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Treponema pallidum rare outer membrane proteins: analysis of mobility by freeze-fracture electron microscopy
K W Bourell1, W Schulz, M V Norgard
1Department of Internal Medicine, University of Texas Southwestern Medical Center, Dallas 75235.
Abstract:
Freeze-fracture and deep-etch electron microscopy were used to investigate the molecular architecture of the Treponema pallidum outer membrane (OM). Freeze-fracture electron microscopy of treponemes freshly harvested from rabbit testes revealed that the intramembranous particles (IMPs) in both the concave and convex OM leaflets were distributed into alternating areas of relatively high and low particle density; in many OM fractures, IMPs formed rows that ran either parallel to or obliquely across the fracture faces. Statistical analysis (runs test) confirmed that the IMPs were nonrandomly distributed in both OM leaflets. Examination of deep-etched specimens revealed that the particles observed in freeze-fractured OMs also were surface exposed. Combined analysis of deep-etched and cross-fractured treponemes revealed that the OM particles were located in regions of the OM away from the endoflagella and closely apposed to the cytoplasmic membrane-peptidoglycan complex. When treponemes were incubated for extended periods with heat-inactivated immune rabbit syphilitic serum, no alteration in the distribution of OM IMPs was detected. In further experiments, approximately 1:1 mixtures of T. pallidum and Escherichia coli or separate suspensions of the nonpathogenic Treponema phagedenis biotype Reiter were fixed at 34 degrees C or after cooling to 0 degree C (to induce lateral phase separations that would aggregate IMPs). Only particles in the T. pallidum OM failed to aggregate in cells fixed at the lower temperature. The combined data suggest that the mobility of T. pallidum rare OM proteins is limited, perhaps as a result of interactions between their periplasmic domains and components of the peptidoglycan-cytoplasmic membrane complex.
Insights
The outer membrane of the syphilis bacterium Treponema pallidum has non-randomly distributed particles. These particles
Area of Science:
- Microbiology
- Cell Biology
- Biophysics
Background:
- The outer membrane (OM) of Treponema pallidum, the causative agent of syphilis, presents a unique molecular architecture.
- Understanding the structural organization of T. pallidum OM is crucial for developing targeted therapies.
Purpose of the Study:
- To investigate the molecular architecture and protein distribution within the Treponema pallidum outer membrane.
- To determine the mobility and organization of intramembranous particles (IMPs) in T. pallidum OM.
Main Methods:
- Freeze-fracture electron microscopy to visualize OM structure.
- Deep-etch electron microscopy to assess surface exposure of OM components.
- Statistical analysis (runs test) to evaluate particle distribution.
- Comparative analysis with Escherichia coli and Treponema phagedenis biotype Reiter.
Main Results:
- Intramembranous particles (IMPs) in T. pallidum OM exhibit non-random distribution in distinct rows.
- OM particles are surface-exposed and located away from endoflagella, near the cytoplasmic membrane-peptidoglycan complex.
- T. pallidum OM IMPs failed to aggregate upon cooling, unlike those in E. coli or T. phagedenis Reiter.
Conclusions:
- The mobility of rare outer membrane proteins in Treponema pallidum is restricted.
- This limited mobility may result from interactions between periplasmic domains and the underlying peptidoglycan-cytoplasmic membrane complex.
- The findings provide insights into the unique structural organization of the T. pallidum outer membrane.