bioRxiv Science⌕ Search

Biology subjects

Bicego, K. C.

Publications and source records attributed to Bicego, K. C..

2 recordsLinked to original sources

When cold-bloods heat up: meta-analytical evidence that climatic variability mediates behavioural fever in amphibians and reptiles

Fever is a widespread and adaptive defence response that enhances immune performance through an increase in body temperature above normal values. In ectotherms, fever is expressed behaviourally through the selection of warmer microhabitats following infection, yet its magnitude and determinants vary widely across species and environments. Here, we performed a phylogenetically informed meta-analysis of behavioural fever in amphibians and reptiles to test whether its expression was shaped by climatic thermal variability, pathogen identity, and taxonomy. Specifically, we tested the hypotheses that (i) species from thermally variable environments would exhibit stronger behavioural fever than species from thermally stable environments, consistent with the climate variability hypothesis, and that (ii) reptiles would exhibit stronger fever responses than amphibians due to lower hydrothermal constraints. Across 47 studies encompassing 103 effect sizes, we found that behavioural fever is widespread but highly context-dependent. We found that evidence for behavioural fever was strongest in species from more thermally variable habitats, regardless of body size and phylogeny, suggesting that access to thermally heterogeneous landscapes and enhanced behavioural plasticity amplify the capacity to sustain febrile responses. Contrary to our hypothesis, amphibians exhibited stronger fever responses than reptiles, possibly reflecting differences in baseline thermoregulatory demands and environmental opportunity, or as a consequence of methodological artefacts. The expression of behavioural fever also varied with pathogen identity, with bacterial infections eliciting larger body temperature increases than fungal or viral challenges, although pathogen representation was uneven across studies. Together, our results support the idea that the capacity to express behavioural fever depends on access to thermally heterogeneous landscapes, and may vary according to pathogen biology. Ultimately, our study emphasises that temperature is not a background condition for host-pathogen interactions, but an active and environmentally contingent component of ectotherm immune defence in amphibians and reptiles.

physiology↗

The alternative oxidase reconfigures the larval mitochondrial electron transport system to accelerate growth and development in Drosophila melanogaster

The alternative oxidase (AOX) is naturally present in the mitochondrial electron transfer system (ETS) of many organisms but absent in vertebrates and most insects. AOX oxidizes coenzyme Q and reduces O2 in H2O, partially replacing the ETS cytochrome c segment and alleviating the oxidative stress caused by ETS overload. As successfully demonstrated in animal models, AOX shows potential in mitigating mitochondrial diseases. However, its non-proton-pumping nature may uncouple mitochondria, leading to excessive heat generation and interference with normal metabolism and physiology. Here we show that AOX from the tunicate Ciona intestinalis accelerates development of Drosophila melanogaster, elevating larval biomass accumulation (primarily due to increased fat), mobility and food intake, without increasing body heat production. AOX intensifies Leak respiration and lowers oxidative phosphorylation efficiency through functional interactions with the mitochondrial glycerol-3-phosphate dehydrogenase (mGPDH). This is associated with increased complex I (CI)-driven respiration and supercomplex formation, higher cellular NAD+/NADH ratios, and an enhanced flux through the central carbon metabolism. Chemical uncouplers and rotenone confirm the roles of mitochondrial uncoupling and CI in the development of AOX-expressing larvae. Thus, AOX appears to be promoting increased growth by reinforcing the larval proliferative metabolic program via an intricate mechanism that reconfigures the larval ETS.

biochemistry↗