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Isolation and Analysis of Brain-sequestered Leukocytes from Plasmodium berghei ANKA-infected Mice
Published on: January 2, 2013
Increased survival in B-cell-deficient mice during experimental cerebral malaria suggests a role for circulating
Rosane B de Oliveira1, Jennifer P Wang, Sanjay Ram
1Division of Infectious Diseases and Immunology, Department of Medicine, University of Massachusetts Medical School, Worcester, Massachusetts, USA.
Abstract:
The pathogenesis of malaria, an insect-borne disease that takes millions of lives every year, is still not fully understood. Complement receptor 1 (CR1) has been described as a receptor for Plasmodium falciparum, which causes cerebral malaria in humans. We investigated the role of CR1 in an experimental model of cerebral malaria. Transgenic mice expressing human CR1 (hCR1(+)) on erythrocytes were infected with Plasmodium berghei ANKA and developed cerebral malaria. No difference in survival was observed in hCR1(+) mice compared to wild-type mice following infection with P. berghei ANKA; however, hCR1 detection was significantly diminished on erythrocytes between days 7 and 10 postinfection. hCR1 levels returned to baseline by day 17 postinfection in surviving animals. Immunoblot assays revealed that total erythrocyte hCR1 levels were diminished, confirming that immune complexes in association with erythrocyte hCR1 were likely removed from erythrocytes in vivo by clearance following immune adherence. Decreases in hCR1 were completely dependent on C3 expression, as mice treated with cobra venom factor (which consumes and depletes C3) retained hCR1 on erythrocytes during C3 depletion through day 7; erythrocyte hCR1 decreases were observed only when C3 levels recovered on day 9. B-cell-deficient mice exhibit a marked increase in survival following infection with P. berghei ANKA, which suggests that immune complexes play a central role in the pathogenesis of experimental cerebral malaria. Together, our findings highlight the importance of complement and immune complexes in experimental cerebral malaria. IMPORTANCE Cerebral malaria is a deadly complication of infection with Plasmodium falciparum. Despite its high prevalence, relatively little is understood about its pathogenesis. We have determined that immune complexes are generated and deposited on erythrocytes specifically expressing human complement receptor 1 in a mouse model of cerebral malaria. We also provide evidence demonstrating the importance of immunoglobulins in the pathogenesis of cerebral malaria in mice. These findings may have important implications in human cerebral malaria.
Insights
Immune complexes involving complement receptor 1 (CR1) and C3 play a key role in experimental cerebral malaria pathogenesis. B-cell deficiency improves survival, highlighting the importance of these immune responses in severe malaria.
Area of Science:
- Immunology
- Infectious Diseases
- Pathogenesis Research
Background:
- Malaria pathogenesis, particularly cerebral malaria, remains incompletely understood.
- Complement receptor 1 (CR1) is implicated as a receptor for Plasmodium falciparum.
- Investigating CR1's role in experimental cerebral malaria is crucial for understanding disease mechanisms.
Purpose of the Study:
- To investigate the role of human CR1 (hCR1) in an experimental model of cerebral malaria.
- To determine the involvement of complement and immune complexes in malaria pathogenesis.
- To explore the impact of B-cell deficiency on experimental cerebral malaria outcomes.
Main Methods:
- Utilized transgenic mice expressing hCR1 on erythrocytes infected with Plasmodium berghei ANKA.
- Monitored hCR1 levels on erythrocytes and C3 expression post-infection.
- Employed immunoblot assays and B-cell-deficient mouse models.
Main Results:
- Erythrocyte hCR1 levels significantly decreased between days 7-10 post-infection, returning to baseline by day 17.
- hCR1 reduction was dependent on C3 expression, indicating clearance via immune adherence.
- B-cell-deficient mice showed increased survival, suggesting immune complexes are central to pathogenesis.
Conclusions:
- Immune complexes involving CR1 and C3 are generated and deposited on erythrocytes in experimental cerebral malaria.
- Complement activation and subsequent immune complex clearance are critical in the pathogenesis of experimental cerebral malaria.
- Findings underscore the importance of complement and immune complexes, with potential implications for human cerebral malaria.
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