production losses. Farm animals try to cope up with stress to some extent by undergoing physiological and behavioral adjustment. Under these conditions livestock needs to be insulated against environmental stresses by providing optimum nutrition, proper managemental practices, and health care. Adverse environments can increase the nutritional requirements of animals directly, or they may reduce the supply of quality feed. Under these circumstances concerted effort must be taken to harmonize the welfare of animals by reducing environmental stress of food animals by nutritional manipulation and managemental practices. Further studies are required to have a clear understanding of these associations at a mechanistic level to fully exploit the potential of nutritionally manipulated production and reproduction in livestock. It is hoped that this approach will be valuable in gaining a thorough understanding of adjusting the nutrient requirement to deal with existing environments and will therefore aid in developing rational managerial decisions to optimize productivity in livestock.

This is a preview of subscription content, log in via an institution.

Buying options

Chapter
USD   29.95
Price excludes VAT (USA)
  • Available as PDF
  • Read on any device
  • Instant download
  • Own it forever
eBook
USD   169.00
Price excludes VAT (USA)
  • Available as EPUB and PDF
  • Read on any device
  • Instant download
  • Own it forever
Softcover Book
USD   219.99
Price excludes VAT (USA)
  • Compact, lightweight edition
  • Dispatched in 3 to 5 business days
  • Free shipping worldwide - see info
Hardcover Book
USD   219.99
Price excludes VAT (USA)
  • Durable hardcover edition
  • Dispatched in 3 to 5 business days
  • Free shipping worldwide - see info

Tax calculation will be finalised at checkout

Purchases are for personal use only

Learn about institutional subscriptions

References

  • Adams DC (1987) Influence of winter weather on range livestock. Proceedings of grazing livestock nutrition conference. Jackson, Yoming, July 23–24, pp 23–28

    Google Scholar 

  • Adams DC, Nelsen TC, Reynolds WL et al (1986) Winter grazing activity and forage intake on range cows in the Northern Great Plains. J Anim Sci 62:1240–1246

    Google Scholar 

  • Ain Baziz HA, Geraert PA, Padilha JCF et al (1996) Chronic heat exposure enhances fat deposition and modifies muscle and fat partition in broiler carcasses. Poult Sci 75:505–513

    PubMed  CAS  Google Scholar 

  • Ajakaiye JJ, Ayo JO, Ojo SA (2010) Effects of heat stress on some blood parameters and egg production of Shika Brown layer chickens transported by road. Biol Res 43:183–189

    PubMed  Google Scholar 

  • Alexander G, Bennett JW, Gammell RT (1975) Brown adipose tissue in the new born calf (Bos taurus). J Physiol 244:223–234

    PubMed  CAS  Google Scholar 

  • Ames DR, Brink DR (1977) Efficiency ratio effect of temperature on lamb performance and protein. J Anim Sci 44:136–144

    Google Scholar 

  • Ames DR, Ray DE (1983) Environmental manipulation to improve animal productivity. J Anim Sci 57:209–220

    Google Scholar 

  • Attebery JT, Johnson HD (1969) Effect of environmental temperature, controlled feeding and fasting on rumen motility. J Anim Sci 29:734–737

    PubMed  CAS  Google Scholar 

  • Avendaño-Reyes L, Fuquay JW, Moore RB et al (2010) Relationship between accumulated heat stress during the dry period, body condition score, and reproduction parameters of Holstein cows in tropical conditions. Trop Anim Health Prod 42:265–273

    PubMed  Google Scholar 

  • Baccari F Jr, Johnson HD, Hahn GL (1983) Environmental heat effects on growth, plasma T3 and post-heat compensatory effects on Holstein calves. Proc Sco Exp Biol Med 173:312–318

    CAS  Google Scholar 

  • Baile CA, Della-Fera MA (1993) Nature of hunger and satiety control systems in ruminants. J Dairy Sci 76:2899–2905

    Google Scholar 

  • Baile CA, Forbes JM (1974) Control of feed intake and regulation of energy in ruminants. Physiol Rev 54:160–170

    PubMed  CAS  Google Scholar 

  • Bailey CB (1964) Effect of environmental temperature on feed digestion, water metabolism, body temperature and certain blood characteristics of sheep. Can J Anim Sci 44:68–75

    Google Scholar 

  • Balnave D, Muheereza SK (1997) Improving eggshell quality at high temperatures with dietary sodium bicarbonate. Poult Sci 76:588–593

    PubMed  CAS  Google Scholar 

  • Balnave D, Zhang D (1993) Response of laying hens on saline drinking water to dietary supplementation with various Zn compounds. Poult Sci 72:603–609

    PubMed  CAS  Google Scholar 

  • Baumgard LH, Moore CE, Bauman DE (2002) Potential application of conjugated linoleic acids in nutrient partitioning. Proceedings southwest nutrition conference, pp 127–141

    Google Scholar 

  • Baumgard LH, Odens LJ, Kay JK et al. (2006) Does negative energy balance (NEBAL) limit milk synthesis in early lactation? Proceedings southwest nutrition conference, pp 181–187

    Google Scholar 

  • Beam SW, Butler WR (1999) Effects of energy balance on follicular development and first ovulation in postpartum dairy cows. J Reprod Fertil 54:411–424

    CAS  Google Scholar 

  • Beede DK, Mallonee PG, Schneider PL et al (1983) Potassium nutrition of heat-stressed lactating dairy cows. South Afr J Anim Sci 13:198–206

    Google Scholar 

  • Berong SL, Washburn KW (1998) Effects of genetic variation on total plasma protein, body weight gains and body temperature responses to heat stress. Poult Sci 77:379–385

