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Published on: October 13, 2021
Aberrant Membrane Structures in Hypervesiculating Escherichia coli Strain ΔmlaE ΔnlpI Visualized by Electron
Yoshihiro Ojima1, Tomomi Sawabe1, Mao Nakagawa1
1Department of Applied Chemistry and Bioengineering, Graduate School of Engineering, Osaka City University, Osaka, Japan.
Abstract:
Escherichia coli produces extracellular vesicles called outer membrane vesicles (OMVs) by releasing a part of its outer membrane. We previously reported that the combined deletion of nlpI and mlaE, related to envelope structure and phospholipid accumulation in the outer leaflet of the outer membrane, respectively, resulted in the synergistic increase of OMV production. In this study, the analysis of ΔmlaEΔnlpI cells using quick-freeze, deep-etch electron microscopy (QFDE-EM) revealed that plasmolysis occurred at the tip of the long axis in cells and that OMVs formed from this tip. Plasmolysis was also observed in the single-gene knockout mutants ΔnlpI and ΔmlaE. This study has demonstrated that plasmolysis was induced in the hypervesiculating mutant E. coli cells. Furthermore, intracellular vesicles and multilamellar OMV were observed in the ΔmlaEΔnlpI cells. Meanwhile, the secretion of recombinant green fluorescent protein (GFP) expressed in the cytosol of the ΔmlaEΔnlpI cells was more than 100 times higher than that of WT and ΔnlpI, and about 50 times higher than that of ΔmlaE in the OMV fraction, suggesting that cytosolic components were incorporated into outer-inner membrane vesicles (OIMVs) and released into the extracellular space. Additionally, QFDE-EM analysis revealed that ΔmlaEΔnlpI sacculi contained many holes noticeably larger than the mean radius of the peptidoglycan (PG) pores in wild-type (WT) E. coli. These results suggest that in ΔmlaEΔnlpI cells, cytoplasmic membrane materials protrude into the periplasmic space through the peptidoglycan holes and are released as OIMVs.
Insights
Mutations in Escherichia coli trigger plasmolysis and enhance outer membrane vesicle (OMV) production. This study reveals novel mechanisms of OMV formation and increased cytosolic component secretion in engineered E. coli.
Area of Science:
- Microbiology
- Cell Biology
- Molecular Biology
Background:
- Escherichia coli generates outer membrane vesicles (OMVs) from its outer membrane.
- Previous work showed combined deletion of nlpI and mlaE synergistically increases OMV production.
- nlpI and mlaE are implicated in envelope structure and phospholipid distribution, respectively.
Purpose of the Study:
- To investigate the mechanism of enhanced OMV production in E. coli lacking nlpI and mlaE.
- To analyze the structural changes and vesicle content in the double mutant.
- To understand the role of plasmolysis in OMV formation.
Main Methods:
- Quick-freeze, deep-etch electron microscopy (QFDE-EM) for ultrastructural analysis.
- Analysis of gene knockout mutants (ΔmlaE, ΔnlpI, and ΔmlaEΔnlpI).
- Quantification of recombinant green fluorescent protein (GFP) secretion in OMVs.
Main Results:
- Plasmolysis observed at cell tips in ΔmlaEΔnlpI, ΔnlpI, and ΔmlaE mutants, correlating with OMV formation.
- Intracellular vesicles and multilamellar OMVs found in ΔmlaEΔnlpI cells.
- Over 100-fold increase in cytosolic GFP secretion via OMVs in ΔmlaEΔnlpI compared to WT.
- Larger holes in peptidoglycan layer of ΔmlaEΔnlpI cells, facilitating cytoplasmic membrane protrusion.
Conclusions:
- Plasmolysis is induced in hypervesiculating E. coli mutants.
- Cytoplasmic membrane material can be incorporated into outer-inner membrane vesicles (OIMVs) and secreted.
- Defects in peptidoglycan structure contribute to OMV and OIMV formation in ΔmlaEΔnlpI cells.
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