Literature DB >> 23723035

Coping with thermal challenges: physiological adaptations to environmental temperatures.

Glenn J Tattersall1, Brent J Sinclair, Philip C Withers, Peter A Fields, Frank Seebacher, Christine E Cooper, Shane K Maloney.   

Abstract

Temperature profoundly influences physiological responses in animals, primarily due to the effects on biochemical reaction rates. Since physiological responses are often exemplified by their rate dependency (e.g., rate of blood flow, rate of metabolism, rate of heat production, and rate of ion pumping), the study of temperature adaptations has a long history in comparative and evolutionary physiology. Animals may either defend a fairly constant temperature by recruiting biochemical mechanisms of heat production and utilizing physiological responses geared toward modifying heat loss and heat gain from the environment, or utilize biochemical modifications to allow for physiological adjustments to temperature. Biochemical adaptations to temperature involve alterations in protein structure that compromise the effects of increased temperatures on improving catalytic enzyme function with the detrimental influences of higher temperature on protein stability. Temperature has acted to shape the responses of animal proteins in manners that generally preserve turnover rates at animals' normal, or optimal, body temperatures. Physiological responses to cold and warmth differ depending on whether animals maintain elevated body temperatures (endothermic) or exhibit minimal internal heat production (ectothermic). In both cases, however, these mechanisms involve regulated neural and hormonal over heat flow to the body or heat flow within the body. Examples of biochemical responses to temperature in endotherms involve metabolic uncoupling mechanisms that decrease metabolic efficiency with the outcome of producing heat, whereas ectothermic adaptations to temperature are best exemplified by the numerous mechanisms that allow for the tolerance or avoidance of ice crystal formation at temperatures below 0°C. 2012 American Physiological Society. Compr Physiol 2:2037-2061, 2012.

Mesh:

Year:  2012        PMID: 23723035     DOI: 10.1002/cphy.c110055

Source DB:  PubMed          Journal:  Compr Physiol        ISSN: 2040-4603            Impact factor:   9.090


  60 in total

Review 1.  Mammalian cold TRP channels: impact on thermoregulation and energy homeostasis.

Authors:  Rosa Señarís; Purificación Ordás; Alfonso Reimúndez; Félix Viana
Journal:  Pflugers Arch       Date:  2018-04-26       Impact factor: 3.657

2.  Staying hot to fight the heat-high body temperatures accompany a diurnal endothermic lifestyle in the tropics.

Authors:  Danielle L Levesque; Andrew Alek Tuen; Barry G Lovegrove
Journal:  J Comp Physiol B       Date:  2018-04-05       Impact factor: 2.200

Review 3.  Effects of temperature on feeding and digestive processes in fish.

Authors:  Helene Volkoff; Ivar Rønnestad
Journal:  Temperature (Austin)       Date:  2020-05-18

4.  Mitochondrial volume density and evidence for its role in adaptive divergence in response to thermal tolerance in threespine stickleback.

Authors:  Matthew R J Morris; Sara J S Wuitchik; Jonathan Rosebush; Sean M Rogers
Journal:  J Comp Physiol B       Date:  2021-03-31       Impact factor: 2.200

5.  Hot and covered: how dragons face the heat and thermoregulate.

Authors:  Ian R G Black; Laura K Aedy; Glenn J Tattersall
Journal:  J Comp Physiol B       Date:  2021-02-18       Impact factor: 2.200

6.  Novel energy-saving strategies to multiple stressors in birds: the ultradian regulation of body temperature.

Authors:  Glenn J Tattersall; Damien Roussel; Yann Voituron; Loïc Teulier
Journal:  Proc Biol Sci       Date:  2016-09-28       Impact factor: 5.349

7.  Avian thermoregulation in the heat: efficient evaporative cooling in two southern African nightjars.

Authors:  Ryan S O'Connor; Blair O Wolf; R Mark Brigham; Andrew E McKechnie
Journal:  J Comp Physiol B       Date:  2016-11-03       Impact factor: 2.200

Review 8.  The extraordinary AFD thermosensor of C. elegans.

Authors:  Miriam B Goodman; Piali Sengupta
Journal:  Pflugers Arch       Date:  2017-12-08       Impact factor: 3.657

9.  Environmental structure and energetic consequences in groups of young mice.

Authors:  Delia S Shelton; Paul M Meyer; Karen M Ocasio
Journal:  Physiol Behav       Date:  2017-04-20

10.  Physiological regulation of evaporative water loss in endotherms: is the little red kaluta (Dasykaluta rosamondae) an exception or the rule?

Authors:  Philip C Withers; Christine E Cooper
Journal:  Proc Biol Sci       Date:  2014-04-16       Impact factor: 5.349

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