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Results for “PHYSIOLOGY, COMPARATIVE”

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At least 19 recordsLinked to original sources

Understanding the limitation of O2 supply through comparative physiology.

Comparative physiology and morphometry are used to explore the role of the lung in the limitation of oxygen supply to working muscle as it is experienced at aerobic capacity and in hypoxia such as at high altitude or in subterraneous burrows. In the human lung, as in that of most mammals, the pulmonary diffusing capacity is about 1.5 times larger than what is needed at aerobic capacity. In athletic species (horse, dog) there is no such excess diffusing capacity. As an exception the pronghorn antelope from the Rocky Mountains is a high performance athletic mammal whose lung shows an excess diffusing capacity. This is interpreted as a means to develop hypoxia tolerance as this animal performs its vigorous runs at high altitude. Information on the fossorial mole rat demonstrates that the lung's diffusing capacity is important in developing hypoxia tolerance. It is concluded that the lung is designed in relation to both internal and external constraints.

Aerobiosis↗

Mass transport in mammalian lungs: comparative physiology.

Comparative physiology of mass transport of gases in mammalian lungs is surveyed in terms of the use of experimental mammals in inhalation toxicology. Principles of similarity, scaling, and the relationship of metabolism to body size are touched on, with reference to the wide variability among mammals of similar size. Mechanisms that influence the magnitude and distribution of pulmonary ventilation are reviewed, including mechanical differences associated with variation in body size. More systematic and complete descriptions and understanding are needed. Recent advances in the understanding of gas mixing and transport in airways and in the pulmonary acinus have applications in comparative physiology and inhalation toxicology that are worth exploring.

Airway Resistance↗

The integration of behaviour into comparative physiology.

Comparative physiology has traditionally focused on the physiological responses of animals to their physicochemical environment. In recent years, awareness has increased among physiologists of the potential for behavioural factors, such as the social environment of the animal, to affect physiological condition and responses. This recognition has led to an emerging trend within the field toward using multidisciplinary approaches that incorporate both behavioural and physiological techniques. Research areas in which the integrated study of behaviour and physiology has been particularly fruitful include the physiology of the social environment, sensory physiology and behaviour, and physiological constraints on behavioural ecology. The manner in which incorporating behavioural considerations has informed the physiological data collected is discussed for each of these areas using specific examples.

Animals↗

Comparative Physiological Studies on Hyperthermophilic Archaea Isolated from Deep-Sea Hot Vents with Emphasis on Pyrococcus Strain GB-D.

Three new sulfur- or non-sulfur-dependent archaeal isolates, including a Pyrococcus strain, from Guaymas Basin hydrothermal vents (Gulf of California; depth, 2,010 m) were characterized and physiologically compared with four known hyperthermophiles, previously isolated from other vent sites, with an emphasis on growth and survival under the conditions particular to the natural habitat. Incubation under in situ pressure (200 atm [1 atm = 101.29 kPa]) did not increase the maximum growth temperature by more than 1 degrees C for any of the organisms but did result in increases in growth rates of up to 15% at optimum growth temperatures. At in situ pressure, temperatures considerably higher than those limiting growth (i.e., > 105 degrees C) were survived best by isolates with the highest maximum growth temperatures, but none of the organisms survived at temperatures of 150 degrees C or higher for 5 min. Free oxygen was toxic to all isolates at growth range temperatures, but at ambient deep-sea temperature (3 to 4 degrees C), the effect varied in different isolates, the non-sulfur-dependent isolate being the most oxygen tolerant. Hyperthermophiles could be isolated from refrigerated and oxygenated samples after 5 years of storage. Cu, Zn, and Pb ions were found to be toxic under nongrowth conditions (absence of organic substrate), with the non-sulfur-dependent isolate again being the most tolerant.

Journal Article↗

Functional genomics and the comparative physiology of hypoxia.

Comparative physiology has proven a powerful approach to our understanding of how animals function under hypoxic conditions and to identifying potential adaptations to environmental oxygen levels. This review considers the potential for using a similar comparative approach with functional genomics to understand the genetic basis of such physiological processes and evolutionary adaptations. Comparative functional genomics is currently limited by genome data, which are available for only a few model organisms. However, comparative studies between model organisms of the same species having slightly different genomes (e.g., in-bred strains of laboratory rodents, transgenic mice, and consomic rats) demonstrate the types of results, as well as the analytical challenges, that are possible if comparative functional genomics is applied to more species. Results from wild and domestic animal studies suggest new models to investigate physiological and evolutionary responses to oxygen levels with functional genomics.

Animals↗

From comparative physiology to toxicological risk assessment.

1. Comparative physiology may help to improve the toxicologists' ability to assess and predict toxicological risks of chemicals. 2. Three main lines of approach have been distinguished, A: comparative research concerning the toxicokinetics of chemicals in different species; B: research concerning ecophysiological characteristics and C: studies aimed at the identification of biological markers that can be used to signal toxic effects in both experimental and free living populations of organisms. 3. Some remarks are made on limiting conditions to be fulfilled in order to make comparative physiology valuable from a toxicological point of view.

Animals↗

Comparative physiology and biochemistry: challenges for the future.

1. Comparative physiology is distinguished from other types of physiology by treating the diversity of solutions of functional problems and by using kind of animal as a functional variable. 2. The strength of comparative physiology os its capacity to give some solutions to problems in basic biology. 3. Specific examples of subject areas to which comparative physiology contributes are: (a) mechanisms underlying evolution; (b) the nature of speciation; (c) comparative cognitive science, neural models for behavior; and (d) applications of molecular techniques to physiology of whole animals. 4. Applications continue in ecology, medicine and agriculture. 5. The breadth of the comparative approach to physiology has important philosophical implications.

Animals↗