    Google Scholar 

  • Bhattacharya AN, Hussain F (1993) Intake and utilization of nutrients in sheep fed different levels of roughage under heat stress. J Anim Sci 71:1761–1766

    Google Scholar 

  • Bonnet S, Geraert PA, Lessire M et al (1997) Effect of high ambient temperature on feed digestibility in broilers. Poult Sci 76:857–863

    PubMed  CAS  Google Scholar 

  • Bouraoui R, Lahmar M, Majdoub A et al (2002) The relationship of temperature-humidity index with milk production of dairy cows in a Mediterranean climate. Anim Res 51:479–491

    Google Scholar 

  • Brown DE, Hacker RR, King GJ (1976) Growth and ACTH responses to cold stress of young pigs fed ad libitum. Can J Anita Sci 56:365

    CAS  Google Scholar 

  • Bruce JM (1981) Ventilation and temperature control criteria for pigs. In: Clark JA (ed) Enviromnental aspect of housoing for animal production. Butterworths, London

    Google Scholar 

  • Burgos-Zimbelman RJ, Collier MB, Abdallah LH et al (2008) Improving resistance to thermal stress in dairy cows with protected niacin. Proceedings southwest nutrition conference, pp 114–126

    Google Scholar 

  • Burns JC, Sollenberger LE (2002) Grazing behavior of ruminants and daily performance from warm-season grasses. Crop Sci 42:873–881

    Google Scholar 

  • Cahaner A, Pinchasov Y, Nir I et al (1995) Effects of dietary protein under high ambient temperature on body weight gain, breast meat yield and abdominal fat deposition of broiler stocking differing in growth rate and fatness. Poult Sci 74:968–975

    PubMed  CAS  Google Scholar 

  • Charles DR (1994) Comparative climatic requirements. In: Wathes CM, Charles DR (eds) Livestock housing. CAB International, UK

    Google Scholar 

  • CIGR (1984) Climatisation of animal house. Report of working group, Scottish Farm Building Investigation Unit, Craibstone, Aberdeen, Scotland

    Google Scholar 

  • Close WH, Mount LE (1976) Gains in protein and fat in the growing pig in relation to environmental temperature. 7th Symposium on energy Metabolism. EAAP Publication No. 15, p 173, Vichy INRA

    Google Scholar 

  • Colditz PJ (1972) The effect of diet and heat stress on feed intake, growth and nitrogen matabolosm in Friesian, F1 Braham × Friesian and Braham heifers. Aust J Agric Res 23:717–723

    Google Scholar 

  • Collier RJ, Beede DK (1985) Thermal stress as a factor associated with nutrient requirements and interrelationships. In: McDowell L (ed) Nutrition of grazing ruminants. Academic, New York

    Google Scholar 

  • Collier RJ, Baumgard LH, Lock AL et al (2005) Physiological limitations: nutrient partitioning. In: Wiseman J, Bradley R (eds) Yields of farmed species: constraints and opportunities in the 21st century. Proceedings: 61st Easter School. Nottingham, England

    Google Scholar 

  • Collier RJ, Beede DK, Thatcher WW et al (1995) Influences of environment and its modification on dairy animal health and production. J Dairy Sci 78:2221–2229

    Google Scholar 

  • Collin A, Milgent J, Le Dividich J (2001) Modelling the effect of high, constant temperature on food intake in young growing pigs. Anim Sci 72:519–527

    CAS  Google Scholar 

  • Conrad JH (1985) Feeding of farm animals in hot and cold environments. In: Yousef MK (ed) Stress physiology in livestock. CRC Press, Inc, Boca Raton

    Google Scholar 

  • Crampton EW, Harris LE (1969) Applied animal nutrition, 2nd edn. W. H. Freeman and Co, San Francisco

    Google Scholar 

  • Dale NM, Fuller HL (1979) Effects of diet composition on feed intake and growth of chicks under heat stress. Poultry Sci 58:1529–1534

    CAS  Google Scholar 

  • Danfaer A, Thysen I, Ostergaard (1980) The effect of the level of dietary protein on milk production. 1. Milk yield, liveweight gain and health. Beret. Statens Husdyrbrugsfors, p 492

    Google Scholar 

  • Dantzer R (1982) Research on farm animal transport in France: a survey. In: Moss R (ed) Transport of animals intended for breeding, production and slaughter. Curr Top Vet Med Anim Sci 18:218–231

    Google Scholar 

  • Dauncey MJ, Ingram DL (1979) Effect of dietary composition and cold exposure on non-shivering thermogenesis in young pigs and its alteration by beta-blocker propranolol. Brit J Nutr 41:361–370

    PubMed  CAS  Google Scholar 

  • Davis AV, Merilan CP (1960) Effect of constant environmental temperature and relative humidity on feed digestion by lactating Holstein cows. J Dairy Sci 43:871 (Abstr)

    Google Scholar 

  • Depocas F, Masironi R (1960) Body glucose as fuel for thermogenesis in the white rat exposed to cold. Am J Physiol 199:1051–1055

    PubMed  CAS  Google Scholar 

  • Dixon RM, Thomas R, Holmes JHG (1999) Interactions between heat stress and nutrition in sheep fed roughage diets. J Agric Sci 132:351–359

    Google Scholar 

  • Dobson H (1987) Effect of transport stress on luteinizing hormone released by GnRH in dairy cows. Acta Endocrinol (Copenh) 115:63–66

    CAS  Google Scholar 

  • Drackley JK (1999) Biology of dairy cows during the transition period: the final frontier? J Dairy Sci 82:2259–2273

    PubMed  CAS  Google Scholar 

  • Ensminger ME, Oldfield JE, Heinemann WW (1990) Feeds and nutrition. The Ensminger publishing company, Clovis

