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246 results for “body temperature”
Data from: Green‐brown polymorphism in alpine grasshoppers affects body temperature
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Data from: Remarkable similarity of oxygen tolerance across marine taxa when standardized for temperature and body size
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Data and analysis from: Body mass, temperature, and depth shape the maximum intrinsic rate of population increase in sharks and rays
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Supplementary material: How should functional relationships be evaluated using phylogenetic comparative methods? A case study using metabolic rate and body temperature
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Exposure to exogenous egg cortisol does not rescue juvenile Chinook salmon body size, condition, or survival from the effects of elevated water temperatures
<p class="NormalThesis">Climate change is leading to altered temperature regimes which are impacting aquatic life, particularly for ectothermic fish. The impacts of environmental stress can be translated across generations through maternally-derived glucocorticoids, leading to altered offspring phenotypes. Although these maternal stress effects are often considered negative, recent studies suggest this maternal stress signal may prepare offspring for a similarly stressful environment (environmental match). We applied the environmental match hypothesis to examine whether a prenatal stress signal can dampen the effects of elevated water temperatures on body size, condition, and survival during early development in Chinook salmon <i>Oncorhynchus tshawytscha</i> from Lake Ontario, Canada. We exposed fertilized eggs to prenatal exogenous egg cortisol (1000ng*mL<sup>-1</sup> cortisol or 0ng*mL<sup>-1</sup> control) and then reared these dosed groups at temperatures indicative of current (+0°C) and future (+3°C) temperature conditions. Offspring reared in elevated temperatures were smaller and had a lower survival at the hatchling developmental stage. Overall, we found that our exogenous cortisol dose did not dampen effects of elevated rearing temperatures (environmental match) on body size or early survival. Instead, our eyed stage survival indicates that our prenatal cortisol dose may be detrimental, as cortisol-dosed offspring raised in elevated temperatures had lower survival than cortisol-dosed and control reared in current temperatures. Our results suggest that a maternal stress signal may not be able to ameliorate the effects of thermal stress during early development. However, we highlight the importance of interpreting the fitness impacts of maternal stress within an environmentally relevant context.</p>
Small increases in ambient temperature reduce offspring body mass in an equatorial mammal
<p class="MsoNormal">Human-induced climate change is leading to temperature rises, along with increases in the frequency and intensity of heatwaves. Many animals respond to high temperatures through behavioural thermoregulation, for example by resting in the shade, but this may impose opportunity costs by reducing foraging time (therefore energy supply), and so may be most effective when food is abundant. However, the heat dissipation limit theory (HDL) proposes that even when energy supply is plentiful, high temperatures can still have negative effects. This is because dissipating excess heat becomes harder, which limits processes that generate heat such as lactation. We tested predictions from HDL on a wild, equatorial population of banded mongooses (<em>Mungos mungo</em>). In support of HDL, higher ambient temperatures led to lighter pups, and increasing food availability made little difference to pup weight under hotter conditions. This suggests that direct physiological constraints rather than opportunity costs of behavioural thermoregulation explain the negative impact of high temperatures on pup growth. Our results indicate that climate change may be particularly important for equatorial species, which often experience high temperatures year-round so cannot time reproduction to coincide with cooler conditions.</p>
Data from: Larval diet and temperature alter mosquito immunity and development: using body size and developmental traits to track carry-over effects on longevity
<p><span><strong>Background</strong>:</span><span> Estimating arbovirus transmission potential requires a mechanistic understanding of how environmental factors influence the expression of adult mosquito traits. While preimaginal exposure to environmental factors can have profound effects on adult traits, tracking and predicting these effects remains challenging. </span></p> <p><span><strong>Methods</strong>:</span><span> Using <em>Aedes albopictus</em> and a structural equation modelling approach, we explored how larval nutrition and temperature jointly affect development rate and success, body size, and whether these metrics capture carry-over effects on adult longevity. Additionally, we investigated how larval diet and temperature affect the baseline expression of ten immune genes. </span></p> <p><span><strong>Results</strong>:</span><span> We