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Does oxygen limit thermal tolerance in arthropods? A critical review of current evidence
Comparative biochemistry and physiology. Part A, Molecular & integrative physiology, ISSN 1095-6433, 02/2016, Volume 192, pp. 64 - 78
OCLTT | Respiration physiology | Crustaceans | Insects | Hyperoxia | Thermal biology | Hypoxia | Heat tolerance | Cardiovascular capacity | Ventilation | Climate warming | Circulation | Biochemistry & Molecular Biology | Physiology | Life Sciences & Biomedicine | Zoology | Science & Technology | Arthropods - physiology | Oxygen - pharmacology | Climate | Temperature | Oxygen - physiology | Aquatic Organisms - physiology | Arthropods - metabolism | Oxygen Consumption - physiology | Animals | Crustacea - physiology | Body Temperature Regulation - drug effects | Insecta - physiology | Acclimatization - drug effects | Acclimatization - physiology | Index Medicus | CTmin, critical thermal minimum — as for CTmax, but reflecting the cold tolerance | SMR, standard metabolic rate — the minimum rate of oxygen consumption needed to sustain life in resting, post-absorptive organisms at a given temperature | Tpejus, pejus temperature — the temperature beyond which aerobic metabolism declines rapidly and hypoxemia sets in | Review | SMR, relative aerobic scope, sometimes also referred to as factorial aerobic scope | OCLTT, hypothesis, oxygen and capacity limited thermal tolerance hypothesis | MMR | Topt, optimal temperature — the temperature where an organism can achieve maximum aerobic scope (MMR − SMR) | MMR − SMR, absolute aerobic scope (AAS) | MMR, maximum metabolic rate — the maximum rate at which oxygen can be consumed at a given temperature | Tcrit, critical temperature — the temperature beyond which aerobic metabolism is no longer sufficient to cover energy demand and anaerobic metabolism sets in | CTmax, critical thermal maximum — an empirical endpoint of heat tolerance found in heating trials where the temperature is ramped up, indicating the temperature at which the animal becomes moribund and can no longer escape the adverse temperatures
Journal Article
Physiological entomology, ISSN 0307-6962, 03/2011, Volume 36, Issue 1, pp. 21 - 28
Climate change | guild | CTMax | surface to volume ratio | dry mass | CTMin | critical thermal limits | seasonal activities | hind tibia length | Critical thermal limits | Hind tibia length | Seasonal activities | Surface to volume ratio | Guild | Dry mass | Life Sciences & Biomedicine | Entomology | Science & Technology | Adaptations | Parasitoids | Sympatric populations | Body temperature | Climatic conditions | Sex | Climatic changes | Guilds | Waves | Weather | Heat | Phenology | Temperature effects | Body size | Habitat | Fitness | Biodiversity and Ecology | Environmental Sciences
Journal Article
Functional ecology, ISSN 0269-8463, 2/2009, Volume 23, Issue 1, pp. 133 - 140
Insect physiology | Ecological genetics | Ants | Drosophila | Animal Physiological Ecology | Acclimatization | Heat tolerance | Insect ecology | Ecophysiology | Human ecology | Phenotypic traits | Argentine ant | broad‐sense heritability | macrophysiology | CTMax | CTMin | phenotypic plasticity | heating rate | Phenotypic plasticity | Broad-sense heritability | Heating rate | Macrophysiology | Environmental Sciences & Ecology | Ecology | Life Sciences & Biomedicine | Science & Technology | Fundamental and applied biological sciences. Psychology | Biological and medical sciences | General aspects | Animal and plant ecology | Autoecology | Animal, plant and microbial ecology | Analysis
Journal Article
Functional ecology, ISSN 0269-8463, 11/2017, Volume 31, Issue 11, pp. 2118 - 2127
thermal breadth | aquatic insects | CTMAX | Janzen's hypothesis | CTMIN | vulnerability | climate change | Environmental Sciences & Ecology | Ecology | Life Sciences & Biomedicine | Science & Technology | Climate | Climatic changes | Insects, Aquatic | Seasonal variations | Elevation | Temperature | Insects | Temperature effects | Variability | Predictions | Aquatic insects | Streams
Journal Article
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