    Google Scholar 

  • Fallenberg MA, Speisky H (2006) Antioxidants: their effects on broiler oxidative stress and its meat oxidative stability. World’s Poult Sci J 62:53–70

    Google Scholar 

  • Faria DE, Junqueira OM, Souza PA et al (2001) Performance, body temperature and egg quality of laying hens fed vitamins D and C under three environmental temperatures. Rev Bras Cienc Avic 3:49–56

    Google Scholar 

  • FASS (2010) Federation of animal science societies. Guide for the care and use of agricultural animals in research and teaching, ISBN: 978-1884706-11-0, Champaign, Illinois, USA. www.fass.org/docs.agguide3rd/Ag_3rd_ed.pdf. Accessed January 2010

  • Fazio E, Ferlazzo A (2003) Evaluation of stress during transport. Vet Res Commun 27:519–524

    PubMed  Google Scholar 

  • Fedele D, Pizzillo M, Claps S et al (1993) Grazing behaviour and diet selection of goats on native pasture in southern Italy. Small Rumin Res 11:305–322

    Google Scholar 

  • Feng J, Zhang M, Zheng S et al (2008) Effects of high temperature on multiple parameters of broilers in vitro and in vivo. Poult Sci 87:2133–2139

    PubMed  CAS  Google Scholar 

  • Fenster R (1989) Vitamin C and stress management in poultry production. Zootecnica Int 12:16–22

    Google Scholar 

  • Ferket PR, Qureshi MA (1992) Performance and immunity of heat-stressed broilers fed vitamin and electrolyte supplemented drinking water. Poultry Sci 71:88–97

    CAS  Google Scholar 

  • Finocchiaro R, van Kaam JBCHM, Portolano B et al (2005) Effect of heat stress on production of Mediterranean dairy sheep. J Dairy Sci 88:1855–1864

    PubMed  CAS  Google Scholar 

  • Franco-Jimenez DJ, Beck MM (2007) Physiological changes to transient exposure to heat stress observed in laying hens. Poult Sci 86:538–544

    PubMed  CAS  Google Scholar 

  • Froning GW, Babji AS, Mather FB (1978) The effect of preslaughter temperature, stress struggle anesthetization on color and textural characteristics of turkey muscle. Poult Sci 57:630–633

    Google Scholar 

  • Fuller MF (1965) The effect of environmental temperature on the nitrogen metabolism and growth of the young pig. Brit J Nutr 19:531–546

    PubMed  CAS  Google Scholar 

  • Gale CC (1973) Neuroendocrine aspects of thermoregulation. Ann Rev Physiol 35:391–399

    CAS  Google Scholar 

  • Galyean ML, Defoor PJ (2003) Effects of roughage source and level on intake by feedlot cattle. J Anim Sci 81(14 suppl 2):E8–E16

    Google Scholar 

  • Gaughan JB, Mader TL (2009) Effects of sodium chloride and fat supplementation on finishing steers exposed to hot and cold conditions. J Anim Sci 87:612–621

    PubMed  CAS  Google Scholar 

  • Geraert PA, Padilha JCF, Guillaumin S (1996) Metabolic and endocrine changes induced by chronic heat exposure in broiler chickens: Growth performance, body composition and energy retention. Brit J Nutr 75:195–204

    PubMed  CAS  Google Scholar 

  • Goff JP, Horst RL (1997) Physiological changes at parturition and their relationship to metabolic disorders. J Dairy Sci 80:1260–1268

    PubMed  CAS  Google Scholar 

  • Gonyou JW, Christopherson RJ, Young BA (1979) Effect of cold temperature and winter conditions on some aspects of behaviour of feedlot cattle. Appl Anim Ethol 5:113–119

    Google Scholar 

  • Graham AD, Christopherson RJ, Thompson JR (1980) Endocrine and metabolic changes in sheep associated to acclimation to constant or intermittent cold exposure. Can J Anim Sci 61:81–90

    Google Scholar 

  • Graham AD, Nicolson AM, Christopherson RJ (1982) Rumen motility responses to adrenaline and noradrenaline and organ weights of warm and cold acclimated sheep. Can J Anim Sci 62:777–786

    CAS  Google Scholar 

  • Graham NMC, Wainman FW, Blaxter KL et al (1959) Environmental temperature, energy metabolism and heat regulation in sheep. I. Energy metabolism in closely clipped sheep. J Agric Sci 52:13–24

    Google Scholar 

  • Gudev D, Popova-Ralcheva S, Moneva P et al (2007) Physiological indices in buffaloes exposed to sun. Archiva Zootechnica 10:127–133

    Google Scholar 

  • Habeeb AA, Marai IFM, Kamal TH (1992) Heat stress. In: Philips C, Piggens D (eds) Farm animals and the environment. CAB International, UK

    Google Scholar 

  • Hacker RR, Stefanovic MP, Batia TR (1973) Effects of cold exposure on growing pigs: growth, body composition and 17-ketosteroids. Can J Anita Sci 37:739

    CAS  Google Scholar 

  • Hafez ESE (1987) Reproduction in farm animals, 5th edn. LEA and Febiger, Philadelphia

    Google Scholar 

  • Hafez ESE (1964) Behavioral thermoregulation in mammals and birds. Int. J. Biometeor. 7:231–240

    Google Scholar 

  • Hai L, Rong D, Zhang ZY (2000) The effect of thermal environment on the digestion of broilers. J Anim Physiol Anim Nutr (Berl) 83:57–64

    Google Scholar 

  • Hardwick DC, Linzell JL, Mepham TB (1963) The metabolism of acetate and glucose by the isolated perfused udder. 2. The contribution of acetate and glucose to carbon dioxide and milk constitutes. Biochem J 88:213–220

