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Erschienen in: European Journal of Applied Physiology 1/2010

01.05.2010 | Review Article

Concepts to utilize in describing thermoregulation and neurophysiological evidence for how the system works

verfasst von: Kazuyuki Kanosue, Larry I. Crawshaw, Kei Nagashima, Tamae Yoda

Erschienen in: European Journal of Applied Physiology | Ausgabe 1/2010

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Abstract

We would like to emphasize about the system involved with homeostatic maintenance of body temperature. First, the primary mission of the thermoregulatory system is to defend core temperature (T core) against changes in ambient temperature (T a), the most frequently encountered disturbance for the system. T a should be treated as a feedforward input to the system, which has not been adequately recognized by thermal physiologists. Second, homeostatic demands from outside the thermoregulatory system may require or produce an altered T core, such as fever (demand from the immune system). There are also conditions where some thermoregulatory effectors might be better not recruited due to demands from other homeostatic systems, such as during dehydration or fasting. Third, many experiments have supported the original assertion of Satinoff that multiple thermoregulatory effectors are controlled by different and relatively independent neuronal circuits. However, it would also be of value to be able to characterize strictly regulatory properties of the entire system by providing a clear definition for the level of regulation. Based on the assumption that T core is the regulated variable of the thermoregulatory system, regulated T core is defined as the T core that pertains within the range of normothermic T a (Gordon in temperature and toxicology: an integrative, comparative, and environmental approach, CRC Press, Boca Raton, 2005), i.e., the T a range in which an animal maintains a stable T core. The proposed approach would facilitate the categorization and evaluation of how normal biological alterations, physiological stressors, and pathological conditions modify temperature regulation. In any case, of overriding importance is to recognize the means by which an alteration in T core (and modification of associated effector activities) increases the overall viability of the organism.
Literatur
Zurück zum Zitat Boulant JA (1974) The effect of firing rate on preoptic neuronal thermosensitivity. J Physiol 240:661–669PubMed Boulant JA (1974) The effect of firing rate on preoptic neuronal thermosensitivity. J Physiol 240:661–669PubMed
Zurück zum Zitat Cabanac M (2006) Adjustable set point: to honor Harold T. Hammel. J Appl Physiol 100:1338–1346CrossRefPubMed Cabanac M (2006) Adjustable set point: to honor Harold T. Hammel. J Appl Physiol 100:1338–1346CrossRefPubMed
Zurück zum Zitat Caputa M, Romanovsky AA (2005) Comments on “Do fever and anapyrexia exist? Analysis of set point-based definitions”. Am J Physiol Regul Integr Comp Physiol 289:R281 (author reply R281–R282)PubMed Caputa M, Romanovsky AA (2005) Comments on “Do fever and anapyrexia exist? Analysis of set point-based definitions”. Am J Physiol Regul Integr Comp Physiol 289:R281 (author reply R281–R282)PubMed
Zurück zum Zitat Crawshaw LI, O’Connor CS (1997) Behavioural compensation for long-term thermal change. In: Wood CM, McDonald DG (eds) Global warming: implications for freshwater and marine fish. Cambridge University Press, Cambridge, pp 351–376 Crawshaw LI, O’Connor CS (1997) Behavioural compensation for long-term thermal change. In: Wood CM, McDonald DG (eds) Global warming: implications for freshwater and marine fish. Cambridge University Press, Cambridge, pp 351–376
Zurück zum Zitat Crawshaw LI, Stitt JT (1975) Behavioral and autonomic induction of prostaglandin E1 fever in squirrel monkeys. J Physiol 244:197–206PubMed Crawshaw LI, Stitt JT (1975) Behavioral and autonomic induction of prostaglandin E1 fever in squirrel monkeys. J Physiol 244:197–206PubMed
