Skip to main content
Log in

Changes in physiological and neuroendocrine properties during thermal adaptation of golden hamsters (Mesocricetus auratus)

  • Published:
Journal of Comparative Physiology B Aims and scope Submit manuscript

Summary

Golden hamsters raised at 22°C were adapted in the early summer for 3 weeks to either 28°C or 5°C. To achieve profound changes the photoperiod was also shortened from 14 h to 11 h during adaptation to cold. During the investigation body weight, food consumption, water intake, urine production, and osmolality, as well as secreted amounts of noradrenaline (NA) and dopamine (DA), were recorded in each animal before, during, and after the adaptation period. In another group of golden hamsters the brains were processed for immunocytochemical detection of arginine-vasopressin (AVP) and corticotropin releasing factor (CRF) in the third week of adaptation to a cold or warm environment. In warm-adapted animals food and water consumption and urine production remained unchanged or were only slightly reduced. NA and DA secretion were reduced by 50%. The AVP-immunoreactivity reflected an antidiuretic state in these animals. In fibers influencing the adrenal axis, AVP-immunoreactivity was weak compared to CRF fibers. Food and water consumption, urine production, and DA secretion increased two-fold during cold adaptation. Daily secreted amounts of NA increased nine-fold. AVP-immunoreactivity was weak in projections to the neurohypophysis. Fibers influencing the adrenal axis, however, displayed strong AVP-immunoreactivity in comparison to that of CRF. The immunocytochemically determined patterns of AVP and CRF distribution indicated an activation of the osmoregulative axis in the warm-adapted animals and of the adrenal axis in the cold-adapted golden hamsters.

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

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Similar content being viewed by others

Abbreviations

NA :

noradrenaline

DA :

dopamine

AVP :

argininevasopressin

CRF :

corticotropin releasing factor

SON :

supraoptic nucleus

References

  • Bilezikjian LM, Blount AL, Vale WW (1987) The cellular actions of vasopressin on corticotrophs of the anterior pituitary: resistance to glucocorticoid action. Mol Endocrinol 1: 451–458

    Google Scholar 

  • Bilezikjian LM, Vale WW (1987) Regulation of ACTH secretion from corticotrophs: The interactions of vasopressin and CRF. Annals New York Academy of Sciences 512: 85–96

    Google Scholar 

  • Brück K, Zeisberger E (1987) Adaptive changes in thermoregulation and their neuropharmacological basis. Pharmacol Ther 35: 163–215

    Google Scholar 

  • Cannon B, Rehnmark S, Nechad M, Herron D, Jacobsson A, Kopecky J, Obregon MJ, Nedergaard J (1989) Hormonal control of brown fat recruitment. In: Malan A, Canguilhem B (eds) Living in the cold. John Libbey Eurotext, pp 359–366

  • Gordon CJ, Fehlner KS, Long MD (1986) Relationship between autonomic and behavioral thermoregulation in the golden hamster. Am J Physiol 251: R320-R324

    Google Scholar 

  • Hayward JN, Baker MA (1968) Diuretic and thermoregulatory responses to preoptic cooling in the monkey. Am J Physiol 214: 843–850

    Google Scholar 

  • Heldmaier G, Steinlechner S, Rafael J, Latteier B (1982) Photoperiod and ambient temperature as environmental cues for seasonal thermogenic adaptation in the djungarian hamster, Phodopus sungorus. Int J Biometeor 26: 339–345

    Google Scholar 

  • Heroux O (1955) Acclimation of adrenalectomized rats to low environmental temperature. Am J Physiol 181: 75–78

    Google Scholar 

  • Kiss JZ (1988) Dynamism of chemoarchitecture in the hypothalamic paraventricular nucleus. Brain Res Bull 20: 699–708

    Google Scholar 

  • Klingenspor M, Klaus S, Wiesinger H, Heldmaier G (1989) Short photoperiod and cold activate brown fat lipoprotein lipase in the djungarian hamster. Am J Physiol 257: R1123-R1127

    Google Scholar 

  • McElroy JF, Mason PW, Hamilton JM, Wade GN (1986) Effects of diet and photoperiod on NE turnover and GDP binding in Siberian hamster brown adipose tissue. Am J Physiol 250: R383-R388

    Google Scholar 

  • Merker G, Blähser S (1979) Immunocytochemische Darstellung der Vasopressin-Neurone im Nucleus supraopticus wacher und winterschlafender Goldhamster. Verh Anat Ges 73: 951–952

    Google Scholar 

  • Merker G, Blähser S, Zeisberger E (1980) Reactivity pattern of vasopressin containing neurons and its relation to the antipyretic reaction in the pregnant guinea pig. Cell Tissue Res 212: 47–61

