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Evaluation of Extracellular Vesicle Function During Malaria Infection
Published on: February 14, 2018
Malaria infected red blood cells release small regulatory RNAs through extracellular vesicles
Kehinde Adebayo Babatunde1, Smart Mbagwu1, María Andrea Hernández-Castañeda1
1Department of Medicine, University of Fribourg, 1700, Fribourg, Switzerland.
Abstract:
The parasite Plasmodium falciparum causes the most severe form of malaria. Cell communication between parasites is an important mechanism to control population density and differentiation. The infected red blood cells (iRBCs) release small extracellular vesicles (EVs) that transfer cargoes between cells. The EVs synchronize the differentiation of the asexual parasites into gametocytes to initiate the transmission to the mosquito. Beside their role in parasite communication, EVs regulate vascular function. So far, the exact cargoes responsible for cellular communication remain unknown. We isolated EVs from cultured iRBCs to determine their small RNA content. We identified several types of human and plasmodial regulatory RNAs. While the miRNAs and tRNA-derived fragments were the most abundant human RNAs, we also found Y-RNAs, vault RNAs, snoRNAs and piRNAs. Interestingly, we found about 120 plasmodial RNAs, including mRNAs coding for exported proteins and proteins involved in drug resistance, as well as non-coding RNAs, such as rRNAs, small nuclear (snRNAs) and tRNAs. These data show, that iRBC-EVs carry small regulatory RNAs. A role in cellular communication is possible since the RNAs were transferred to endothelial cells. Furthermore, the presence of Plasmodium RNAs, in EVs suggests that they may be used as biomarker to track and detect disease.
Insights
Extracellular vesicles from malaria parasites transfer regulatory RNAs. These RNAs may synchronize parasite development and serve as biomarkers for disease detection.
Area of Science:
- Molecular biology
- Parasitology
- Cell biology
Background:
- Plasmodium falciparum causes severe malaria.
- Cell communication regulates parasite density and differentiation.
- Extracellular vesicles (EVs) mediate cargo transfer between cells.
Purpose of the Study:
- To identify small RNAs within EVs released by infected red blood cells.
- To investigate the role of these RNAs in parasite communication and potential disease biomarkers.
Main Methods:
- Isolation of EVs from cultured infected red blood cells.
- Small RNA sequencing to profile RNA content.
- Analysis of human and Plasmodium RNA species.
Main Results:
- EVs contained various human regulatory RNAs (miRNAs, tRNA fragments, Y-RNAs, etc.).
- Approximately 120 Plasmodium RNAs were identified, including mRNAs and non-coding RNAs (rRNAs, snRNAs, tRNAs).
- EVs transferred RNAs to endothelial cells, suggesting a role in intercellular communication.
Conclusions:
- Infected red blood cell EVs carry diverse small regulatory RNAs.
- These RNAs may synchronize parasite differentiation and influence host cell function.
- Plasmodium RNAs in EVs show potential as disease biomarkers for malaria detection.
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