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Isolation and Analysis of Brain-sequestered Leukocytes from Plasmodium berghei ANKA-infected Mice
Published on: January 2, 2013
CD36 and Fyn kinase mediate malaria-induced lung endothelial barrier dysfunction in mice infected with Plasmodium
Ifeanyi U Anidi1, Laura E Servinsky, Otgonchimeg Rentsendorj
1Department of Molecular Microbiology and Immunology, Bloomberg School of Public Health, Baltimore, Maryland, United States of America.
Abstract:
Severe malaria can trigger acute lung injury characterized by pulmonary edema resulting from increased endothelial permeability. However, the mechanism through which lung fluid conductance is altered during malaria remains unclear. To define the role that the scavenger receptor CD36 may play in mediating this response, C57BL/6J (WT) and CD36-/- mice were infected with P. berghei ANKA and monitored for changes in pulmonary endothelial barrier function employing an isolated perfused lung system. WT lungs demonstrated a >10-fold increase in two measures of paracellular fluid conductance and a decrease in the albumin reflection coefficient (σalb) compared to control lungs indicating a loss of barrier function. In contrast, malaria-infected CD36-/- mice had near normal fluid conductance but a similar reduction in σalb. In WT mice, lung sequestered iRBCs demonstrated production of reactive oxygen species (ROS). To determine whether knockout of CD36 could protect against ROS-induced endothelial barrier dysfunction, mouse lung microvascular endothelial monolayers (MLMVEC) from WT and CD36-/- mice were exposed to H2O2. Unlike WT monolayers, which showed dose-dependent decreases in transendothelial electrical resistance (TER) from H2O2 indicating loss of barrier function, CD36-/- MLMVEC demonstrated dose-dependent increases in TER. The differences between responses in WT and CD36-/- endothelial cells correlated with important differences in the intracellular compartmentalization of the CD36-associated Fyn kinase. Malaria infection increased total lung Fyn levels in CD36-/- lungs compared to WT, but this increase was due to elevated production of the inactive form of Fyn further suggesting a dysregulation of Fyn-mediated signaling. The importance of Fyn in CD36-dependent endothelial signaling was confirmed using in vitro Fyn knockdown as well as Fyn-/- mice, which were also protected from H2O2- and malaria-induced lung endothelial leak, respectively. Our results demonstrate that CD36 and Fyn kinase are critical mediators of the increased lung endothelial fluid conductance caused by malaria infection.
Insights
Severe malaria causes lung injury by increasing fluid leakage. The scavenger receptor CD36 and Fyn kinase are key mediators of this malaria-induced lung endothelial leak, with CD36 deficiency protecting mice.
Area of Science:
- Pathology
- Immunology
- Molecular Biology
Background:
- Severe malaria can lead to acute lung injury and pulmonary edema due to increased endothelial permeability.
- The precise mechanisms altering lung fluid conductance during malaria infection are not fully understood.
Purpose of the Study:
- To investigate the role of the scavenger receptor CD36 in mediating malaria-induced changes in pulmonary endothelial barrier function.
- To elucidate the involvement of CD36-associated signaling pathways, specifically Fyn kinase, in malaria-related lung injury.
Main Methods:
- Utilized C57BL/6J (WT) and CD36-/- mice infected with Plasmodium berghei ANKA.
- Assessed pulmonary endothelial barrier function using an isolated perfused lung system and measured transendothelial electrical resistance (TER) in mouse lung microvascular endothelial monolayers (MLMVEC).
- Investigated the role of Fyn kinase through in vitro knockdown and Fyn-/- mice.
Main Results:
- WT mice infected with malaria showed a significant increase in lung fluid conductance and loss of barrier function, unlike CD36-/- mice.
- CD36-/- mouse lungs exhibited near-normal fluid conductance, and their endothelial cells were protected against hydrogen peroxide (H2O2)-induced barrier dysfunction.
- Malaria infection led to altered Fyn kinase activity in WT and CD36-/- mice, with Fyn kinase identified as crucial for CD36-dependent endothelial signaling.
Conclusions:
- CD36 is a critical mediator of increased lung endothelial fluid conductance during severe malaria.
- Fyn kinase plays a significant role in CD36-dependent signaling pathways that contribute to malaria-induced lung endothelial leak.
- Targeting CD36 and Fyn kinase pathways may offer therapeutic strategies for preventing or treating acute lung injury in severe malaria.
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