Aquatic insects are well-adapted to freshwater environments, but metabolic mechanisms of such adaptations, particularly to primary environmental factors (e.g., hypoxia, water pressure, dark light, and abundant microbes), are poorly known. Most firefly species (Coleoptera: Lampyridae) are terrestrial, but the larvae of a few species are aquatic. We generated 24 global metabolomic profiles of larvae and adults of (freshwater) and (terrestrial) to identify freshwater adaptation-related metabolites (AARMs). We identified 110 differentially abundant metabolites (DAMs) in (adults vs. aquatic larvae) and 183 DAMs in (adults vs. terrestrial larvae). Furthermore, 100 DAMs specific to aquatic larvae were screened as AARMs via interspecific comparisons ( vs. ), which were primarily involved in antioxidant activity, immune response, energy production and metabolism, and chitin biosynthesis. They were assigned to six categories/superclasses (e.g., lipids and lipid-like molecules, organic acids and derivatives, and organoheterocyclic compound). Finally, ten metabolic pathways shared between KEGG terms specific to aquatic fireflies and enriched by AARMs were screened as aquatic adaptation-related pathways (AARPs). These AARPs were primarily involved in energy metabolism, xenobiotic biodegradation, protection of oxidative/immune damage, oxidative stress response, and sense function (e.g., glycine, serine and threonine metabolism, drug metabolism-cytochrome P450, and taste transduction), and certain aspects of morphology (e.g., steroid hormone biosynthesis). These results provide evidence suggesting that abundance changes in metabolomes contribute to freshwater adaptation of fireflies. The metabolites identified here may be vital targets for future work to determine the mechanism of freshwater adaptation in insects.
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http://dx.doi.org/10.3390/insects13090823 | DOI Listing |
Sci Rep
December 2024
Graduate School of Bioagricultural Sciences, Nagoya University, Nagoya, 464-8601, Japan.
The bioluminescence reaction of firefly luciferase with D-luciferin has become an indispensable imaging technique in modern biology and life science experiments, but the high cost of D-luciferin is limiting its further application. Here, we report a practical, one-pot synthesis of D-luciferin from p-benzoquinone (p-BQ), L-cysteine methyl ester and D-cysteine, with an overall yield of 46%. Our route, which is six steps in length and proceeds via 2-cyano-6-hydroxybenzothiazole, is inspired by the mechanistic study of our previously reported biomimetic, non-enzymatic, one-pot formation of L-luciferin from p-BQ and L-cysteine.
View Article and Find Full Text PDFInsects
November 2024
Istituto Zooprofilattico Sperimentale della Sardegna, 09125 Cagliari, Italy.
Heliciculture farms are susceptible to significant biotic issues that can impact snail breeding, among them, the entomofauna predation of snails. Predatory insects can cause damage to snail shells during predation, and sometimes, the specific type of damage may be characteristic of certain insect families or species. Under laboratory conditions, we analysed the predatory activity of the species Illiger, 1798 (Coleoptera: Silphidae), (Müller, 1764) (Coleoptera: Staphylinidae), () Kraatz, 1899 (Coleoptera: Carabidae), and Geisthardt, 1987 (Coleoptera: Lampyridae) against the gastropod (Müller, 1774) reared on snail farms located in the Sardinian region.
View Article and Find Full Text PDFSyst Biol
November 2024
GeoBio-Center, Ludwig-Maximilians-Universität Mu¨nchen, 80333 Munich, Germany.
Zookeys
September 2024
Department of Zoology, Faculty of Science, Palacky University, 17. listopadu 50, 77146 Olomouc, Czech Republic Palacky University Olomouc Czech Republic.
Drilini are soft-bodied predatory click beetles with incompletely metamorphosed females. Approximately 150 described species are distributed in the Afrotropical, Palaearctic and Oriental realms, with the highest diversity known from sub-Saharan Africa. In this study, we describe from Namibia which brings the total number of genera in Drilini to 16.
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