Zurück zum Zitat Curtiss PS (2001) Controls fundamentals. In: Kreider JF (ed) Handbook of heating, ventilation, and air conditioning. CRC Press, New York, pp 5-1–5-45 Curtiss PS (2001) Controls fundamentals. In: Kreider JF (ed) Handbook of heating, ventilation, and air conditioning. CRC Press, New York, pp 5-1–5-45
Zurück zum Zitat Gordon CJ (2005) Temperature and toxicology: an integrative, comparative, and environmental approach. CRC Press, Boca RatonCrossRef Gordon CJ (2005) Temperature and toxicology: an integrative, comparative, and environmental approach. CRC Press, Boca RatonCrossRef
Zurück zum Zitat Hammel HT (1965) Neurones and temperature regulation. In: Yamamoto WS, Brobeck JR (eds) Physiological controls and regulations. Sauders, Philadelphia, pp 71–97 Hammel HT (1965) Neurones and temperature regulation. In: Yamamoto WS, Brobeck JR (eds) Physiological controls and regulations. Sauders, Philadelphia, pp 71–97
Zurück zum Zitat Hammel HT (1968) Regulation of internal body temperature. Ann Rev Physiol 30:641–710CrossRef Hammel HT (1968) Regulation of internal body temperature. Ann Rev Physiol 30:641–710CrossRef
Zurück zum Zitat Hensel H, Bruck K, Raths P (1973) Body temperatures. In: Precht H, Christophersen J, Hensel H, Larcher W (eds) Temperature and life. Springer, Berlin, pp 509–520 Hensel H, Bruck K, Raths P (1973) Body temperatures. In: Precht H, Christophersen J, Hensel H, Larcher W (eds) Temperature and life. Springer, Berlin, pp 509–520
Zurück zum Zitat Jobling M (1997) Temperature and growth: modulation of growth rate via temperature change. In: Wood CM, McDonald DG (eds) Global warming: implications for freshwater and marine fish. Cambridge University Press, Cambridge, UK, pp 225–253 Jobling M (1997) Temperature and growth: modulation of growth rate via temperature change. In: Wood CM, McDonald DG (eds) Global warming: implications for freshwater and marine fish. Cambridge University Press, Cambridge, UK, pp 225–253
Zurück zum Zitat Kanosue K, Niwa K, Andrew PD, Yasuda H, Yanase M, Tanaka H, Matsumura K (1991) Lateral distribution of hypothalamic signals controlling thermoregulatory vasomotor activity and shivering in rats. Am J Physiol Regul Integr Comp Physiol 260:R486–R493 Kanosue K, Niwa K, Andrew PD, Yasuda H, Yanase M, Tanaka H, Matsumura K (1991) Lateral distribution of hypothalamic signals controlling thermoregulatory vasomotor activity and shivering in rats. Am J Physiol Regul Integr Comp Physiol 260:R486–R493
Zurück zum Zitat Kanosue K, Romanovsky AA, Hosono T, Chen X-M, Yoda T (1997) “Set point” revisited. In: Nielsen Johansen B, Nielsen R (eds) Thermal physiology. August Krogh Institute, Kopenhagen, pp 39–44 Kanosue K, Romanovsky AA, Hosono T, Chen X-M, Yoda T (1997) “Set point” revisited. In: Nielsen Johansen B, Nielsen R (eds) Thermal physiology. August Krogh Institute, Kopenhagen, pp 39–44
Zurück zum Zitat Kanosue K, Hosono T, Zhang Y-H, Chen X-M (1998) Neuronal networks controlling thermoregulatory effectors. In: Sharma HS, Westman J (eds) Progress in brain research, vol 115. Elsevier Science, Amsterdam, pp 49–62 Kanosue K, Hosono T, Zhang Y-H, Chen X-M (1998) Neuronal networks controlling thermoregulatory effectors. In: Sharma HS, Westman J (eds) Progress in brain research, vol 115. Elsevier Science, Amsterdam, pp 49–62
Zurück zum Zitat Kanosue K, Yoshida K, Maruyama M, Nagashima K (2001) The central organization of the thermoregulatory system. In: Kosaka M, Sugahara T, Schmidt KL, Simon E (eds) Thermotherapy for neoplasia, inflammation, and pain. Springer, Tokyo, pp 2–11 Kanosue K, Yoshida K, Maruyama M, Nagashima K (2001) The central organization of the thermoregulatory system. In: Kosaka M, Sugahara T, Schmidt KL, Simon E (eds) Thermotherapy for neoplasia, inflammation, and pain. Springer, Tokyo, pp 2–11
Zurück zum Zitat Konishi M, Nagashima K, Kanosue K (2002) Systemic salt loading decreases body temperature and increases heat-escape/cold-seeking behaviour via the central AT1 and V1 receptors in rats. J Physiol 545:289–296CrossRefPubMed Konishi M, Nagashima K, Kanosue K (2002) Systemic salt loading decreases body temperature and increases heat-escape/cold-seeking behaviour via the central AT1 and V1 receptors in rats. J Physiol 545:289–296CrossRefPubMed
