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Published on: June 29, 2016
Intercellular adhesion molecule 1 is important for the development of severe experimental malaria but is not required
Jie Li1, Wun-Ling Chang, Guang Sun
1Department of Medicine, Louisiana State University Health Sciences Center, Shreveport, USA.
Abstract:
Plasmodium berghei-infected mice, a well-recognized model of experimental cerebral malaria (ECM), exhibit a systemic inflammatory response. Most investigators hypothesize that leukocytes bind to endothelial cells via intercellular adhesion molecule 1 (ICAM-1), which causes endothelial damage, increased microvascular permeability, and, ultimately, death. ICAM-1-deficient mice on an ECM-susceptible C57BL/6 background were significantly (p = .04) protected from P. berghei mortality compared with ICAM-1 intact controls. ICAM-1 expression assessed by the dual radiolabeled monoclonal antibody technique was increased in the brain and lung in C57BL/6 mice on day 6 of P. berghei infection compared with uninfected controls (5.3-fold, p = .0003 for brain and 1.8-fold, p = .04 for lung). The increase in ICAM-1 expression coincided with significant (p < .05) increases in microvascular permeability in the brain and lung. In contrast to the hypothesized role for ICAM-1, in vivo analysis by intravital microscopy of leukocyte rolling and adhesion in brain microvasculature of mice revealed markedly increased levels of leukocyte rolling and adhesion in ICAM-1-deficient mice on day 6 of P. berghei infection compared with uninfected controls. In addition, ICAM-1 expression and microvascular permeability were increased in infected ECM-resistant BALB/c mice compared with uninfected BALB/c controls. These results collectively indicate that although ICAM-1 contributes to the mortality of experimental malaria, it is not sufficient for the development of severe experimental malaria. In addition, ICAM-1 expressed on the endothelium or on leukocytes is not required for leukocyte rolling or adhesion to the brain microvasculature of mice during P. berghei malaria. Leukocyte rolling and adhesion in the brain vasculature during P. berghei malaria use different ligands than observed during inflammation in other vascular beds.
Insights
Intercellular adhesion molecule 1 (ICAM-1) contributes to experimental cerebral malaria mortality but is not required for leukocyte adhesion in the brain. This finding challenges the traditional understanding of malaria pathogenesis.
Area of Science:
- Immunology
- Pathology
- Infectious Diseases
Background:
- Experimental cerebral malaria (ECM) in Plasmodium berghei-infected mice is a model for systemic inflammation.
- Leukocyte binding via ICAM-1 is hypothesized to cause endothelial damage and increased microvascular permeability in ECM.
- The role of ICAM-1 in ECM pathogenesis requires further investigation.
Purpose of the Study:
- To investigate the role of ICAM-1 in experimental cerebral malaria (ECM) pathogenesis.
- To determine if ICAM-1 is essential for leukocyte rolling and adhesion in the brain microvasculature during malaria.
- To elucidate the mechanisms underlying leukocyte-endothelial interactions in ECM.
Main Methods:
- Utilized ICAM-1-deficient and wild-type C57BL/6 mice infected with Plasmodium berghei.
- Quantified ICAM-1 expression using a dual radiolabeled monoclonal antibody technique.
- Assessed microvascular permeability in the brain and lung.
- Performed in vivo intravital microscopy to analyze leukocyte rolling and adhesion in brain microvasculature.
Main Results:
- ICAM-1-deficient mice showed significant protection from P. berghei-induced mortality.
- Increased ICAM-1 expression and microvascular permeability were observed in the brain and lung of infected mice.
- Contrary to hypotheses, ICAM-1-deficient mice exhibited increased leukocyte rolling and adhesion in the brain.
- ICAM-1 was not required for leukocyte rolling or adhesion in the brain microvasculature during P. berghei malaria.
Conclusions:
- ICAM-1 contributes to experimental malaria mortality but is not sufficient for severe disease development.
- ICAM-1 is not essential for leukocyte rolling or adhesion in the brain microvasculature during P. berghei malaria.
- Leukocyte-endothelial interactions in the brain during malaria may involve different ligands than in other vascular beds.
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