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Dallas, J. W.

Publications and source records attributed to Dallas, J. W..

2 recordsLinked to original sources

Heat Tolerance is Affected by the Gut Microbiota in a Vertebrate Ectotherm

The gut microbiota is known to influence and have regulatory effects in diverse physiological functions of host animals, but only recently has the relationship between host thermal biology and gut microbiota been explored. Here, we examined how early-life manipulations of the gut microbiota in larval amphibians influenced their critical thermal maximum (CTmax) at different acclimation temperatures. We removed the resident microbiome on the outside of wild-caught wood frog (Lithobates sylvaticus) egg masses via an antibiotic wash, and then either maintained eggs without a microbiota or inoculated eggs with pond water or the intestinal microbiota of another species, green frogs (L. clamitans), that have a wider thermal tolerance. We predicted that this cross-species transplant would improve the CTmax of the recipient wood frog larvae relative to the other treatments. In line with this prediction, green frog-recipient larvae had the highest CTmax while those with no inoculum had the lowest CTmax. Both the microbiome treatment and acclimation temperature significantly influenced the larval gut microbiota communities and alpha diversity indices. Green frog inoculated larvae were enriched in Rikenellaceae relative to the other treatments, which produce short-chain fatty acids and could contribute to greater energy availability and enhanced heat tolerance. Larvae that received no inoculation had higher relative abundances of potentially pathogenic Aeromonas spp., which negatively affects host health and performance. Our results are the first to show that cross-species gut microbiota transplants alter heat tolerance in a predictive manner. This finding has repercussions for the conservation of species that are threatened by climate change and demonstrates a need to further explore the mechanisms by which the gut microbiota modulates host thermal tolerance.

zoology↗

Heat Hardening of a Larval Amphibian is Dependent on Acclimation Period and Temperature

The thermal tolerance-plasticity trade-off hypothesis states that acclimation to warmer environments increases basal thermal tolerance in ectotherms but reduces plasticity in coping with acute thermal stress characterized as heat hardening. We examined the potential trade-off between basal heat tolerance and hardening plasticity, measured as critical thermal maximum (CTmax) of a larval amphibian, Lithobates sylvaticus, in response to differing acclimation temperatures (15{degrees} and 25{degrees}C) and periods (3 or 7 days). A hardening treatment applied 2 hours before CTmax assays induced pronounced plastic hardening responses in the cool, 15{degrees}C treatment after 7 days of acclimation, compared to controls. Warm acclimated larvae at 25{degrees}C, by contrast, exhibited minor hardening responses, but significantly increased basal thermal tolerance. These results support the trade-off hypothesis and fill a knowledge gap in larval amphibian thermal plasticity. Elevated environmental temperatures induce acclimation in heat tolerance yet constrains ectotherm capacity to cope with further acute thermal stress. Summary StatementA larval amphibian follows the trade-off hypothesis such that the group with the highest basal heat tolerance displays the lowest hardening response and vice-versa.

physiology↗