Zurück zum Zitat Konishi M, Nagashima K, Asano K, Kanosue K (2003) Attenuation of metabolic heat production and cold-escape/warm-seeking behaviour during a cold exposure following systemic salt loading in rats. J Physiol 551:713–720CrossRefPubMed Konishi M, Nagashima K, Asano K, Kanosue K (2003) Attenuation of metabolic heat production and cold-escape/warm-seeking behaviour during a cold exposure following systemic salt loading in rats. J Physiol 551:713–720CrossRefPubMed
Zurück zum Zitat McAllen RM, Farrell M, Johnson JM, Trevaks D, Cole L, McKinley MJ, Jackson G, Denton DA, Egan GF (2006) Human medullary responses to cooling and rewarming the skin: a functional MRI study. Proc Natl Acad Sci USA 103:809–813CrossRefPubMed McAllen RM, Farrell M, Johnson JM, Trevaks D, Cole L, McKinley MJ, Jackson G, Denton DA, Egan GF (2006) Human medullary responses to cooling and rewarming the skin: a functional MRI study. Proc Natl Acad Sci USA 103:809–813CrossRefPubMed
Zurück zum Zitat Mekjavic IB, Eiken O (2006) Contribution of thermal and nonthermal factors to the regulation of body temperature in humans. J Appl Physiol 100:2065–2072CrossRefPubMed Mekjavic IB, Eiken O (2006) Contribution of thermal and nonthermal factors to the regulation of body temperature in humans. J Appl Physiol 100:2065–2072CrossRefPubMed
Zurück zum Zitat Morrison SF, Nakamura K, Madden CJ (2008) Central control of thermogenesis in mammals. Exp Physiol 93:773–797CrossRefPubMed Morrison SF, Nakamura K, Madden CJ (2008) Central control of thermogenesis in mammals. Exp Physiol 93:773–797CrossRefPubMed
Zurück zum Zitat Nagashima K, Nakai S, Tanaka M, Kanosue K (2000) Neuronal circuitries involved in thermoregulation. Auton Neurosci: Basic Clin 85:18–25CrossRef Nagashima K, Nakai S, Tanaka M, Kanosue K (2000) Neuronal circuitries involved in thermoregulation. Auton Neurosci: Basic Clin 85:18–25CrossRef
Zurück zum Zitat Nagashima K, Nakai S, Konishi M, Su L, Kanosue K (2001) Increased heat-escape/cold-seeking behavior following hypertonic saline injection in rats. Am J Physiol Regul Integr Comp Physiol 280:R1031–R1036PubMed Nagashima K, Nakai S, Konishi M, Su L, Kanosue K (2001) Increased heat-escape/cold-seeking behavior following hypertonic saline injection in rats. Am J Physiol Regul Integr Comp Physiol 280:R1031–R1036PubMed
Zurück zum Zitat Nagashima K, Nakai S, Matsue K, Konishi M, Tanaka M, Kanosue K (2003) Effects of fasting on thermoregulatory processes and the daily oscillations in rats. Am J Physiol Regul Integr Comp Physiol 284:R1486–R1493PubMed Nagashima K, Nakai S, Matsue K, Konishi M, Tanaka M, Kanosue K (2003) Effects of fasting on thermoregulatory processes and the daily oscillations in rats. Am J Physiol Regul Integr Comp Physiol 284:R1486–R1493PubMed
Zurück zum Zitat Nagashima K, Matsue K, Konishi M, Iidaka C, Miyazaki K, Ishida N, Kanosue K (2005) The involvement of Cry1 and Cry2 genes in the regulation of the circadian body temperature rhythm in mice. Am J Physiol Regul Integr Comp Physiol 288:R329–R335PubMed Nagashima K, Matsue K, Konishi M, Iidaka C, Miyazaki K, Ishida N, Kanosue K (2005) The involvement of Cry1 and Cry2 genes in the regulation of the circadian body temperature rhythm in mice. Am J Physiol Regul Integr Comp Physiol 288:R329–R335PubMed
Zurück zum Zitat Nakamura K, Morrison SF (2008a) Preoptic mechanism for cold-defensive responses to skin cooling. J Physiol 586:2611–2620CrossRefPubMed Nakamura K, Morrison SF (2008a) Preoptic mechanism for cold-defensive responses to skin cooling. J Physiol 586:2611–2620CrossRefPubMed
Zurück zum Zitat Nakamura K, Morrison SF (2008b) A thermosensory pathway that controls body temperature. Nat Neurosci 11:62–71CrossRefPubMed Nakamura K, Morrison SF (2008b) A thermosensory pathway that controls body temperature. Nat Neurosci 11:62–71CrossRefPubMed