found that larval development </span><span>success</span><span> was primarily determined by diet, while temperature and diet both affected development rate, pupal wet weight, and wing length. Effects of diet on both morphometric measures and their relationships to adult longevity were asymmetrical, with wing length having a positive association and pupal weight a negative association. Larval diet indirectly affected adult longevity, and the time to pupation was negatively correlated with longevity. </span><span>The</span><span> expression of </span><span>eight </span><span>immune genes from Toll, </span><span>JAK-STAT, and Imd pathways </span><span>was enhanced in mosquitoes with higher nutrition. </span></p> <p><span><strong>Conclusions</strong>:</span><span> Our results highlight deficiencies from using a single body size measure to capture carry-over effects on adult traits. Further studies of larval development rate under varying environmental conditions and its potential for tracking carry-over effects on vectorial capacity are warranted. </span></p>
Extended incubation recesses in Sanderlings are impacted by temperature and body condition
<p>Complex incubation strategies have evolved to solve the trade-off between parent survival and care for their eggs with often brief departures (recesses) that maximise egg survival or infrequent extended recesses maximising adult condition. Here we examined incubation behaviour of Sanderlings (<em>Calidris alba</em>), a species that exhibits both bi- and uniparental incubation behaviour. During 11 breeding seasons in Greenland, we have quantified incubation variability with thermologgers placed in nests. We estimated the impact of environmental conditions and individual characteristics on the occurrence and the duration of recesses. We found that extended recesses are a unique feature of uniparentals, and their frequency and duration increased in colder temperatures. The relationship was mediated by body condition, with individuals in poor condition performing longer extended recesses in colder temperatures. This suggests that extended recesses may represent a shift towards self-maintenance at the expense of the egg care, allowing birds to continue incubating under unfavourable conditions. Our study illustrates how extended recesses may be a key breeding strategy to overcome high energetical costs associated with incubation. Quantifying such behavioural flexibility paves the way for tracking future behavioural responses of individuals in the face of changing environments.</p>
Body mass, temperature, and pathogen intensity differentially affect critical thermal maxima and their population-level variation in a solitary bee
<p>Climate change presents a major threat to species distribution and persistence. Understanding what abiotic or biotic factors influence the thermal tolerances of natural populations is critical to assessing their vulnerability under rapidly changing thermal regimes. This study evaluates how body mass, local climate, and pathogen intensity influence heat tolerance and its population-level variation (SD) among individuals of the solitary bee <em>Xenoglossa pruinosa</em>. We assess the sex-specific relationships between these factors and heat tolerance given the differences in size between sexes and the ground-nesting behavior of the females. We collected <em>X. pruinosa</em> individuals from fourteen sites across Pennsylvania, USA that varied in mean temperature, precipitation, and soil texture. We measured the critical thermal maxima (CT<sub>max</sub>) of <em>X. pruinosa</em> individuals as our proxy for heat tolerance, and used quantitative PCR to determine relative intensities of three parasite groups—trypanosomes, <em>Spiroplasma apis</em> (mollicute bacteria), and <em>Vairimorpha apis</em> (microsporidian). While there was no difference in CT<sub>max</sub> between the sexes, we found that CT<sub>max</sub> increased significantly with body mass, and that this relationship was stronger for males than for females. Air temperature, precipitation, and soil texture did not predict mean CT<sub>max</sub> for either sex. However, population-level variation in CT<sub>max</sub> was strongly and negatively correlated with air temperature, which suggests that temperature is acting as an environmental filter. Of the parasites screened, only trypanosome intensity correlated with heat tolerance. Specifically, trypanosome intensity negatively correlated with the CT<sub>max</sub> of female <em>X. pruinosa</em> but not males. Our results highlight the importance of considering size, sex, and infection status when evaluating thermal tolerance traits. Importantly, this study reveals the need to evaluate trends in the variation of heat tolerance within and between populations, and consider implications of reduced variation in heat tolerance for the persistence of ectotherms in future climate conditions. </p>
Gigantic genomes of salamanders indicate body temperature, not genome size, is the driver of global methylation and 5-methylcytosine deamination in vertebrates
