# Developing Antimicrobial Synergy With AMPs

**Authors:** Leora Duong, Steven P. Gross, Albert Siryaporn

PMC · DOI: 10.3389/fmedt.2021.640981 · 2021-03-12

## TL;DR

This paper explores how combining antimicrobial peptides with other agents, like histones, can enhance their effectiveness against bacteria.

## Contribution

The paper introduces the potential of histones and histone-like peptides to synergize with antimicrobial peptides for improved bacterial killing.

## Key findings

- Histones can enhance AMP-induced membrane permeation in bacteria.
- Combining AMPs with histones may prevent pore repair and prolong pore opening in bacterial membranes.
- Synergistic antimicrobial effects could lead to better drug design strategies.

## Abstract

Antimicrobial peptides (AMPs) have been extensively studied due to their vast natural abundance and ability to kill microbes. In an era critically lacking in new antibiotics, manipulating AMPs for therapeutic application is a promising option. However, bacterial pathogens resistant to AMPs remain problematic. To improve AMPs antimicrobial efficacy, their use in conjunction with other antimicrobials has been proposed. How might this work? AMPs kill bacteria by forming pores in bacterial membranes or by inhibiting bacterial macromolecular functions. What remains unknown is the duration for which AMPs keep bacterial pores open, and the extent to which bacteria can recover by repairing these pores. In this mini-review, we discuss various antimicrobial synergies with AMPs. Such synergies might arise if the antimicrobial agents helped to keep bacterial pores open for longer periods of time, prevented pore repair, perturbed bacterial intracellular functions at greater levels, or performed other independent bacterial killing mechanisms. We first discuss combinations of AMPs, and then focus on histones, which have antimicrobial activity and co-localize with AMPs on lipid droplets and in neutrophil extracellular traps (NETs). Recent work has demonstrated that histones can enhance AMP-induced membrane permeation. It is possible that histones, histone fragments, and histone-like peptides could amplify the antimicrobial effects of AMPs, giving rise to antimicrobial synergy. If so, clarifying these mechanisms will thus improve our overall understanding of the antimicrobial processes and potentially contribute to improved drug design.

## Linked entities

- **Proteins:** ADSL (adenylosuccinate lyase)

## Full-text entities

- **Genes:** DEFB103B (defensin beta 103B) [NCBI Gene 55894] {aka BD-3, DEFB-3, DEFB103, DEFB3, HBD-3, HBD3}, CAMP (cathelicidin antimicrobial peptide) [NCBI Gene 820] {aka CAP-18, CAP18, CRAMP, FALL-39, FALL39, HSD26}, SNCA (synuclein alpha) [NCBI Gene 6622] {aka NACP, PARK1, PARK4, PD1}
- **Diseases:** infection (MESH:D007239), NETs (MESH:C536657), nephrotic (MESH:D009404), toxicity (MESH:D064420), microbial infections (MESH:D015163), membrane (MESH:D015433), Bacterial infections (MESH:D001424)
- **Species:** Pseudomonas aeruginosa (species) [taxon 287], Galleria mellonella (greater wax moth, species) [taxon 7137], Bacteria Latreille et al. 1825 (Bacteria stick insect, genus) [taxon 629395], Diptera (flies, order) [taxon 7147], Salmonella enterica subsp. enterica serovar Typhimurium (no rank) [taxon 90371], Staphylococcus epidermidis (species) [taxon 1282], Enterococcus faecalis (species) [taxon 1351], Pseudomonas fluorescens (species) [taxon 294], Tenebrio molitor (yellow mealworm, species) [taxon 7067], Escherichia coli (E. coli, species) [taxon 562], Clostridioides difficile (species) [taxon 1496], Homo sapiens (human, species) [taxon 9606], Klebsiella pneumoniae (species) [taxon 573], Providencia burhodogranariea (species) [taxon 516074], Streptococcus mutans (species) [taxon 1309]

## Figures

2 figures with captions in the complete paper: https://tomesphere.com/paper/PMC8757689/full.md

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Source: https://tomesphere.com/paper/PMC8757689