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RESEARCH PRODUCT
De novo biosynthesis of simple aromatic compounds by an arthropod ( Archegozetes longisetosus )
Martin KaltenpothMartin KaltenpothAdrian BrücknerAdrian BrücknerMichael Heethoffsubject
10010106 biological sciencesEvolutionChemical defence010603 evolutionary biology01 natural sciencesGeneral Biochemistry Genetics and Molecular Biology03 medical and health scienceschemistry.chemical_compoundPolyketideBiosynthesisPolyketide synthaseAromatic amino acidsAnimalsOrganic ChemicalsSymbiosisArthropods030304 developmental biologyGeneral Environmental Science2. Zero hungerMites0303 health sciencesGeneral Immunology and MicrobiologybiologyChemistry70chemical ecologyFungi15General Medicine129Oribatid mitesShikimic acidbiology.organism_classificationArchegozetes longisetosusbiosynthetic pathwaysBiochemistryBenzenoidsHorizontal gene transferbiology.proteinGeneral Agricultural and Biological SciencesPolyketide SynthasesBacteriaResearch Articledescription
The ability to synthesize simple aromatic compounds is well known from bacteria, fungi and plants, which all share an exclusive biosynthetic route—the shikimic acid pathway. Some of these organisms further evolved the polyketide pathway to form core benzenoids via a head-to-tail condensation of polyketide precursors. Arthropods supposedly lack the ability to synthesize aromatics and instead rely on aromatic amino acids acquired from food, or from symbiotic microorganisms. The few studies purportedly showing de novo biosynthesis via the polyketide synthase (PKS) pathway failed to exclude endosymbiotic bacteria, so their results are inconclusive. We investigated the biosynthesis of aromatic compounds in defence secretions of the oribatid mite Archegozetes longisetosus . Exposing the mites to a diet containing high concentrations of antibiotics removed potential microbial partners but did not affect the production of defensive benzenoids. To gain insights into benzenoid biosynthesis, we fed mites with stable-isotope labelled precursors and monitored incorporation with mass spectrometry. Glucose, malonic acid and acetate, but not phenylalanine, were incorporated into the benzenoids, further evidencing autogenous biosynthesis. Whole-transcriptome sequencing with hidden Markov model profile search of protein domain families and subsequent phylogenetic analysis revealed a putative PKS domain similar to an actinobacterial PKS, possibly indicating a horizontal gene transfer.
year | journal | country | edition | language |
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2020-09-02 | Proceedings of the Royal Society B: Biological Sciences |