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Expression, Detergent Solubilization, and Purification of a Membrane Transporter, the MexB Multidrug Resistance Protein
Published on: December 3, 2010
Functional expression of mouse Mdr1 in an outer membrane permeability mutant of Escherichia coli
Abstract:
Functional expression of the multidrug resistance protein P-glycoprotein (P-gp) in Escherichia coli is providing an appropriate system for structure/function studies and might provide an invaluable tool to screen potential P-gp substrates and inhibitors. The major problem encountered in such studies, however, is the impermeability of the outer membrane of Gram-negative bacteria, which protects microorganisms against the cytotoxic effects of many lipophilic cancer drugs and blocks accessibility of P-gp reversal agents. In the present study we have constructed, by mutagenesis, a "leaky" (containing a permeable outer membrane) strain of E. coli, which is significantly more susceptible to the toxic effect of known P-gp substrates and cytotoxic agents. Expression of mouse Mdr1 in the mutant confers cross-resistance to daunomycin, quinidine, chloroquine, rhodamine 6G, and puromycin. Most importantly, reserpine and doxorubicin completely abolish Mdr1-mediated rhodamine resistance. The results provide strong support for previous observations, suggesting that Mdr1 can be expressed functionally in E. coli and indicate that the leaky mutant will be useful for further structure/function studies of the heterologously expressed eukaryotic drug efflux protein.
Insights
Researchers created a "leaky" E. coli strain for studying P-glycoprotein (P-gp) function. This engineered bacterium enhances drug efflux protein research and inhibitor screening, overcoming outer membrane permeability issues.
Area of Science:
- Biochemistry
- Molecular Biology
- Microbiology
Background:
- Functional expression of P-glycoprotein (P-gp) in E. coli is crucial for structure/function studies and drug screening.
- The impermeability of the Gram-negative bacterial outer membrane hinders studies involving P-gp substrates and inhibitors.
Purpose of the Study:
- To construct a "leaky" E. coli strain with a permeable outer membrane for improved P-gp studies.
- To assess the functional expression of mouse Mdr1 in the engineered E. coli mutant.
Main Methods:
- Construction of a "leaky" E. coli strain via mutagenesis.
- Expression of mouse Mdr1 in the engineered E. coli mutant.
- Testing susceptibility to P-gp substrates and cross-resistance to cytotoxic agents.
Main Results:
- The "leaky" E. coli strain showed increased susceptibility to known P-gp substrates and cytotoxic agents.
- Expression of mouse Mdr1 conferred cross-resistance to daunomycin, quinidine, chloroquine, rhodamine 6G, and puromycin.
- Reserpine and doxorubicin effectively inhibited Mdr1-mediated rhodamine resistance.
Conclusions:
- Mouse Mdr1 can be functionally expressed in E. coli.
- The developed "leaky" E. coli mutant is a valuable tool for structure/function studies of heterologously expressed drug efflux proteins.
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