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Isolation and Analysis of Brain-sequestered Leukocytes from Plasmodium berghei ANKA-infected Mice
Published on: January 2, 2013
Isolation and analysis of brain-sequestered leukocytes from Plasmodium berghei ANKA-infected mice
Victoria Ryg-Cornejo1, Lisa J Ioannidis, Diana S Hansen
1The Walter and Eliza Hall Institute of Medical Research.
Abstract:
We describe a method for isolation and characterization of adherent inflammatory cells from brain blood vessels of P. berghei ANKA-infected mice. Infection of susceptible mouse-strains with this parasite strain results in the induction of experimental cerebral malaria, a neurologic syndrome that recapitulates certain important aspects of Plasmodium falciparum-mediated severe malaria in humans. Mature forms of blood-stage malaria express parasitic proteins on the surface of the infected erythrocyte, which allows them to bind to vascular endothelial cells. This process induces obstructions in blood flow, resulting in hypoxia and haemorrhages and also stimulates the recruitment of inflammatory leukocytes to the site of parasite sequestration. Unlike other infections, i.e neutrotopic viruses, both malaria-parasitized red blood cells (pRBC) as well as associated inflammatory leukocytes remain sequestered within blood vessels rather than infiltrating the brain parenchyma. Thus to avoid contamination of sequestered leukocytes with non-inflammatory circulating cells, extensive intracardial perfusion of infected-mice prior to organ extraction and tissue processing is required in this procedure to remove the blood compartment. After perfusion, brains are harvested and dissected in small pieces. The tissue structure is further disrupted by enzymatic treatment with Collagenase D and DNAse I. The resulting brain homogenate is then centrifuged on a Percoll gradient that allows separation of brain-sequestered leukocytes (BSL) from myelin and other tissue debris. Isolated cells are then washed, counted using a hemocytometer and stained with fluorescent antibodies for subsequent analysis by flow cytometry. This procedure allows comprehensive phenotypic characterization of inflammatory leukocytes migrating to the brain in response to various stimuli, including stroke as well as viral or parasitic infections. The method also provides a useful tool for assessment of novel anti-inflammatory treatments in pre-clinical animal models.
Insights
We developed a new method to isolate and characterize inflammatory cells sequestered in brain blood vessels during experimental cerebral malaria. This technique enables detailed study of these cells and evaluation of new anti-inflammatory treatments.
Area of Science:
- Neuroscience
- Immunology
- Parasitology
Background:
- Experimental cerebral malaria in mice mimics human severe malaria.
- Malaria-parasitized red blood cells (pRBC) and leukocytes sequester in brain blood vessels.
- Parenchymal infiltration is minimal, necessitating specialized isolation techniques.
Purpose of the Study:
- To describe a method for isolating and characterizing adherent inflammatory cells from brain blood vessels.
- To enable phenotypic analysis of leukocytes recruited to the brain during infection.
- To provide a tool for assessing anti-inflammatory therapies in preclinical models.
Main Methods:
- Extensive intracardial perfusion to remove circulating blood cells.
- Enzymatic disruption of brain tissue using Collagenase D and DNAse I.
- Percoll gradient centrifugation to isolate brain-sequestered leukocytes (BSL).
- Flow cytometry analysis of stained BSL.
Main Results:
- Successful isolation of BSL from infected mouse brains.
- Characterization of inflammatory cell phenotypes within the brain vasculature.
- Demonstration of the method's utility for studying neuroinflammation.
Conclusions:
- The described method effectively isolates BSL for detailed analysis.
- This technique is valuable for understanding neuroinflammation in malaria and other conditions.
- It serves as a preclinical tool for evaluating novel therapeutic interventions.
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