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Whitaker, M. R. L.

Publications and source records attributed to Whitaker, M. R. L..

2 recordsLinked to original sources

Why do plants make opioids? Testing the herbivore defense hypothesis for psychoactive alkaloids in kratom

A growing body of literature proposes that psychoactive plant compounds evolved as defenses against herbivorous insects, with their neurological effects in humans an evolutionary accident of conserved receptor architecture. This hypothesis - which we call the herbivore defense hypothesis - is widely invoked but rarely tested empirically. We report a controlled dietary bioassay in which Spodoptera frugiperda larvae were fed artificial diet incorporating lyophilized kratom (Mitragyna speciosa) leaf powder or purified mitragynine, the primary psychoactive compound in kratom leaf. Kratom leaf caused dose-dependent larval mortality, suppressed growth rates, and reduced pupation rates across all tested concentrations, with near-complete mortality at the highest dose. Purified mitragynine produced modest but significant growth suppression relative to the control, but had no significant effect on survival and was substantially outperformed by whole leaf powder at the same mitragynine-equivalent concentration. Because insects lack the {micro}-opioid receptors through which mitragynine exerts its psychoactive effects in mammals, its insecticidal activity cannot be mediated by the same receptor interaction responsible for its human pharmacology. We use these findings to critically evaluate the herbivore defense hypothesis, and find that its current framing is insufficient to answer one of chemical ecologys most compelling questions: why do plants make compounds that alter the human mind?

ecology↗

Specialized metabolic convergence in the gut microbiomes of cycad-feeding insects tolerant to β-methylamino-L-alanine (BMAA)

Ingestion of the cycad toxins {beta}-methylamino-L-alanine (BMAA) and azoxyglycosides is harmful to diverse organisms. However, some insects are specialized to feed on toxin-rich cycads with apparent immunity. Some cycad-feeding insects possess a common set of gut bacteria, which might play a role in detoxifying cycad toxins. Here, we investigated the composition of gut microbiota from a worldwide sample of cycadivorous insects and characterized the biosynthetic potential of bacteria isolated as putative keystone taxa. Cycadivorous insects shared a core gut microbiome consisting of six bacterial taxa, mainly belonging to the Proteobacteria, which we were able to isolate. To further investigate these potential keystone taxa from diverging lineages, we performed shotgun metagenomic sequencing of co-cultured bacterial sub-communities. We postulate and characterize four putative keystone bacteria from Serratia, Pantoea, and two different Stenotrophomonas lineages. The biosynthetic potential of these microorganisms includes a suite of biosynthetic gene clusters notably rich in siderophores and carotenoid-like aryl polyene pathways. Siderophore semi-untargeted metabolomics revealed a broad range of chemically related yet diverse iron-chelating metabolites, indicating a complex evolutionary landscape in which siderophores may have converged within the guts of cycadivorous insects. Among these, we provide evidence of the occurrence of an unprecedent desferrioxamine-like biosynthetic pathway that remains to be identified. These results provide a foundation for future investigations into how cycadivorous insects tolerate diets rich in azoxyglycosides, BMAA, and other cycad toxins, and highlight convergent evolution underlying chemical diversity.

microbiology↗