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Updated: Jul 1, 2026

Visualization of Bacterial Resistance using Fluorescent Antibiotic Probes
Published on: March 2, 2020
Antimicrobial peptoids pass rapidly through bacterial membranes and flocculate ribosomes and DNA: A single-cell
Yanyu Zhu1, Josefine Eilsø Nielsen2,3, Natalia Molchanova4
1Department of Chemistry, University of Wisconsin-Madison, Madison, WI 53706.
Abstract:
Certain peptoids designed as mimics of host defense peptides such as LL-37 exhibit potent, broad-spectrum antibacterial, antifungal, antiparasitic, and antiviral activity with minimal cytotoxicity. Previous fixed-cell studies have suggested that the peptoids can pass through bacterial membranes and rapidly kill bacteria by aggregating intracellular macroanions, including ribosomes and DNA. However, the dynamic mechanisms of action of these biomimetic peptoids have remained elusive. We employed single-bacterial-cell, time-resolved fluorescence microscopy, and single-particle tracking methods to investigate the effects of the 12mer peptoid TM1, along with shorter alkylated and brominated analogues, on cytoplasmic membrane permeabilization and DNA and ribosome rigidification of Escherichia coli. Our results demonstrate that TM1 and several of its analogues permeabilize the cytoplasmic membrane within five minutes of flowing the peptoid solution over the cells-faster than seen for the important human antimicrobial peptide LL-37-and rigidify DNA and ribosomes as effectively as LL-37. Detailed biophysical structural and dynamical studies show that TM1 binds to both DNA (double-stranded and single-stranded) and single-stranded RNA in a similar manner to LL-37, which is well known to display strong nucleic acid binding. These results support our hypothesis that TM1 and its analogues exert their antimicrobial effects through intracellular aggregation of biomacromolecules such as ribosomes, RNA, and DNA. TM1 displays a higher affinity for RNA compared to DNA, suggesting it will preferentially bind in vivo to bacterial ribosomes. Our study yields insight into the dynamic effects of antimicrobial peptoids, facilitating their future development as biomimetic anti-infectives, with the additional advantage of protease invulnerability.
Insights
Antimicrobial peptoids rapidly permeabilize bacterial membranes and aggregate intracellular molecules like DNA and ribosomes, offering a promising new class of protease-resistant anti-infectives.
Area of Science:
- Biochemistry
- Microbiology
- Drug Discovery
Background:
- Peptoids mimic host defense peptides (HDPs) like LL-37, showing broad-spectrum antimicrobial activity.
- Previous studies suggest peptoids disrupt bacterial membranes and aggregate intracellular components, but dynamic mechanisms are unclear.
Purpose of the Study:
- To investigate the dynamic mechanisms of action of peptoid TM1 and analogues against *Escherichia coli*.
- To elucidate peptoid-induced cytoplasmic membrane permeabilization and intracellular macroanion rigidification.
Main Methods:
- Single-bacterial-cell, time-resolved fluorescence microscopy.
- Single-particle tracking.
- Biophysical structural and dynamical studies.
Main Results:
- TM1 and analogues rapidly permeabilized the cytoplasmic membrane within five minutes.
- Peptoids effectively rigidified DNA and ribosomes, similar to LL-37.
- TM1 demonstrated higher affinity for RNA than DNA, suggesting preferential binding to bacterial ribosomes.
Conclusions:
- Antimicrobial peptoids exert effects via intracellular aggregation of biomacromolecules (ribosomes, RNA, DNA).
- TM1's rapid action and intracellular targets offer a novel mechanism for anti-infective development.
- Peptoids' protease invulnerability enhances their potential as therapeutic agents.
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