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Updated: Aug 1, 2025

Recording Multicellular Behavior in Myxococcus xanthus Biofilms using Time-lapse Microcinematography
Published on: August 6, 2010
Predatory Strategies of Myxococcus xanthus: Prey Susceptibility to OMVs and Moonlighting Enzymes
Allison S Zwarycz1, Thomas Page1, Gabriela Nikolova1
1Department of Life Sciences, Aberystwyth University, Aberystwyth SY23 3DD, UK.
Abstract:
Predatory outer membrane vesicles (OMVs) secreted by myxobacteria fuse readily with the outer membranes of Gram-negative bacteria, introducing toxic cargo into their prey. Here we used a strain of the myxobacterium Myxococcus xanthus that produces fluorescent OMVs to assay the uptake of OMVs by a panel of Gram-negative bacteria. M. xanthus strains took up significantly less OMV material than the tested prey strains, suggesting that re-fusion of OMVs with producing organisms is somehow inhibited. The OMV killing activity against different prey correlated strongly with the predatory activity of myxobacterial cells, however, there was no correlation between OMV killing activity and their propensity to fuse with different prey. It has previously been proposed that M. xanthus GAPDH stimulates the predatory activity of OMVs by enhancing OMV fusion with prey cells. Therefore, we expressed and purified active fusion proteins of M. xanthus glyceraldehyde-3-phosphate dehydrogenase and phosphoglycerate kinase (GAPDH and PGK; moonlighting enzymes with additional activities beyond their roles in glycolysis/gluconeogenesis) to investigate any involvement in OMV-mediated predation. Neither GAPDH nor PGK caused lysis of prey cells or enhanced OMV-mediated lysis of prey cells. However, both enzymes were found to inhibit the growth of Escherichia coli, even in the absence of OMVs. Our results suggest that fusion efficiency is not a determinant of prey killing, but instead resistance to the cargo of OMVs and co-secreted enzymes dictates whether organisms can be preyed upon by myxobacteria.
Insights
Myxobacteria outer membrane vesicles (OMVs) kill prey, but fusion efficiency doesn't determine predation success. Resistance to OMV cargo and secreted enzymes, not fusion, dictates bacterial prey susceptibility.
Area of Science:
- Microbiology
- Bacterial Predation
- Outer Membrane Vesicles
Background:
- Myxobacteria utilize predatory outer membrane vesicles (OMVs) to deliver toxic cargo into Gram-negative bacterial prey.
- Previous hypotheses suggested that OMV fusion efficiency with prey dictates predatory success.
Purpose of the Study:
- To investigate the role of OMV fusion efficiency in myxobacterial predation.
- To examine the involvement of glyceraldehyde-3-phosphate dehydrogenase (GAPDH) and phosphoglycerate kinase (PGK) in OMV-mediated predation.
Main Methods:
- Utilized fluorescently labeled OMVs from Myxococcus xanthus to quantify OMV uptake by various Gram-negative bacteria.
- Assayed the hemolytic and growth-inhibitory activities of purified GAPDH and PGK against prey bacteria, with and without OMVs.
Main Results:
- M. xanthus showed lower OMV uptake compared to prey strains, indicating inhibited re-fusion.
- OMV killing activity correlated with bacterial predatory activity but not with OMV fusion propensity.
- Purified GAPDH and PGK inhibited E. coli growth independently of OMVs and did not enhance OMV-mediated lysis.
Conclusions:
- OMV fusion efficiency is not the primary determinant of prey killing in myxobacterial predation.
- Bacterial resistance to OMV cargo and co-secreted enzymes, such as GAPDH and PGK, is crucial for determining prey susceptibility.
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