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Published on: June 8, 2017
Differential plasma microvesicle and brain profiles of microRNA in experimental cerebral malaria
Amy Cohen1, Anna Zinger1, Natalia Tiberti1,2
1Vascular Immunology Unit, Department of Pathology, The University of Sydney, Sydney, Australia.
Background:
Cerebral malaria (CM) is a fatal complication of Plasmodium infection, mostly affecting children under the age of five in the sub-Saharan African region. CM pathogenesis remains incompletely understood, although sequestered infected red blood cells, inflammatory cells aggregating in the cerebral blood vessels, and the microvesicles (MV) that they release in the circulation, have been implicated. Plasma MV numbers increase in CM patients and in the murine model, where blocking their release, genetically or pharmacologically, protects against brain pathology, suggesting a role of MV in CM neuropathogenesis. In this work, the microRNA (miRNA) cargo of MV is defined for the first time during experimental CM with the overarching hypothesis that this characterization could help understand CM pathogenesis.
Results:
The change in abundance of miRNA was studied following infection of CBA mice with Plasmodium berghei ANKA strain (causing experimental CM), and Plasmodium yoelii, which causes severe malaria without cerebral complications, termed non-CM (NCM). miRNA expression was analyzed using microarrays to compare MV from healthy (NI) and CM mice, yielding several miRNA of interest. The differential expression profiles of these selected miRNA (miR-146a, miR-150, miR-193b, miR-205, miR-215, miR-467a, and miR-486) were analyzed in mouse MV, MV-free plasma, and brain tissue by quantitative reverse transcription PCR (RT-qPCR). Two miRNA-miR-146a and miR-193b-were confirmed as differentially abundant in MV from CM mice, compared with NCM and NI mice. These miRNA have been shown to play various roles in inflammation, and their dysregulation during CM may be critical for triggering the neurological syndrome via regulation of their potential downstream targets.
Conclusions:
These data suggest that, in the mouse model at least, miRNA may have a regulatory role in the pathogenesis of severe malaria.
Insights
MicroRNAs (miRNAs) in microvesicles are key to understanding cerebral malaria (CM) pathogenesis. This study identified specific dysregulated miRNAs in experimental CM, offering new insights into disease mechanisms.
Area of Science:
- Parasitology
- Molecular Biology
- Neuroscience
Background:
- Cerebral malaria (CM) is a severe complication of Plasmodium infection, predominantly affecting young children in sub-Saharan Africa.
- The exact mechanisms of CM pathogenesis are not fully understood but involve infected red blood cells, inflammatory cells, and released microvesicles (MV).
- Increased plasma MV levels in CM patients and protective effects of MV release inhibition in murine models suggest a role for MVs in brain pathology.
Purpose of the Study:
- To characterize the microRNA (miRNA) cargo of microvesicles (MVs) during experimental cerebral malaria (CM).
- To investigate the potential role of specific miRNAs in CM neuropathogenesis.
- To identify novel molecular targets for understanding and potentially treating CM.
Main Methods:
- Infection of CBA mice with Plasmodium berghei ANKA (experimental CM) and Plasmodium yoelii (non-CM).
- Analysis of miRNA expression in MVs from healthy, CM, and non-CM mice using microarrays.
- Validation of differentially expressed miRNAs (miR-146a, miR-193b) in MVs, plasma, and brain tissue using quantitative reverse transcription PCR (RT-qPCR).
Main Results:
- Microarray analysis identified several miRNAs of interest in MVs from CM mice.
- Quantitative RT-PCR confirmed differential abundance of miR-146a and miR-193b in MVs from CM mice compared to non-CM and non-infected mice.
- These two miRNAs are known to be involved in inflammatory processes, suggesting their dysregulation contributes to CM neurological symptoms.
Conclusions:
- MicroRNAs within microvesicles play a regulatory role in the pathogenesis of severe malaria.
- Dysregulated miR-146a and miR-193b in experimental CM may be critical for the neurological syndrome.
- Further research into miRNA function in CM could elucidate disease mechanisms and identify therapeutic targets.
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