<p>Transposable elements (TEs) are sequences that replicate and move throughout genomes, and they can be silenced through methylation of cytosines at CpG dinucelotides. TE abundance contributes to genome size, but TE silencing variation across genomes of different sizes remains underexplored. Salamanders include most of the largest C-values -- 9 to 120 Gb. We measured CpG methylation levels in salamanders with genomes ranging from 2N = ~58 Gb to 4N = ~116 Gb. We compared these levels to results from endo- and ectothermic vertebrates with more typical genomes. Salamander methylation levels are ~90%, higher than all endotherms. However, salamander methylation does not differ from other ectotherms, despite a ~100-fold difference in nuclear DNA content. Because methylation affects the nucleotide compositional landscape through 5-methylcytosine deamination to thymine, we quantified salamander CpG dinucleotide levels and compared them to other vertebrates. Salamanders and other ectotherms have comparable CpG levels, and ectotherm levels are higher than endotherms. These data show no shift in global methylation at the base of salamanders, despite a dramatic increase in TE load and genome size. This result is reconcilable with previous studies by considering endothermy and ectothermy, which may be more important drivers of methylation in vertebrates than genome size.</p>
Data for: Adaptive variation in the upper limits of avian body temperature
<p><span>Physiological performance declines precipitously at high body temperature (Tb), but little attention has been paid to adaptive variation in upper Tb limits among endotherms. We hypothesized that avian maximum tolerable body temperature (T<sub>b</sub><em>max</em>) has evolved in response to climate, with higher T<sub>b</sub><em>max</em> in species exposed to high environmental heat loads or humidity-related constraints on evaporative heat dissipation. To test this hypothesis, we compared T<sub>b</sub><em>max</em> and related variables among 53 bird species at multiple sites in South Africa with differing maximum air temperatures (T<sub><em>air</em></sub>) and humidity using a phylogenetically-informed comparative framework. Birds in humid, lowland habitats had comparatively high T<sub>b</sub><em>max</em> (mean ± SD = 45.60 ± 0.58°C) and low normothermic T<sub>b</sub> (T<sub>b</sub><em>norm</em>), with a significantly greater capacity for hyperthermia (T<sub>b</sub><em>max</em> -T<sub>b</sub><em>norm</em> gradient = 5.84 ± 0.77 °C) compared to birds occupying cool montane (4.97 ± 0.99 °C) or hot arid (4.11 ± 0.84 °C) climates. Unexpectedly, T<sub>b</sub><em>max</em> was significantly lower among desert birds (44.65 ± 0.60°C), a surprising result in light of the functional importance of hyperthermia for water conservation. Our data reveal a macrophysiological pattern and support recent arguments that endotherms have evolved thermal generalization <em>versus </em>specialization analogous to the continuum among ectothermic animals. Specifically, a combination of modest hyperthermia tolerance and efficient evaporative cooling in desert birds is indicative of thermal specialization, whereas greater hyperthermia tolerance and less efficient evaporative cooling among species in humid lowland habitats suggests thermal generalization.</span></p>
Data for: Ectoparasite population dynamics affected by host body size but not host density or water temperature in a 32-year long time series
<p>Host density, host body size, and ambient temperature have all been positively associated with increases in parasite infection. However, the relative importance of these factors in shaping long-term parasite population dynamics in wild host populations is unknown due to the absence of long-term studies. Here, we examine long-term drivers of gill lice (Copepoda) infections in Arctic charr (Salmonidae) over 32 years. We predicted that host density and body size and water temperature would all positively affect parasite population size and population growth rate. Our results show that fish size was the main driver of gill lice infections in Arctic charr. In addition, Arctic charr became infected at smaller sizes and with more parasites in years of higher brown trout population size. Negative intraguild interactions between brown trout and Arctic charr appear to drive smaller Arctic charr to seek refuge in deeper areas of the lake, thus increasing infection risk. There was no effect of host density on the force of infection, and the relationship between Arctic charr density and parasite mean abundance was negative, possibly due to an encounter-dilution effect. The population densities of host and parasite fluctuated independently of one another. Water temperature had negligible effects on the temporal dynamics of the gill lice population. Understanding long-term drivers of parasite population dynamics is key for research and management. In fish farms, artificially high densities of hosts lead to vast increases in the transmission of parasitic copepods. However, in wild fish populations fluctuating at natural densities, the surface area available for copepodid attachment might be more important than the density of available hosts.</p>
Data for: Beyond latitude: Temperature, productivity, and thermal niche conservatism drive global body size variation in Odonata