    PubMed  CAS  Google Scholar 

  • Hartung J (2003) Effects of transport on health of farm animals. Vet Res Commun 27:525–527

    PubMed  Google Scholar 

  • Herpin P, Lefaucheur L (1992) Adaptive changes in oxidative metabolism in skeletal muscle of cold-acclimated piglets. J Therm Biol 17:277–285

    CAS  Google Scholar 

  • Herpin PR, McBride BW, Bayley HS (1987a) Effect of cold exposure on energy metabolism in the young pig. Can J Physiol Pharmacol 65:236–245

    PubMed  CAS  Google Scholar 

  • Herpin P, Bertin R, Le Devidich J et al (1987b) Some regulatory aspects of thermogenesis in cold-exposed piglets. Comp Biochem Physiol 87:1073–1081

    CAS  Google Scholar 

  • Hodgson J (1986) Grazing behaviour and herbage intake. In: Frame J (ed) Grazing, British grassland society, occasional symposium No. 19, pp 51–64

    Google Scholar 

  • Holmes CW, Grace ND (1975) A note on the metabolism of Ca, P, Mg, Na and K by pigs growing at a high ambient temperature. Anim Prod 21:341–343

    Google Scholar 

  • Horton GMJ (1978) Manipulating energy metabolism in sheep exposed to cold. Am J Vet Res 42:146–148

    Google Scholar 

  • Hutcheson DP, Cole NA (1986) Management of transit stress syndrome in cattle: Nutritional and environmental effects. J Anim Sci 62:555–560

    Google Scholar 

  • Jaster EH, McCoy GC, Fernando RL (1990) Dietary fat in milk or milk replacers for young calves raised in hutches during winter. J Dairy Sci 73:1843–1850

    Google Scholar 

  • Jekinson DM, Mabon RM (1973) The effect of temperature and humidity on skin surface pH and ionic composition of skin secretion in Ayshire cattle. Brit Vet J 129:282–290

    Google Scholar 

  • Johnson HD (1976) Effects of temperature on lactation in cattle. In: Progress in animal biometeorology. The effect of weather and climate on animals, vol. 1. Part 1. Swets and Zeitlinger. B.V. Amsterdam

    Google Scholar 

  • Johnson HD (1987) Bioclimate effects on growth, reproduction and milk production. In: Johnson HD (ed) Bioclimatology and the adaptation of livestock. Elsevier, Amsterdam

    Google Scholar 

  • Johnson HD, Ragsdale AC, Berry IL et al. (1962) Effects of various temperature–humidity combinations on milk production of Holstein cattle. Univ Missouri Agric Exp Stn Res Bull (791)

    Google Scholar 

  • Kadim T, Mahgoub O, Al-Ajmi DS et al (2004) The influence of season on quality characteristics of hot-boned beef m. longissimus thoracis. Meat Sci 66:831–836

    PubMed  CAS  Google Scholar 

  • Kadzere CT, Murphy MR, Silanikove N (2002) Heat stress in lactating dairy cows: a review. Liv Prod Sci 77:59–91

    Google Scholar 

  • Kartchner RJ (1996) Effect of energy and protein supplementation of cows grazing native winter range forage on intake and digestibility. J Dairy Sci 79:639–646

    Google Scholar 

  • Kennedy PM, Christopherson RJ, Milligan LP (1986) Digestive responses to cold. In: Milligan LP, Grovum WL, Dobson A (eds) Control of digestion and metabolism in ruminants. USA Prentice-Hall, New Jersey

    Google Scholar 

  • Kennedy PM, Christopherson RJ, Milligan LP (1976) The effect of cold exposure of sheep on digestion, rumen turnover time, and efficiency of microbial synthesis. Br J Nutr 36:231

    PubMed  CAS  Google Scholar 

  • Kennedy PM, Christopherson RJ, Milligan LP (1982) Effect of cold exposure on feed protein degradation, microbial protein synthesis and transfer of plasma urea to the rumen of sheep. Brit J Nutr 47:521–535

    PubMed  CAS  Google Scholar 

  • Knowles TG, Brown SN, Edwards JE et al (1999a) Effect on young calves of a one-hour feeding stop during a 19-hour road journey. Vet Rec 144:687–692

    PubMed  CAS  Google Scholar 

  • Knowles TG, Warriss PD, Brown SN et al (1999b) Effects on cattle of transportation by road for up to 31-hours. Vet Rec 145:575–582

    PubMed  CAS  Google Scholar 

  • Koelkebeck KW, Harrison PC, Madindou TJ (1993) Effect of carbonated drinking water on production performance and bone characteristics of laying hens exposed to high environmental temperatures. Poult Sci 72:1800–1803

    PubMed  CAS  Google Scholar 

  • Koh K, Macleod MG (1999a) Circadian variation in heat production and respiratory quotient in growing broilers maintained at different food intakes and ambient temperatures. Brit Poult Sci 40:353–356

    CAS  Google Scholar 

  • Koh K, Macleod MG (1999b) Effects of ambient temperature on heat increment of feeding and energy retention in growing broilers maintained at different food intakes. Brit Poult Sci 40:511–516

    CAS  Google Scholar 

  • Kouba M, Hermier D, Le Dividich J (2001) Influence of a high ambient temperature on lipid metabolism in the growing pig. J Anim Sci 79:81–87

    PubMed  CAS  Google Scholar 

  • Kuehn CS, Otterby DE, Linn JG et al (1994) The effect of dietary energy concentration on calf performance. J Dairy Sci 77:2621–2629

    PubMed  CAS  Google Scholar 

  • Lacetera N, Bernabucci U, Ronchi B et al (1996) Body condition score, metabolic status and milk production of early lactating dairy cows exposed to warm environment. Riv Agric Subtrop Trop 90:43–55

