Welcome to Loot.co.za!
Sign in / Register |Wishlists & Gift Vouchers |Help | Advanced search
|
Your cart is empty |
|||
Showing 1 - 6 of 6 matches in All Departments
This fourth volume in the series covers such topics as endogenous fuels, electric organs, histidine-related dipeptides, and origins of luciferins. The book will be invaluable to fisheries scientists, aquaculturists, and animal biochemists, physiologists and endocrinologists; it will provide researchers and students with a pertinent information source from theoretical and experimental angles.
This second volume in the series covers such topics as DNA fingerprinting of fishes, the cytochromes P450 in fish, the molecular biology of bacterial fish diseases, and new insights into the origins of the diversity and distribution of fish antifreeze proteins. The book will be of great value to fisheries scientists, animal biochemists, physiologists and endocrinologists, and aquaculturists. It will provide researchers and students alike with a pertinent information source from theoretical and experimental angles.
Freshwater turtles and goldfish can survive for several days without oxygen, some diving turtles for several months; hibernating animals can exist without food for long periods; others can survive extreme conditions such as desiccation, freezing, and thawing. These creatures are, in effect, self-sustaining life-support systems, with a mysterious ability to regulate their own metabolisms. These capabilities raise important questions, which Hochachka and Guppy explore in this seminal new book. What mechanisms turn down (or off) cell metabolism and other cell functions? How does an animal such as an opossum know when to activate mechanisms for slowing or stopping tissue and organ functions? How does it know when to turn them on again? How extensive is metabolic arrest as a defense against harsh environmental conditions? Can we decipher universal principles of metabolic arrest from available data? The lessons to be learned are of potentially great interest to clinicians, because the authors provide a theoretical framework in which to organize an attack on the all-too-practical problem of protecting tissues against hypoxia. Areas that may be influenced include research on cardiac arrest, strokes, acute renal failure, liver ischemia, lung injury, respiratory defense syndrome, claudication, shock, and organ transplant. Investigation of other metabolic arrest mechanisms may be similarly useful in both clinical and agricultural fields. This is a pioneering book of great use to biomedical/clinical researchers and to biologists, biochemists, and physiologists generally.
This third volume in the series covers such topics as anaesthetics, cannulation and injection techniques, and surgery. The book will be invaluable to fisheries scientists, aquaculturists, and animal biochemists, physiologists and endocrinologists; it will provide researchers and students with a pertinent information source from theoretical and experimental angles.
Innumerable clinical problems have as their basis some derangement in oxygen-dependent metabolism. To explore mechanisms of adjusting to oxygen limitation, "Living without Oxygen" presents a bestiary of exotic anaerobes that illuminate elements of metabolic biochemistry only dimly seen in studies using standard experimental animals. With their exaggerated anaerobic capabilities, Hochachka's diving mammals, airbreathing fishes, and hypoxia-adapted lower vertebrates allow a detailed assessment of what can and what cannot be adjusted in the process of extending hypoxia tolerance. The book places the enzymatic and biochemical machinery firmly in the biological context and assumes only a modest familiarity with bioenergetics and metabolic biochemistry. The author's clear prose should make this technical presentation pleasantly unintimidating for any physiologist, biochemist, or clinical investigator. The insights of his unique approach make "Living without Oxygen" essential reading.
This new series on The Biochemistry and Molecular Biology of Fishes
grew out of the demand for state-of-the-art review articles in a
rapidly expanding field of research. Up to the present, most
research literature on biochemistry involved rats and humans, but
new breakthroughs in the piscine setting have indicated that the
field is ready for a review series of its own. Because of funding
and experimental availability restrictions, most research in the
field has dealt with fish and insects. Within the insect field,
comparative biochemistry and comparative physiology have proceeded
along independent paths as opposed to the piscine field, where the
tendency has been for the latter to envelop the former.
|
You may like...
|