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Phelps, E. C.

Publications and source records attributed to Phelps, E. C..

2 recordsLinked to original sources

Evolutionary divergence and adaptive potential of scototaxis in juvenile Trinidadian Guppies

Habitat choice and resource acquisition represent an intrinsic trade-off, resulting in variation among individuals and potentially local adaptation among populations. Here, we quantify scototaxis, or preference for dark versus light backgrounds, in juvenile guppies. Scototaxis assays, in which individuals choose between safer dark and riskier light backgrounds, are widely used as a measure of boldness in small fishes, but they can equally be interpreted as choice between two habitats. By rearing and testing 586 fish descended from ten natural populations from Trinidad under common garden conditions, we first quantify (broad sense) heritable variation, i.e. evolutionary potential, within populations. Next, we test for evolutionary divergence among populations in mean preference, and if present, whether ancestral predation regime is a mediator of divergence. Finally, we ask whether families and/or populations differ in the amount of behavioural variation they contain. Preference varied among families (12% of total variance), consistent with broad-sense heritable variation. We also found that mean preference varied among populations (11% of total variance explained). Evolutionary divergence among-populations is partly explained by ancestral predation regime, with populations from low-predation sites showing a stronger preference for dark backgrounds than high-predation populations from the same river. Additionally, we find that within-population behavioural variation is greater in high-predation populations. We conclude that guppy populations contain heritable variation that could facilitate adaptive evolution if scototaxis is subject to natural selection. Furthermore, while genetic drift may also contribute to evolutionary divergence among-populations, observed patterns are qualitatively consistent with local adaption to predation regime. Our results suggests that high predation sites favour bolder habitat choice on average, but also that local predation regime shapes the evolutionary dynamics of variation, perhaps by maintaining shy-bold variation among individuals, or by favouring individuals with less-predictable behaviour.

evolutionary biology↗

Axillary gland gene expression and potency reveal the nature of mimetic relationships in Corydoradinae catfishes

The evolution of Mullerian or Batesian mimicry depends on the relative unpalatability of participating taxa, yet the mechanistic basis of such unpalatability remains poorly explored in many systems. Unpalatability in the Corydoradinae catfishes, known for their striking mimetic diversity, is underpinned by sharp, lockable spines, armoured bodies and the production of venoms/toxins. Here, we assess the contribution of the axillary gland, a structure at the base of the pectoral spine, to toxicity in two Corydoradinae genera, Corydoras and Hoplisoma. Using a brine shrimp cytotoxicity assay, we demonstrate that axillary gland extracts are significantly more toxic than muscle extracts in both genera, but toxicity does not differ significantly between genera. Transcriptomic analyses identified 539 candidate toxin genes upregulated in axillary gland tissue, relative to scute tissue, containing signal peptides and had predicted toxin functions based on amino acid sequences. Notably, candidate genes include domains typical of piscine venoms, such as lectins and peptidase S1. Although significant differences in gene expression were detected between genera in candidate toxins, log-fold changes were small, and predicted toxin potency was not significantly different between genera. Together, our findings indicate that axillary gland toxins are likely to contribute to unpalatability in Corydoradinae catfishes and provide support for Mullerian mimicry in this system.

evolutionary biology↗