<p><strong><span>Aim</span></strong><span>: </span><span>So far, </span><span>latitudinal body size-clines have been primarily discussed in the context of thermoregulation, sensu Bergmann. However, body size patterns are ambiguous in ectotherms and this heterogeneity remains poorly understood. We tested whether Bergmann's rule and the resource availability rule which states that energetic requirements determine species' body size, apply to damselflies and dragonflies (Odonata). Furthermore, we hypothesised that the contrasting effects of thermoregulation and resource availability (e.g. productivity) can obscure the overall gradient in body size variation.</span></p> <p><span><strong>Location</strong>: </span><span>Global</span></p> <p><span><strong>Time</strong> <strong>period</strong>: </span><span>Contemporary</span></p> <p><span><strong>Major</strong> <strong>taxa</strong> <strong>studied</strong>: </span><span>Odonata</span></p> <p><span><strong>Methods</strong>:</span><span> Using data for 43% of all odonate species described so far, we tested our hypotheses in phylogenetically and spatially comparative analyses at assemblage and species level. </span><span>For the distribution data, we integrated expert range maps and ecoregional ranges based on all available occurrence records. To distinguish between long-term versus evolutionarily recent responses of environmental drivers in body size, we constructed a phylogenetically informed classification of all odonate species and decomposed the body size into its phylogenetic and specific component for our subset of species.</span></p> <p><span><strong>Results</strong>: </span><span>We documented a weak positive relationship between body length and latitude but found strong and contrasting effects for temperature between dragonflies and damselflies and consistent positive effects for productivity that explained 35%–57% of body size variation. Moreover, we showed a strong phylogenetic signal in sized-based thermoregulation that shaped the distribution of dragonflies, but not of damselflies.</span></p> <p><span><strong>Main</strong> <strong>conclusion</strong>: </span><span>We concluded that temperature, productivity, and conservatism in size-based thermoregulation synergistically determine the distribution of ectotherms, while the taxon-specific importance of these factors can lead to contrasting results and weak latitude–size relationships. Our results reinforce the importance of body size as a determinant of species distributions and responses to climate change.</span></p>
A seven-year record of fluctuating core body temperatures of nesting leatherback and hawksbill sea turtles
<p>Sea turtles experience considerable changes in water temperatures during migrations and seasonal movements that will influence their body temperatures. Nothing is known of how sea turtles' core body temperatures vary from season to season at nesting sites. Over seven consecutive seasons we measured the surface temperatures of freshly laid eggs as proxies of core body temperatures of sea turtles using non-contact infrared thermometers. We estimated the temperatures of two species that have contrasting migration patterns - leatherbacks, which are adapted to migrate between tropical breeding sites to cold temperate waters, and hawksbills that are confined to the tropics and sub-tropics. We found considerable year-to-year variations in temperatures in both species (means ranging from 30.4°C to 31.5°C in leatherbacks), hawksbills the more so (28.1°C to 30.3°C). These differences will likely be modified by both natural seasonal variations and anthropogenic changes in global ocean temperatures and resulting changes in currents and water temperatures local to nesting beaches. These previously unrecognised fluctuations in body temperatures of nesting turtles have, it is argued, potential for predicting environmental tolerances, reproductive success, and nest site selection by sea turtles, and contribute to predictions of which rookeries may remain viable or not during future ocean warming.</p>
Effects of Intravenous Acetaminophen on Body Temperature and Hemodynamic Responses in Febrile Critically Ill Adults
ClinicalTrials.gov study NCT01869699. IPD Sharing: NO. Countries: 1. Publications: 13.
Body Temperature in Persons With Tetraplegia When Exposed to Heat
ClinicalTrials.gov study NCT01890915. IPD Sharing: Not stated. Countries: 1. Publications: 2.
Body Temperature in Persons With Tetraplegia When Exposed to Cold
ClinicalTrials.gov study NCT01822535. IPD Sharing: Not stated. Countries: 1. Publications: 1.
Study of a New Clinical Device for Reducing Body Core Temperature
ClinicalTrials.gov study NCT01996982. IPD Sharing: NO. Countries: 1. Publications: 9.
A Study of Effects of Delay in the First Bathing Time of Body Temperature and the Rate of Exclusive Breastfeeding
ClinicalTrials.gov study NCT05425394. IPD Sharing: NO. Countries: 1. Publications: 51.
A seven-year record of fluctuating core body temperatures of nesting leatherback and hawksbill sea turtles
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Allen Brain Atlas
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