    Google Scholar 

  • Lambooy E, Engel B (1991) Transport of slaughter pigs by truck over a long distance: Some aspects of loading density and ventilation. Livest Prod Sci 28:163–174

    Google Scholar 

  • Larbier ZM, Chagneau AM, Geraert PA (1993) Influence of ambient temperature on true digestibility of protein and amino acids of rapeseed and soybean meals in broilers. Poult Sci 72:289–295

    PubMed  CAS  Google Scholar 

  • Latshaw JD (2008) Daily energy intake of broiler chickens is altered by proximate nutrient content and form of the diet. Poult Sci 87:89–95

    PubMed  CAS  Google Scholar 

  • Lin H, Mertens K, Kemps B et al (2004) New approach of testing the effect of heat stress on egg quality: mechanical and material properties of eggshell and membrane. Br Poult Sci 45:476–482

    PubMed  CAS  Google Scholar 

  • Linn JG (1997) Nutritional management of lactating dairy cows during periods of heat stress. Dairy update, Issue 125. http://www.ansci.umn.edu/dairy/dairyupdates/du125.htm

  • Lippke H (1975) Digestibility and volatile fatty acids in steers and wethers at 21 and 32°C ambient temperature. J Dairy Sci 58:1860–1869

    PubMed  CAS  Google Scholar 

  • Lofgreen GP (1974) Ration formulation for relief from heat stress. In: 13th California Feeders day, Imperial Valley. Exp. Stn., El Centro, California

    Google Scholar 

  • Lomax MA, Baird GD (1982) Blood flow and nutrient exchange across liver gut of the dairy cows, effect of lactation and fasting. Brit J Nutr 49:481–491

    Google Scholar 

  • Lucy MC, Staples CR, Thatcher WW et al (1992) Influence of diet composition, dry matter intake, milk production and energy balance on time of postpartum ovulation and fertility in dairy cows. Anim Prod 54:323–331

    Google Scholar 

  • Mader TL (2003) Environmental stress in confined beef cattle. J Anim Sci 81:E110–E119

    Google Scholar 

  • Maenz DD, Patience JF, Wolynetz MS (1994) The influence of the mineral level in drinking water and the thermal environment on the performance and intestinal fluid flux of newly weaned pigs. J Anim Sci 72:300–308

    PubMed  CAS  Google Scholar 

  • Mahanna WC (2007) Watch for changing starch digestibility. Feedstuffs, pp 12–13, June 11

    Google Scholar 

  • Mallonee PG, Beede DK, Collier RJ et al (1993) Production and physiological responses of dairy cows to varying dietary potassium during heat stress. J Dairy Sci 76:819–825

    Google Scholar 

  • Marai IFM, El-Darawany AA, Fadiel A et al (2007) Physiological traits as affected by heat stress in sheep-A review. Small Rumin Res 71:1–12

    Google Scholar 

  • Marai IFM, Ayyat MS, Abd El-Monem UM (2001) Growth performance and reproductive traits at first parity of New Zealand White female rabbits as affected by heat stress and its alleviation, under Egyptian conditions. Trop Anim Health Prod 33:457–462

    Google Scholar 

  • Marai IFM, Daader AM, Abdel-Samee AM et al (1997) Winter and summer effects and their ameleoration on lactating Friesian and Holstein cows maintained under Egyptian conditions. In: Proceedings of international conference on animal, poultry, rabbits and fish production and health, Cairo, Egypt

    Google Scholar 

  • Maria GA, Villarroel M, Chacon G et al (2004) Scoring system for evaluating the stress to cattle of commercial loading and unloading. Vet Rec 154:818–821

    PubMed  CAS  Google Scholar 

  • Masoro EJ (1966) Effect of cold on metabolic use of lipids. Physiol Rev 46:67

    PubMed  CAS  Google Scholar 

  • Maurice DV, Lightsey SF, Abudabos A et al (2002) Factors affecting ascorbic acid biosynthesis in chickens: III. Effect of dietary fluoride on L-gulonolactone oxidase activity and tissue ascorbic acid (AsA) concentration. J Anim Physiol Anim Nutr 86:383–388

    CAS  Google Scholar 

  • Mckee SR, Sams AR (1997) The effect of seasonal heat stress on rigor development and the incidence of pale, exudative turkey meat. Poultry Sci 76:1616–1620

    CAS  Google Scholar 

  • McNaughton JL, Kubena LF, Deaton JW et al (1977) Influence of dietary protein and energy on the performance of commercial egg type pullets reared under summer conditions. Poult Sci 56:1391–1398

    Google Scholar 

  • Minka NS, Ayo JO (2007) Effects of loading behaviour and road transport stress on traumatic injuries in cattle transported by road during the hot-dry season. Life Sci 107:91–95

    Google Scholar 

  • Mitchell MA, Kettlewell PJ (1998) Physiological stress and welfare of broiler chickens in transit: solutions not problems! Poult Sci 77:1803–1814

    PubMed  CAS  Google Scholar 

  • Monty DE, Kelly LM, Rice WR (1991) Acclimatization of St. Croix, Karakul and Rambouillet sheep to intense and dry summer heat. Small Rumin Res 4:379–392

    Google Scholar 

  • Moose MG, Ross CV, Pfander WH (1969) Nutritional and environmental relationships with lambs. J Anim Sci 29:619–627

    Google Scholar 

  • Muller LD, Heinrichs AJ, Cooper JB et al (1986) Supplemental niacin for lactating cows during summer feeding. J Dairy Sci 69:1416–1420