    Google Scholar 

  • Merker G, Roth J, Zeisberger E (1989) Thermoadaptive influence on reactivity pattern of vasopressinergic neurons in the guinea pig. Experientia 45: 722–726

    Google Scholar 

  • Nakashima T, Hori T, Kiyohara T, Shibata M (1985) Osmosensitivity of preoptic thermosensitive neurons in hypothalamic slices in vitro. Pflügers Arch 405: 112–117

    Google Scholar 

  • Pohl H (1965) Temperature regulation and cold acclimation in the golden hamster. J Appl Physiol 20: 405–410

    Google Scholar 

  • Rafael J, Vsiansky P (1985) Photoperiodic control of the thermogenic capacity in brown adipose tissue of the djungarian hamster. J Therm Biol 10: 167–170

    Google Scholar 

  • Roth J, Zeisberger E, Schwandt HJ (1988) Influence of increased catecholamine levels in blood plasma during cold adaptation and intramuscular infusion on thresholds of thermoregulatory reactions in guinea pigs. J Comp Physiol B 157: 855–863

    Google Scholar 

  • Rothwell NJ, Stock MJ (1984) Brown adipose tissue In: Baker PF (ed), Rec Adv Physiol 11, Churchill Livingstone, Edinburgh, pp 349–384

    Google Scholar 

  • Sachs L (1978) Angewandte Statistik. Springer, Berlin Heidelberg New York

    Google Scholar 

  • Schleicher ED, Kees FK, Wieland OH (1983) Analysis of total urinary catecholamines by liquid chromatography: Methodology, routine experience and clinical interpretations of results. Clin Chem Acta 129: 295–302

    Google Scholar 

  • Shum A, Johnson EG, Flattery KF (1969) Influence of ambient temperature on excretion of catecholamines and metabolites. Am J Physiol 216:1164–1169

    Google Scholar 

  • Schmidt-Nielsen K, Schmidt-Nielsen B, Jarnum SA, Houpt TR (1957) Body temperature of the camel and its relation to water cconomy. Am J Physiol 188: 103–112

    Google Scholar 

  • Silva NL, Boulant JA (1984) Effects of osmotic pressure, glucose, and temperature on neurons in preoptic slices. Am J Physiol 247: R335-R345

    Google Scholar 

  • Sternberger L (1974) Immunocytochemistry. Prentice Hall, Englewood Cliffs, NJ

    Google Scholar 

  • Vandesande F, Dierickx K, DeMey J (1977) The origin of vasopressinergic and oxitocinergic fibers in the external region of the median eminence of the rat hypophysis. Cell Tissue Res 180: 551–558

    Google Scholar 

  • Werner R (1990) The activity of the sympathoadrenal system during moderate hypothermia induced by helium-oxygen atmosphere and cold in the Syrian hamster. J Comp Physiol B: in press

  • Wünnenberg W, Merker G, Speulda E (1976) Thermosensitivity of preoptic neurons in a hihernator (golden hamster) and a non-hibernator (guinea-pig). Pflügers Arch 363: 113–123

    Google Scholar 

  • Wünnenberg W, Merker G, Speulda E (1978) Thermosensitivity of preoptic neurons and hypothalamic integrative function in hibernators and non-hibernators. In: Wang LCH, Hudson JW (eds) Strategies in cold: natural torpidity and thermogenesis. Academic Press, New York, pp 267–297

    Google Scholar 

  • Zeisberger E, Brück K (1967) Quantitative Beziehung zwischen Noradrenalin-Effekt und Ausmaß der zitterfreien Thermogenese beim Meerschweinchen. Pflügers Arch 296: 263–275

    Google Scholar 

  • Zeisberger E, Roth J (1988) Role of catecholamines in thermoregulation of cold-adapted and newborn guinea-pigs. In: Künzel W, Jensen A (eds) The endocrine control of the fetus. Springer, Berlin Heidelberg New York, pp 288–299

    Google Scholar 

  • Zeisberger E, Roth J (1989) Changes in peripheral and central release of hormones during thermal adaptation in the guineapig. In: Malan A, Canguilhem B (eds) Living in the cold. John Libbey Eurotext, pp 435–444

  • Zeisberger E, Roth J, Simon E (1988) Changes in water balance and in release of arginine vasopressin during thermal adaptation in guinea pigs. Pflügers Arch 412: 285–291

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Rights and permissions

Reprints and permissions

About this article

Cite this article

Roth, J., Merker, G., Nürnberger, F. et al. Changes in physiological and neuroendocrine properties during thermal adaptation of golden hamsters (Mesocricetus auratus). J Comp Physiol B 160, 153–159 (1990). https://doi.org/10.1007/BF00300947

Download citation

  • Accepted:

  • Issue Date:

  • DOI: https://doi.org/10.1007/BF00300947

Key words

Navigation