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Published on: December 4, 2015
Homeostasis of extracellular ATP in uninfected RBCs from a Plasmodium falciparum culture and derived microparticles
Cora L Alvarez1, Arnaud Chêne2, Jean-Philippe Semblat2
1Instituto de Química y Físico-Química Biológicas "Prof. Alejandro C. Paladini", Universidad de Buenos Aires (UBA), Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET), Facultad de Farmacia y Bioquímica, Junín 956, C1113AAD Buenos Aires, Argentina; Universidad de Buenos Aires (UBA), Facultad de Ciencias Exactas y Naturales, Departamento de Biodiversidad y Biología Experimental, Intendente Güiraldes 2160, Ciudad Universitaria, C1428EGA Buenos Aires, Argentina.
Abstract:
Plasmodium falciparum, a dangerous parasitic agent causing malaria, invades human red blood cells (RBCs), causing hemolysis and microvascular obstruction. These and other pathological processes of malaria patients are due to metabolic and structural changes occurring in uninfected RBCs. In addition, infection activates the production of microparticles (MPs). ATP and byproducts are important extracellular ligands modulating purinergic signaling within the intravascular space. Here, we analyzed the contribution of uninfected RBCs and MPs to the regulation of extracellular ATP (eATP) of RBCs, which depends on the balance between ATP release by specific transporters and eATP hydrolysis by ectonucleotidases. RBCs were cultured with P. falciparum for 24-48 h prior to experiments, from which uninfected RBCs and MPs were purified. On-line luminometry was used to quantify the kinetics of ATP release. Luminometry, colorimetry and radioactive methods were used to assess the rate of eATP hydrolysis by ectonucleotidases. Rates of ATP release and eATP hydrolysis were also evaluated in MPs. Uninfected RBCs challenged by different stimuli displayed a strong and transient activation of ATP release, together with an elevated rate of eATP hydrolysis. MPs contained ATP in their lumen, which was released upon vesicle rupture, and were able to hydrolyze eATP. Results suggest that uninfected RBCs and MPs can act as important determinants of eATP regulation of RBCs during malaria. The comparison of eATP homeostasis in infected RBCs, ui-RBCs, and MPs allowed us to speculate on the impact of P. falciparum infection on intravascular purinergic signaling and the control of the vascular caliber by RBCs.
Insights
Uninfected red blood cells and microparticles play a key role in regulating extracellular ATP levels during malaria, impacting purinergic signaling and vascular control.
Area of Science:
- Biochemistry
- Parasitology
- Hematology
Background:
- Malaria, caused by Plasmodium falciparum, leads to red blood cell (RBC) pathology.
- Uninfected RBCs and microparticles (MPs) undergo changes affecting malaria pathogenesis.
- Extracellular ATP (eATP) and purinergic signaling are crucial in the intravascular space.
Purpose of the Study:
- To investigate the role of uninfected RBCs and MPs in regulating eATP levels.
- To understand the balance of ATP release and hydrolysis by RBCs and MPs.
- To explore the impact of Plasmodium falciparum infection on purinergic signaling.
Main Methods:
- Culturing RBCs with P. falciparum and purifying uninfected RBCs and MPs.
- Utilizing on-line luminometry to measure ATP release kinetics.
- Employing luminometry, colorimetry, and radioactive assays to assess eATP hydrolysis by ectonucleotidases.
Main Results:
- Uninfected RBCs showed transient ATP release and increased eATP hydrolysis upon stimulation.
- MPs contained and released ATP, and demonstrated eATP hydrolyzing activity.
- Both uninfected RBCs and MPs were identified as significant regulators of eATP.
Conclusions:
- Uninfected RBCs and MPs are critical in maintaining eATP homeostasis during malaria.
- Plasmodium falciparum infection influences intravascular purinergic signaling.
- RBCs and MPs may modulate vascular caliber control in malaria patients.
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