Isolation and characterization of a conserved porin protein from Helicobacter pylori
P Doig1, M M Exner, R E Hancock
1Canadian Bacterial Diseases Network, University of Victoria, British Columbia, Canada.
Abstract:
Helicobacter pylori is a causative agent of gastritis in humans and is correlated with gastric ulcer formation. Infections with this bacterium have proven difficult to treat with antimicrobial agents. To better understand how this bacterium transports compounds such as antimicrobial agents across its outer membrane, identification of porin proteins is important. We have recently identified a family of H. pylori porins (HopA to HopD) (M. M. Exner, P. Doig, T. J. Trust, and R. E. W. Hancock, Infect. Immun. 63:1567-1572, 1995). Here, we report on an unrelated porin species (HopE) from this bacterium. This protein had a apparent molecular mass of 31 kDa and was seen to form 50- and 90-kDa aggregates that were designated putative dimeric and trimeric forms, respectively. The protein was purified to homogeneity and, with a model planar lipid membrane system, was shown to act as a nonselective pore with a single channel conductance in 1.0 M KCl of 1.5 nS, similarly to other bacterial nonspecific porins. An internal peptide sequence of HopE shared homology with the P2 porin of Haemophilus influenzae. HopE was also shown to be antigenic in vivo as assessed by sera taken from H. pylori-infected individuals and was immunologically conserved with both patient sera and specific monoclonal antibodies. From these data, it appears that HopE is a major nonselective porin of H. pylori. The implications of these findings are discussed.
Insights
Helicobacter pylori outer membrane porin HopE was identified as a nonselective pore protein. This finding is crucial for understanding antimicrobial transport in H. pylori infections.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Helicobacter pylori causes gastritis and gastric ulcers.
- Antimicrobial treatment of H. pylori infections is challenging.
- Understanding outer membrane transport is key to overcoming treatment resistance.
Purpose of the Study:
- Identify and characterize novel porin proteins in H. pylori.
- Investigate the role of HopE in the bacterium's outer membrane transport.
- Assess the potential of HopE as a target for antimicrobial agents.
Main Methods:
- Purification of the HopE protein.
- Analysis of HopE molecular mass and aggregation states.
- Functional characterization using model planar lipid membrane systems.
- Peptide sequencing and homology analysis.
- Immunological assessment using patient sera and monoclonal antibodies.
Main Results:
- HopE identified as a 31 kDa protein forming dimeric and trimeric aggregates.
- HopE functions as a nonselective pore with a single channel conductance of 1.5 nS (1.0 M KCl).
- HopE exhibits homology to Haemophilus influenzae P2 porin.
- HopE is antigenic in vivo and immunologically conserved.
Conclusions:
- HopE is a major nonselective porin in H. pylori.
- HopE's properties suggest its involvement in antimicrobial agent transport.
- Further research into HopE may lead to improved H. pylori treatment strategies.
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