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Functional expression of Nramp1 in vitro in the murine macrophage line RAW264.7
G Govoni1, F Canonne-Hergaux, C G Pfeifer
1Department of Biochemistry, McGill University, Montreal, Quebec.
Abstract:
Mutations at the Nramp1 locus in vivo cause susceptibility to infection by unrelated intracellular microbes. Nramp1 encodes an integral membrane protein abundantly expressed in the endosomal-lysosomal compartment of macrophages and is recruited to the phagosomal membrane following phagocytosis. The mechanism by which Nramp1 affects the biochemical properties of the phagosome to control microbial replication is unknown. To devise an in vitro assay for Nramp1 function, we introduced a wild-type Nramp1(G169) cDNA into RAW 264.7 macrophages (which bear a homozygous mutant Nramp1(D169) allele and thus are permissive to replication of specific intracellular parasites). Recombinant Nramp1 was expressed in a membranous compartment in RAW264.7 cells and was recruited to the membrane of Salmonella typhimurium and Yersinia enterocolitica containing phagosomes. Evaluation of the antibacterial activity of RAW264.7 transfectants showed that expression of the recombinant Nramp1 protein abrogated intracellular replication of S. typhimurium. Studies with a replication-defective S. typhimurium mutant suggest that this occurs through an enhanced bacteriostatic activity. The effect of Nramp1 expression was specific, since (i) it was not seen in RAW264.7 transfectants overexpressing the closely related Nramp2 protein, and (ii) control RAW264.7 cells, Nramp1, and Nramp2 transfectants could all efficiently kill a temperature-sensitive, replication-defective mutant of S. typhimurium. Finally, increased antibacterial activity of the Nramp1 RAW264.7 transfectants was linked to increased phagosomal acidification, a distinguishing feature of primary macrophages expressing a wild-type Nramp1 allele. Together, these results indicate that transfection of Nramp1 cDNAs in the RAW264.7 macrophage cell line can be used as a direct assay to study both Nramp1 function and mechanism of action as well as to identify structure-function relationships in this protein.
Insights
The Nramp1 protein enhances macrophage antibacterial activity by increasing phagosomal acidification, thereby inhibiting intracellular microbial replication. This study establishes a novel in vitro assay for Nramp1 function.
Area of Science:
- Immunology
- Cell Biology
- Microbiology
Background:
- Mutations in the Nramp1 gene confer susceptibility to intracellular microbial infections.
- Nramp1 protein localizes to the phagosomal membrane of macrophages, influencing phagosome biochemistry.
- The precise mechanism of Nramp1's role in controlling microbial replication remains unclear.
Purpose of the Study:
- To develop an in vitro assay for assessing Nramp1 function.
- To elucidate the mechanism by which Nramp1 confers resistance to intracellular pathogens.
- To investigate structure-function relationships of the Nramp1 protein.
Main Methods:
- Transfection of RAW264.7 macrophages with wild-type Nramp1 cDNA.
- Assessment of Nramp1 recruitment to phagosomes containing Salmonella typhimurium and Yersinia enterocolitica.
- Evaluation of intracellular microbial replication and phagosomal acidification in transfected cells.
Main Results:
- Expression of recombinant Nramp1 in RAW264.7 cells abrogated intracellular S. typhimurium replication.
- Nramp1-mediated inhibition of bacterial growth was linked to enhanced bacteriostatic activity.
- Increased phagosomal acidification was observed in Nramp1-expressing macrophages, a characteristic of primary macrophages.
Conclusions:
- Transfection of Nramp1 cDNA into RAW264.7 macrophages provides a direct in vitro assay for studying Nramp1 function.
- Nramp1 enhances macrophage defense against intracellular microbes through increased phagosomal acidification.
- This model system facilitates the study of Nramp1 mechanism of action and structure-function relationships.