    PubMed  CAS  Google Scholar 

  • Myer R, Bucklin R (2001) Influence of hot-humid environment on growth performance and reproduction of swine. Document AN107, extension, institute of food and agricultural sciences, University of Florida, http://edis.ifas.ufl.edu/AN107

  • Nardone A, Lacetera NG, Ronchi B et al (1992) Effetti del caldo ambientale Sulla produzione di latte e sui consumi alimentari di vacche Frisone. Prod Anim 5:1–15

    Google Scholar 

  • Nardone A, Ronchi B, Lacetera NG et al (2010) Effects of climate changes on animal production and sustainability of livestock systems. Liv Sci 130:57–69

    Google Scholar 

  • Nardone A, Ronchi B, Valentini A, (1991) Effects of solar radiation on water and food intake and weight gain in Sarda and Comisana female lambs. In: Animal husbandry in warm climates, vol 55. EAAP Publication

    Google Scholar 

  • Negrave R (1996) Sheep grazing controls Calamagrostis Canadensis-dominated vegetation in the Boreal forest integrated forest vegetation management options and application, FRDA Report 251. p 2

    Google Scholar 

  • Niaber JA, Hahn GL (2007) Livestock production system management responses to thermal challenges. Int J Biometeorol 52:149–157

    Google Scholar 

  • Nicholson JWG, McQueen REB (1980) Effect of cold on digestibility of chopped or pelleted hay by sheep. Can J Anim Sci 60:571–578

    Google Scholar 

  • Noblet J, Sève B, Jondreville C (2002) Valeurs nutritives pour les porcs. In Tables de composition et de valeur nutritive des matières premières destinées aux animaux d’élevage: porcs, volailles, bovins, ovins, caprins, lapins, chevaux, poissons, Coord. D. Sauvant, J.M. Perez and G. Tran, INRA Editions et AFZ, Paris

    Google Scholar 

  • Northcutt JK, Foegeding EA, Edens FW (1994) Water-holding properties of thermally preconditioned chicken breast and leg meat. Poult Sci 73:308–316

    PubMed  CAS  Google Scholar 

  • NRC (1981) Effect of environment on nutrient requirements of domestic animals. National Academic Press, Washington

    Google Scholar 

  • NRC (2001) Nutrient requirements of dairy cattle, 7th revised ed. National Academy of Sciences, Washington

    Google Scholar 

  • Okamoto M, Robinson JB, Christopherson RJ et al (1986) Summit metabolism of new born calves with and without colostrum feeding. Can J AnimSci 66:937–944

    Google Scholar 

  • Oldham JD (1984) Protein-energy interrelationships in dairy cows. J Dairy Sci 67:1090–1114

    PubMed  CAS  Google Scholar 

  • Osman AM, Tanios NI (1983) The effect of heat on the intestinal and pancreatic levels of amylase and maltase of laying hens and broilers. Comp Biochem Physiol 75A:563–567

    CAS  Google Scholar 

  • Padua JT, Dasilva RG, Bottcher RW et al. (1997) Effect of high environmental temperature on weight gain and food intake of Suffolk lambs reared in a tropical environment. In: Proceedings of 5th international symposium, Bloomington, Minnesota, USA, pp 809–815

    Google Scholar 

  • Pardue SL, Thaxton JP (1986) Ascorbic acid in poultry: a review. World’s Poult Sci J 42:107–123

    Google Scholar 

  • Peeters E, Driessen B, Steegmans R et al (2004) Effect of supplemental tryptophan, vitamin E, and a herbal product on responses by pigs to vibration. J Anim Sci 82:2410–2420

    PubMed  CAS  Google Scholar 

  • Peng CL, Heitman H (1974) The effect of ambient temperature on the thiamin requirement of growing-finishing pigs. Br J Nutr 32:1–9

    PubMed  CAS  Google Scholar 

  • Phillips PA, Young BA, McQuitty JB (1982) Live weight, protein deposition and digestibility responses in growing pigs exposed to low temperature. Can J Anim Sci 62:95–108

    Google Scholar 

  • Pulina G, Mazzette A, Battacone G et al (2006) Feed restriction alters milk production traits in Sarda dairy ewes. J Dairy Sci 89((Suppl.1)):59

    Google Scholar 

  • Pullar JD, Webster AJF (1977) The energy cost of fat and protein deposition in the rat. Brit J Nutr 37:355–363

    PubMed  CAS  Google Scholar 

  • Quiniou N, Noblet J (1999) Influence of high ambient temperatures on performance of multiparous lactating sows. J Anim Sci 77:2124–2134

    PubMed  CAS  Google Scholar 

  • Quiniou N, Dubois S, Noblet J (2000) Voluntary feed intake and feeding behaviour of group-housed growing pigs are affected by ambient temperature and body weight. Liv Prod Sci 63:245–253

    Google Scholar 

  • Ramnath V, Rekha PS, Sujatha KS (2008) Amelioration of heat stress induced disturbances of antioxidant defense system in chicken by Brahma Rasayana. Evid- Based Compl Alt Med 5:77–84

    CAS  Google Scholar 

  • Rassu SPG, Enne G, Ligios S et al (2004) Nutrition and reproduction. In: Pulina G (ed) Dairy sheep nutrition. CABI Publishing, Wallingford

    Google Scholar 

  • Renaudeau D, Anaïs C, Noblet J (2003) Effects of dietary fiber on performance of multiparous lactating sows in a tropical climate. J Anim Sci 81:717–725

    PubMed  CAS  Google Scholar 

  • Renaudeau D, Quiniou N, Noblet J (2001) Effect of high ambient temperature and dietary protein level on performance of multiparous lactating sows. J Anim Sci 79:1240–1249

