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Updated: Jul 15, 2026

Non-Invasive Model of Neuropathogenic Escherichia coli Infection in the Neonatal Rat
Published on: October 29, 2014
Interaction of human defensins with Escherichia coli. Mechanism of bactericidal activity
R I Lehrer1, A Barton, K A Daher
1Department of Medicine, University of California, Los Angeles 90024.
Abstract:
Defensins are small, cysteine-rich antimicrobial peptides that are abundant in human, rabbit, and guinea pig neutrophils (PMN). Three defensins (human neutrophil peptide defensin [HNP]-1, HNP-2, and HNP-3) constitute between 30 and 50% of the total protein in azurophil granules of human PMN. We examined the mechanism of HNP-mediated bactericidal activity against Escherichia coli ML-35 (i-, y-, z+) and its pBR322-transformed derivative, E. coli ML-35p. Under conditions that supported bactericidal activity, HNP-1 sequentially permeabilized the outer membrane (OM) and inner membrane (IM) of E. coli. Coincident with these events, bacterial synthesis of DNA, RNA, and protein ceased and the colony count fell. Although these events were closely coupled under standard assay conditions, OM permeabilization was partially dissociated from IM permeabilization when experiments were performed with E. coli that had been plasmolyzed by mannitol. Under such conditions, the rate and extent of bacterial death more closely paralled loss of IM integrity than OM permeabilization. Electron microscopy of E. coli that had been killed by defensins revealed the presence of striking electron-dense deposits in the periplasmic space and affixed to the OM. Overall, these studies show that HNP-mediated bactericidal activity against E. coli ML-35 is associated with sequential permeabilization of the OM and IM, and that inner membrane permeabilization appears to be the lethal event.
Insights
Human neutrophil peptides (HNPs), a type of defensin, kill bacteria by permeabilizing their membranes. Inner membrane permeabilization is the critical lethal event, even when outer membrane permeabilization is altered.
Area of Science:
- Microbiology
- Immunology
- Biochemistry
Background:
- Defensins are small, cysteine-rich antimicrobial peptides found in neutrophils.
- Human neutrophil peptides (HNP)-1, -2, and -3 are major components of human neutrophil azurophil granules.
- These peptides exhibit potent bactericidal activity.
Purpose of the Study:
- To elucidate the mechanism of HNP-mediated bactericidal activity against Escherichia coli.
- To determine the specific membrane targets and the sequence of events leading to bacterial death.
Main Methods:
- Assaying HNP bactericidal activity against E. coli ML-35 and its derivative.
- Investigating outer membrane (OM) and inner membrane (IM) permeabilization.
- Utilizing plasmolyzed E. coli to dissociate OM and IM permeabilization.
- Employing electron microscopy to visualize bacterial damage.
Main Results:
- HNPs sequentially permeabilized the OM and IM of E. coli.
- Bacterial DNA, RNA, and protein synthesis ceased upon HNP exposure.
- OM and IM permeabilization could be dissociated in plasmolyzed bacteria.
- Bacterial death correlated more closely with IM permeabilization.
Conclusions:
- HNP bactericidal activity involves sequential OM and IM permeabilization.
- IM permeabilization is the critical event causing bacterial death.
- Electron microscopy revealed deposits in the periplasmic space and on the OM of killed bacteria.
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