Zurück zum Zitat Roberts WW, Mooney RD (1974) Brain areas controlling thermoregulatory grooming, prone extension, locomotion, and tail vasodilation in rats. J Comp Physiol Psychol 86:470–480CrossRefPubMed Roberts WW, Mooney RD (1974) Brain areas controlling thermoregulatory grooming, prone extension, locomotion, and tail vasodilation in rats. J Comp Physiol Psychol 86:470–480CrossRefPubMed
Zurück zum Zitat Romanovsky AA (2004) Do fever and anapyrexia exist? Analysis of set point-based definitions. Am J Physiol Regul Integr Comp Physiol 287:R992–R995PubMed Romanovsky AA (2004) Do fever and anapyrexia exist? Analysis of set point-based definitions. Am J Physiol Regul Integr Comp Physiol 287:R992–R995PubMed
Zurück zum Zitat Satinoff E (1978) Neural organization and evolution of thermal regulation in mammals. Science 201:16–22CrossRefPubMed Satinoff E (1978) Neural organization and evolution of thermal regulation in mammals. Science 201:16–22CrossRefPubMed
Zurück zum Zitat Simon E (1974) Temperature regulation: the spinal cord as a site of extrahypothalamic thermoregulatory functions. Rev Physiol Biochem Pharmacol 71:1–76CrossRefPubMed Simon E (1974) Temperature regulation: the spinal cord as a site of extrahypothalamic thermoregulatory functions. Rev Physiol Biochem Pharmacol 71:1–76CrossRefPubMed
Zurück zum Zitat Stitt JT (1978) Hypothalamus and thermoregulation. In: Veale WL, Lederis K (eds) Current studies of hypothalmic function, vol 2. Karger, Basel, pp 44–54 Stitt JT (1978) Hypothalamus and thermoregulation. In: Veale WL, Lederis K (eds) Current studies of hypothalmic function, vol 2. Karger, Basel, pp 44–54
Zurück zum Zitat Stitt JT, Hardy JD (1971) Thermoregulation in the squirrel monkey (Saimiri sciureus). J Appl Physiol 31:48–54PubMed Stitt JT, Hardy JD (1971) Thermoregulation in the squirrel monkey (Saimiri sciureus). J Appl Physiol 31:48–54PubMed
Zurück zum Zitat Stitt JT, Adair ER, Nadel ER, Stolwijk JA (1971) The relation between behavior and physiology in the thermoregulatory response of the squirrel monkey. J Physiol (Paris) 63:424–427 Stitt JT, Adair ER, Nadel ER, Stolwijk JA (1971) The relation between behavior and physiology in the thermoregulatory response of the squirrel monkey. J Physiol (Paris) 63:424–427
Zurück zum Zitat Tanaka M, McKinley MJ, McAllen RM (2009) Roles of two preoptic cell groups in tonic and febrile control of rat tail sympathetic fibers. Am J Physiol Regul Integr Comp Physiol 296:R1248–R1257PubMed Tanaka M, McKinley MJ, McAllen RM (2009) Roles of two preoptic cell groups in tonic and febrile control of rat tail sympathetic fibers. Am J Physiol Regul Integr Comp Physiol 296:R1248–R1257PubMed
Zurück zum Zitat Werner J (1980) The concept of regulation for human body temperature. J Thermal Biol 5:75–82CrossRef Werner J (1980) The concept of regulation for human body temperature. J Thermal Biol 5:75–82CrossRef
Zurück zum Zitat Yanase M, Kanosue K, Yasuda H, Tanaka H (1991) Salivary secretion and grooming behaviour during heat exposure in freely moving rats. J Physiol 432:585–592PubMed Yanase M, Kanosue K, Yasuda H, Tanaka H (1991) Salivary secretion and grooming behaviour during heat exposure in freely moving rats. J Physiol 432:585–592PubMed
Zurück zum Zitat Yoda T, Crawshaw LI, Yoshida K, Liu S, Hosono T, Shido O, Sakurada S, Fukuda Y, Kanosue K (2000) Effects of food deprivation on daily changes in body temperature and behavioral thermoregulation in rats. Am J Physiol Regul Integr Comp Physiol 278:R134–R139PubMed Yoda T, Crawshaw LI, Yoshida K, Liu S, Hosono T, Shido O, Sakurada S, Fukuda Y, Kanosue K (2000) Effects of food deprivation on daily changes in body temperature and behavioral thermoregulation in rats. Am J Physiol Regul Integr Comp Physiol 278:R134–R139PubMed
Metadaten
Titel
Concepts to utilize in describing thermoregulation and neurophysiological evidence for how the system works
verfasst von
Kazuyuki Kanosue
Larry I. Crawshaw
Kei Nagashima
Tamae Yoda
Publikationsdatum
01.05.2010
Verlag
Springer-Verlag
Erschienen in
European Journal of Applied Physiology / Ausgabe 1/2010
Print ISSN: 1439-6319
Elektronische ISSN: 1439-6327
DOI
https://doi.org/10.1007/s00421-009-1256-6

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