    PubMed  CAS  Google Scholar 

  • Robertshaw D (1981) The environmental physiology of animal production. In: Clark JA (ed) Environmental aspects of housing for animal production. Butterworth, London

    Google Scholar 

  • Rowan TG (1992) Thermoregulation in neonatal ruminants. In: Varley MA, Williams PEV, Lawrence TLJ (eds) Neonatal survival and growth, occasional Pulb. No.15, 13–24; Edinburgh, UK: Br Soc Anim Prod

    Google Scholar 

  • Rozenboim I, Tako E, Gal-garber O et al (2007) The effect of heat stress on ovarian function of laying hens. Poult Sci 86:1760–1765

    PubMed  CAS  Google Scholar 

  • Sahin K, Kucuk O (2003) Heat stress and dietary vitamin supplementation of poultry diets. Nutr Abstr Rev Ser B Livest Feeds Feed 73:41R–50R

    Google Scholar 

  • Sayre RN, Briskey EJ, Hoekstra WG (1963) Alteration of postmortem changes in porcine muscle by preslaughter heat treatment and diet modification. J Food Sci 28:292–297

    CAS  Google Scholar 

  • Schingoethe DJ, Casper DP, Drackley JK et al (1986) Increased solids intake and feeding frequency for calves in hutches during cold weather. J Dairy Sci 69:1063–1069

    PubMed  CAS  Google Scholar 

  • Schneider PL, Beede DK, Wilcox CJ (1986) Response of lactation cows to dietary sodium source and quantity and potassium quantity during heat stress. J Dairy Sci 69:99–110

    PubMed  CAS  Google Scholar 

  • Scibilia LS, Muller LD, Kensinger RS et al (1987) Effect of environmental temperature and dietary fat on growth and physiological responses of new born calves. J Dairy Sci 70:1426–1433

    PubMed  CAS  Google Scholar 

  • Sconberg S, Nockels CF, Bennet BW et al (1993) Effects of shipping, handling, adrenocorticotropic hormone, and epinephrine on α-tocopherol content of bovine blood. Am J Vet Res 54:1287–1293

    PubMed  CAS  Google Scholar 

  • Sejian V, Maurya VP, Naqvi SMK (2010a) Adaptability and growth of Malpura ewes subjected to thermal and nutritional stress. Trop Anim Health Prod 42:1763–1770

    PubMed  Google Scholar 

  • Sejian V, Maurya VP, Naqvi SMK (2011) Effect of walking stress on growth, physiological adaptability and endocrine responses in Malpura ewes in a semi-arid tropical environment. Int J Biometeorol. doi:10.1007/s00484-011-0420-y

  • Sejian V, Maurya VP, Naqvi SMK (2010b) Adaptive capability as indicated by endocrine and biochemical responses of Malpura ewes subjected to combined stresses (thermal and nutritional) in a semi-arid tropical environment. Int J Biometeorol 54:653–661

    PubMed  Google Scholar 

  • Sevi A, Annicchiarico G, Albenzio M et al (2001) Effects of solar radiation and feeding time on behavior, immune response and production of lactating ewes under high ambient temperature. J Dairy Sci 84:629–640

    PubMed  CAS  Google Scholar 

  • Shibasaki M, Wilson TE, Crandall CG (2006) Neural control and mechanisms of eccrine sweating during heat stress and exercise. J Appl Physiol 100:1692–1701

    PubMed  Google Scholar 

  • Silva BAN, Noblet J, Oliveira RFM et al (2009) Effects of dietary protein concentration and amino acid supplementation on the feeding behavior of multiparous lactating sows in a tropical humid climate. J Anim Sci 87:2104–2112

    PubMed  CAS  Google Scholar 

  • Singh G, Karim SA (1995) Changes in birth weight of temperate sheep breeds under tropical conditions. World Rev Anim Prod 30:55–60

    Google Scholar 

  • Smith MO (1994) Effects of electrolyte and lighting regimen on growth of heat-distressed broilers. Poult Sci 73:350–353

    PubMed  CAS  Google Scholar 

  • Song R, Foster DN, Shurson GC (2011) Effects of feeding diets containing bacitracin methylene disalicylate (BMD) to heat-stressed finishing pigs. J Anim Sci doi:10.2527/jas.2010-3218

  • Springell PH (1968) Water content and water turnover in beef cattle. Aust J Agri Res 19:129–144

    Google Scholar 

  • Stahly TS, Cromwell GL, Aviotti MP (1979) The effect of environmental temperature and dietary lysine source and level on the performance and carcass characteristics of growing swine. J Anim Sci 49:1242

    CAS  Google Scholar 

  • Staples CR (2007) Nutrient and feeding strategies to enable cows to cope with heat stress conditions. 22nd annual southwest nutrition management conference, University of Arizona, Tempe, pp 93–108

    Google Scholar 

  • Sterling KG, Bell DD, Pesti GM, Aggrey SE (2003) Relationships among strain, performance, and environmental, temperature in commercial laying hens. J Appl Poult Res 12:85–91

    Google Scholar 

  • St-pierre NR, Cobanov B, Schnitkey G (2003) Economic losses from heat stress by US livestock industries. J Dairy Sci 86:52–77

    Google Scholar 

  • Tankson JD, Vizzier-Thaxton Y, Thaxton JP et al (2001) Stress and nutritional quality of broilers. Poult Sci 80:1384–1389

    PubMed  CAS  Google Scholar 

  • Tarrant PV (1989) The effect of handling, transport, slaughter and chilling on meat quality and yield in pigs: A review. Ir J Food Sci Technol 13:79–107

    Google Scholar 

  • Teeter RG, Smith MO, Owens FN et al (1985) Chronic heat stress and respiratory alkalosis: Occurrence and treatment in broiler chicks. Poult Sci 64:1060–1064

