PubMed HealthSearch

PubMed · 7432877

Fever.

Abstract

Fever, the regulation of body temperature at an elevated level, is a common response to infection throughout the vertebrates. Mammals and birds rely on both physiologic and behavioral mechanisms to raise their body temperatures to this elevated thermoregulatory "set-point" during infection. Lower vertebrates such as fishes and reptiles primarily rely on behavior to elevate their body temperatures. For example, the febrile lizard will spend greater lengths of time near a heat source, and as a result its body temperature rises. A fever appears to be induced by a variety of substances such as bacteria, viruses, and fungi. These inducers of fever result in various types of phagocytes producing a heat-labile protein(s?), endogenous pyrogen. It is this endogenous pyrogen that is thought to result, ultimately, in the thermoregulatory set-point being raised. Within the past several years considerable evidence has accumulated that moderate elevations in body temperature are beneficial to the infected host. Studies with bacterial and viral infected animals have shown that moderate fevers increase survival rate. Many components of the nonspecific host defense response to infection such as leukocyte mobility, lymphocyte transformation, and effects of interferon, appear to be enhanced by elevations in temperature that simulate moderate fevers. In addition, some evidence indicates that a fever in conjunction with the changes in plasma iron levels known to occur during infection is a synergistic host defense response. More research needs to be done to determine for specific diseases whether moderate fevers are beneficial, neutral, or harmful to the infected host.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

M J Kluger. 1980. Fever.. https://pubmed.ncbi.nlm.nih.gov/7432877/

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Genome sequencing and population genetics provide insights into local adaptation of Opisthopappus species on cliff environments of Taihang Mountains.

Local adaptation represents a pivotal theme in evolutionary biology. The Opisthopappus genus, comprising Opisthopappus longilobus and O. taihangensis, thrives on the cliffs of the Taihang Mountains. During their evolutionary history, two species are hypothesized to have locally adapted to their cliff habitats. In the present study, we employed a combined approach of whole-genome sequencing of O. taihangensis and population genomic analysis from both species to gain deeper insights into their patterns of local adaptation. Our results revealed that the expansive genome of O. taihangensis (3010.18 Mb), a consequence of a whole-genome duplication (WGD) event, coupled with a high proportion of repetitive sequences (82.70%), was postulated as one of its adaptive strategies. A clear differentiation between O. taihangensis and O. longilobus was observed, with the two species diverging approximately 17.57 million years ago (Mya), with O. longilobus serving as the ancestor. Since their divergence, limited gene flow was observed between the two species. Post-divergence, the effective population sizes of both species expanded, yet underwent a dramatic reduction at approximately 0.07 Mya. Furthermore, a total of 798 adaptive genes were identified, of which 207 overlapped with expanded genes, and eight genes were found to be under positive selection. These genes primarily regulated the growth and development of both species via pathways such as oxidation-reduction and ubiquitin-proteasome, enabling them to withstand climate changes. These findings provide profound insights into the local adaptation of Opisthopappus species to the cliff environments and offer valuable clues for further exploring the local adaptation among various cliff-dwelling organisms.

Adaptation, Physiological

Variation in Drosophila melanogaster central metabolic genes appears driven by natural selection both within and between populations.

In this report, we examine the hypothesis that the drivers of latitudinal selection observed in the eastern US Drosophila melanogaster populations are reiterated within seasons in a temperate orchard population in Pennsylvania, USA. Specifically, we ask whether alleles that are apparently favoured in northern populations are also favoured early in the spring, and decrease in frequency from the spring to autumn with the population expansion. We use SNP data collected for 46 metabolic genes and 128 SNPs representing the central metabolic pathway and examine for the aggregate SNP allele frequencies whether the association of allele change with latitude and that with increasing days of spring-autumn season are reversed. Testing by random permutation, we observe a highly significant negative correlation between these associations that is consistent with this expectation. This correlation is stronger when we confine our analysis to only those alleles that show significant latitudinal changes. This pattern is not caused by association with chromosomal inversions. When data are resampled using SNPs for amino acid change the relationship is not significant but is supported when SNPs associated with cis-expression are only considered. Our results suggest that climate factors driving latitudinal molecular variation in a metabolic pathway are related to those operating on a seasonal level within populations.

Adaptation, Physiological