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Updated: Jan 26, 2026

Biotinylated Cell-penetrating Peptides to Study Intracellular Protein-protein Interactions
Published on: December 20, 2017
Intracellular Antimicrobial Peptides Targeting the Protein Synthesis Machinery
Michael Graf1, Daniel N Wilson2
1Institute for Biochemistry and Molecular Biology, University of Hamburg, Hamburg, Germany.
Abstract:
While antimicrobial peptides (AMPs) are well-known for their disruptive effects on bacterial membranes, the mechanism of many intracellular AMPs is still being elucidated. In the recent years, it has been demonstrated that the subclass of proline-rich AMPs (PrAMPs) can pass through the bacterial membrane and kill bacteria by inhibiting protein synthesis. PrAMPs are a product of the innate immune system and are secreted in response to bacterial infection. So far PrAMPs have been identified in many arthropods, such as beetles, wasps, and flies, as well as some mammals, such as sheep, cows, and goats. PrAMPs show high potency against Gram-negative bacteria, while exhibiting low toxicity in eukaryotes, suggesting that they may represent a promising avenue for the development of future antimicrobial agents to combat the increase of multidrug-resistant bacterial pathogens. Structural and biochemical data have revealed the PrAMP binding sites on the ribosome as well as insight into their mechanisms of action. While the binding site of all so far investigated PrAMPs is situated within nascent polypeptide exit tunnel, the mechanism of action is distinct between class I and II PrAMPs. Specifically, class I PrAMPs, such as Bac7, Onc112, pyrrhocoricin, and metalnikowin, block the delivery of aa-tRNA by EF-Tu to the ribosomal A-site, whereas the class II PrAMPs, such as apidaecin 1b and Api137, act during translation termination and inhibit protein synthesis by trapping of release factors on the 70S ribosome following hydrolysis of the nascent polypeptide chain.
Insights
Proline-rich antimicrobial peptides (PrAMPs) target bacterial protein synthesis intracellularly. These peptides, derived from the innate immune system, offer a promising strategy against multidrug-resistant bacteria.
Area of Science:
- Microbiology
- Biochemistry
- Immunology
Background:
- Antimicrobial peptides (AMPs) are crucial components of the innate immune system.
- Proline-rich AMPs (PrAMPs) are a subclass of AMPs known to inhibit bacterial protein synthesis intracellularly.
- PrAMPs are found in various organisms, including arthropods and mammals, and exhibit potent activity against Gram-negative bacteria with low eukaryotic toxicity.
Purpose of the Study:
- To elucidate the mechanisms of action for intracellular proline-rich antimicrobial peptides (PrAMPs).
- To investigate the binding sites and functional differences of PrAMPs within the bacterial ribosome.
Main Methods:
- Structural and biochemical analyses were employed to identify PrAMP binding sites on the ribosome.
- Comparative analysis of Class I and Class II PrAMPs' mechanisms of action was performed.
Main Results:
- PrAMPs bind within the nascent polypeptide exit tunnel of the ribosome.
- Class I PrAMPs (e.g., Bac7) inhibit aminoacyl-tRNA delivery by EF-Tu.
- Class II PrAMPs (e.g., apidaecin 1b) interfere with translation termination by trapping release factors.
Conclusions:
- PrAMPs represent a promising class of antimicrobial agents for combating multidrug-resistant pathogens.
- Distinct mechanisms of protein synthesis inhibition by Class I and Class II PrAMPs have been elucidated.
- Understanding PrAMP-ribosome interactions provides insights for developing novel therapeutics.
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