    PubMed  CAS  Google Scholar 

  • Tepperman J (1980) Metabolic and endocrine physiology. Year Book Medical, Inc, Chicago

    Google Scholar 

  • Thatcher WW, Collier RJ (1982) Effect of heat on animal productivity. In: Rechcigl M Jr (ed) Handbook of agricultural productivity. vol. II. CRC press, Inc, Boca Raton

    Google Scholar 

  • Thompson GE, Thomson EM (1977) Effect of cold exposure on mammary circulation, oxygen consumption and milk secretion in the goat. J Physiol 272:187–196

    PubMed  CAS  Google Scholar 

  • Tucker WB, Harrison GA, Hemken RW (1988) Influence of dietary cation-anion balance on milk, blood, urine, and rumen fluid in lactating dairy cattle. J Dairy Sci 71:346–354

    PubMed  CAS  Google Scholar 

  • Tyrrell HF, Moe PW, Flatt WP (1970) Influence of excess protein intake on energy metabolism of the dairy cow. Fifth symposium energy metabolism. Farm Anim, pp 69–71

    Google Scholar 

  • Verstegen MWA, Brandsma HA, Mateman G (1982) Feed requirement of growing pigs at low environmental temperatures. J Anim Sci 55:88–94

    Google Scholar 

  • Verstegen MWA, Brandsma HA, Mateman G et al (1984) Effect of cold thermal environment on feed requirements, growth rate and slaughter quality in pigs. Archiv Exp Vet 38:431–438

    CAS  Google Scholar 

  • Verstegen MWA, Brascamp EW, van der Hel W (1978) Growing and fattening of pigs in relation to temperature of housing and feeding level. Can J Anim Sci 58:1

    Google Scholar 

  • Verstegen MWA, Close WH, Start IB et al (1973) The effects of environmental temperature and plane of nutrition on heat loss, energy retention and deposition of protein and fat in groups of growing pigs. Br J Nutr 30:21

    PubMed  CAS  Google Scholar 

  • Von Engelhardt W, Hales JRS (1977) Partition of capillary blood flow in the rumen, reticulum and omasum of sheep. Am J Physiol 232:453–459

    Google Scholar 

  • Waldroup PW, Mitchell RJ, Payne JR et al (1976) Performance of chicks fed diets formulated to minimize excess levels of essential amino acids. Poult Sci 55:243–253

    PubMed  CAS  Google Scholar 

  • Wallis IR, Balnave D (1984) The influence of environmental temperature, age and sex on the digestibility of amino acids in growing broiler chickens. Br Poult Sci 25:401–407

    PubMed  CAS  Google Scholar 

  • Warren WP, Martz FA, Asay KH et al (1974) Digestibility and reate of passage by steers fed fescue, alfalfa and orchard grass hay in 18 and 38°C ambient temperatures. J Anim Sci 39:93–96

    Google Scholar 

  • Webster AJF, Gordon JG, McGregor R (1978) The cold tolerance of beef and dairy type calves in the first weeks of life. Anim Prod 26:85–92

    Google Scholar 

  • Webster AJF (1974) Prediction of heat losses from cattle exposed to cold outdoor environments. J Appl Physiol 30:634–643

    Google Scholar 

  • Webster AJF (1981) Optimal housing criteria for ruminants. In: Clark JA (ed) Enviromnental aspect of housing for animal production. Butterworths, London

    Google Scholar 

  • Weniger JH, Stein M (1992) Influence of environmental temperature and humidity on nutrient digestibility of sheep. 1. Aims, experimental procedure and digestibility. Zuchtungskunde 64:148–155

    Google Scholar 

  • West JW (2003) Effects of heat-stress on production in dairy cattle. J Dairy Sci 86:2131–2144

    PubMed  CAS  Google Scholar 

  • Xin H, Lee K (1996) Use of Aqua-Jel® and feed for nutrient supply during long journey air transport of baby chicks. Trans ASAE 39:1123–1126

    Google Scholar 

  • Young BA, Walker B, Dixon AE et al (1989) Physiological adaptation to the environment. J Anim Sci 67:2426–2432

    PubMed  CAS  Google Scholar 

  • Young BA (1975) Temperature induced changes in metabolism in body weight of cattle (Bos taurus). Can J Physiol Pharmacol 53:947–953

    PubMed  CAS  Google Scholar 

  • Young BW (1976) Effects of cold environments on nutrient requirements of ruminants. In: Fonnesbeck PV, Harris LF, Kearl LC (eds) Proceedings 1st international symposium on feed composition, animal nutrient requirements, and computerization of diets, Logan, Utah State University, pp 491–496

    Google Scholar 

  • Yousef MK (1985) Basic principles. Stress physiology in livestock, vol 1. CRC Press, Boca Raton

    Google Scholar 

  • Zuprizal M, Larbiel A, Chagneau M et al (1993) Influence of ambient temperature of true digestibility of protein and amino acids of rapeseed and soybean meal in broilers. Poult Sci 72:289–295

    CAS  Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to Nira Manik Soren .

Editor information

Editors and Affiliations

Rights and permissions

Reprints and permissions

Copyright information

© 2012 Springer-Verlag Berlin Heidelberg

About this chapter

Cite this chapter

Soren, N.M. (2012). Nutritional Manipulations to Optimize Productivity During Environmental Stresses in Livestock. In: Sejian, V., Naqvi, S., Ezeji, T., Lakritz, J., Lal, R. (eds) Environmental Stress and Amelioration in Livestock Production. Springer, Berlin, Heidelberg. https://doi.org/10.1007/978-3-642-29205-7_8

Download citation

Publish with us

Policies and ethics