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Updated: Mar 8, 2026

Population and Single-Cell Analysis of Antibiotic Persistence in Escherichia coli
Published on: March 24, 2023
MazEF toxin-antitoxin proteins alter Escherichia coli cell morphology and infrastructure during persister formation
Junho Cho1, Anita Nicole Carr1, Lisa Whitworth2
1Department of Biochemistry and Molecular Biology, Oklahoma State University, Stillwater, OK 74078, USA.
Abstract:
When exposed to antibiotics, many bacteria respond by activating intracellular 'toxin' proteins, which arrest cell growth and induce formation of persister cells that survive antibiotics. After antibiotics are removed, persisters can regrow by synthesizing 'antitoxin' proteins that sequester toxin proteins. In Escherichia coli, MazE antitoxin sequesters the activity of MazF toxin, which extensively cleaves cellular RNAs. Although the functions of MazEF proteins are well characterized, there is surprisingly little known about their effects on cell structure. Here, using a combination of microscopy techniques, we visualized the effects of MazEF and three bactericidal antibiotics on E. coli cell morphology and infrastructure. When ectopically expressed in E. coli, MazF temporarily stalled cell growth and induced persister formation, but only mildly elevated DNA mutagenesis. Viewed by electron microscopy, MazF-expressing persister cells were arrested in cell growth and division. Their chromosomal DNAs were compacted into thread-like structures. Their ribosomes were excluded from their nucleoids. After exposure to ciprofloxacin, persister regrowth was activated by MazE. Cell division remained inhibited while cells became extraordinarily elongated, then divided multiple times during stationary growth phase. This extreme filamentation during persister regrowth was unique to ciprofloxacin-treated persisters, likely caused by inhibition of cell division during regrowth, and was not observed with kanamycin-treated persisters.
Insights
Bacteria persister cells, formed during antibiotic exposure, exhibit unique structural changes. MazEF proteins and specific antibiotics like ciprofloxacin dramatically alter cell morphology and division during regrowth.
Area of Science:
- Microbiology
- Cell Biology
- Bacterial Physiology
Background:
- Bacteria form persister cells to survive antibiotic treatment.
- The MazEF toxin-antitoxin system in Escherichia coli regulates cell growth and RNA cleavage.
- Little is known about MazEF's impact on bacterial cell structure.
Purpose of the Study:
- To investigate the effects of MazEF proteins and bactericidal antibiotics on E. coli cell morphology.
- To visualize structural changes in persister cells using microscopy.
Main Methods:
- Electron microscopy was used to examine E. coli cell structure.
- MazF protein was ectopically expressed in E. coli.
- Cells were exposed to ciprofloxacin and kanamycin.
Main Results:
- MazF expression induced persister formation with compacted DNA and ribosome exclusion from nucleoids.
- Ciprofloxacin treatment led to extreme cell elongation and multiple divisions during persister regrowth.
- This filamentation was specific to ciprofloxacin and not observed with kanamycin.
Conclusions:
- MazEF proteins and antibiotics induce significant, distinct structural alterations in E. coli persister cells.
- Ciprofloxacin uniquely inhibits cell division during persister regrowth, causing extreme filamentation.
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