Synergy and remarkable specificity of antimicrobial peptides in vivo using a systematic knockout approach.
basic_science · Level V
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- Record sourced from PubMed, PMID 30803481.
- Also identified by DOI 10.7554/eLife.44341 and PMC identifier 6398976.
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Abstract
Antimicrobial peptides (AMPs) are host-encoded antibiotics that combat invading microorganisms. These short, cationic peptides have been implicated in many biological processes, primarily involving innate immunity. In vitro studies have shown AMPs kill bacteria and fungi at physiological concentrations, but little validation has been done in vivo. We utilized CRISPR gene editing to delete all known immune-inducible AMPs of <i>Drosophila,</i> namely: 4 Attacins, 4 Cecropins, 2 Diptericins, Drosocin, Drosomycin, Metchnikowin and Defensin. Using individual and multiple knockouts, including flies lacking all 14 AMP genes, we characterize the in vivo function of individual and groups of AMPs against diverse bacterial and fungal pathogens. We found that <i>Drosophila</i> AMPs act primarily against Gram-negative bacteria and fungi, contributing either additively or synergistically. We also describe remarkable specificity wherein certain AMPs contribute the bulk of microbicidal activity against specific pathogens, providing functional demonstrations of highly specific AMP-pathogen interactions in an in vivo setting.
Medical subject headings
- Anti-Infective Agents
- Antimicrobial Cationic Peptides
- Drosophila
- Immunity, Innate