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Published on: May 16, 2013
Recruited monocytes modulate malaria-induced lung injury through CD36-mediated clearance of sequestered infected
H A Daniel Lagassé1, Ifeanyi U Anidi1, John M Craig1
1W. Harry Feinstone Department of Molecular Microbiology and Immunology, Bloomberg School of Public Health, Johns Hopkins University, Baltimore, Maryland, USA, and.
Abstract:
Pulmonary complications occur in a significant percentage of adults and children during the course of severe malaria. The cellular and molecular innate immune mechanisms that limit the extent of pulmonary inflammation and preserve lung function during severe Plasmodium infections remain unclear. In particular, the contributions to pulmonary complications by parasitized erythrocyte sequestration and subsequent clearance from the lung microvasculature by immune cells have not been clearly defined. We used the Plasmodium berghei ANKA-C57BL/6 mouse model of severe malaria to investigate the mechanisms governing the nature and extent of malaria-associated lung injury. We have demonstrated that sequestration of infected erythrocytes on postcapillary endothelial surfaces results in acute lung injury and the rapid recruitment of CCR2(+)CD11b(+)Ly6C(hi) monocytes from the circulation. These recruited cells remain in the lungs as monocyte-derived macrophages and are instrumental in the phagocytic clearance of adherent Plasmodium berghei-infected erythrocytes. In contrast, alveolar macrophages do not play a significant role in the clearance of malaria-infected cells. Furthermore, the results obtained from Ccr2(-/-), Cd36(-/-), and CD36 bone marrow chimeric mice showed that sequestration in the absence of CD36-mediated phagocytic clearance by monocytes leads to exaggerated lung pathologic features. In summary, our data indicate that the intensity of malaria-induced lung pathologic features is proportional to the steady-state levels of Plasmodium-infected erythrocytes adhering to the pulmonary vasculature. Moreover, the present work has defined a major role of recruited monocytes in clearing infected erythrocytes from the pulmonary interstitium, thus minimizing lung damage.
Insights
Recruited monocytes clear malaria-infected red blood cells in the lungs, preventing severe lung injury. This immune cell action is crucial for limiting inflammation and preserving lung function during severe malaria.
Area of Science:
- Immunology
- Pathology
- Infectious Diseases
Background:
- Severe malaria causes significant pulmonary complications.
- Innate immune mechanisms protecting the lungs during Plasmodium infection are not fully understood.
- The role of infected erythrocyte sequestration and immune cell clearance in malaria-associated lung injury requires further definition.
Purpose of the Study:
- To investigate the mechanisms of malaria-associated lung injury using a mouse model.
- To define the role of immune cells, particularly monocytes, in clearing infected erythrocytes from the lungs.
- To elucidate the contribution of erythrocyte sequestration and CD36-mediated clearance to lung pathology.
Main Methods:
- Utilized the Plasmodium berghei ANKA-C57BL/6 mouse model of severe malaria.
- Investigated the recruitment of monocytes (CCR2(+)CD11b(+)Ly6C(hi)) to the lungs.
- Employed Ccr2(-/-), Cd36(-/-), and CD36 bone marrow chimeric mice to assess the role of CD36 in monocyte-mediated clearance.
Main Results:
- Sequestration of infected erythrocytes in lung vasculature causes acute lung injury and monocyte recruitment.
- Recruited monocytes differentiate into macrophages and phagocytose infected erythrocytes, clearing them from the lungs.
- CD36-mediated clearance by monocytes is essential; its absence leads to exacerbated lung pathology.
- Alveolar macrophages play a minimal role in clearing infected erythrocytes.
Conclusions:
- The severity of malaria-induced lung pathology correlates with the level of infected erythrocyte sequestration in pulmonary vasculature.
- Recruited monocytes are critical for clearing infected erythrocytes from the pulmonary interstitium, thereby mitigating lung damage.
- Understanding these monocyte-driven mechanisms can inform strategies to manage severe malaria complications.
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