Highly Sensitive and Rapid Characterization of the Development of Synchronized Blood Stage Malaria Parasites Via Magneto-Optical Hemozoin Quantification

The rotating-crystal magneto-optical diagnostic (RMOD) technique was developed as a sensitive and rapid platform for malaria diagnosis. Herein, we report a detailed in vivo assessment of the synchronized <i>Plasmodium vinckei</i> lentum strain blood-stage infections by the RMOD method an...

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Main Authors: Mária Pukáncsik, Petra Molnár, Ágnes Orbán, Ádám Butykai, Lívia Marton, István Kézsmárki, Beáta G. Vértessy, Mohd Kamil, Amanah Abraham, Ahmed S. I. Aly
Format: Article
Language:English
Published: MDPI AG 2019-10-01
Series:Biomolecules
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Online Access:https://www.mdpi.com/2218-273X/9/10/579
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Summary:The rotating-crystal magneto-optical diagnostic (RMOD) technique was developed as a sensitive and rapid platform for malaria diagnosis. Herein, we report a detailed in vivo assessment of the synchronized <i>Plasmodium vinckei</i> lentum strain blood-stage infections by the RMOD method and comparing the results to the unsynchronized <i>Plasmodium yoelii</i> 17X-NL (non-lethal) infections. Furthermore, we assess the hemozoin production and clearance dynamics in chloroquine-treated compared to untreated self-resolving infections by RMOD. The findings of the study suggest that the RMOD signal is directly proportional to the hemozoin content and closely follows the actual parasitemia level. The lack of long-term accumulation of hemozoin in peripheral blood implies a dynamic equilibrium between the hemozoin production rate of the parasites and the immune system&#8217;s clearing mechanism. Using parasites with synchronous blood stage cycle, which resemble human malaria parasite infections with <i>Plasmodium falciparum</i> and <i>Plasmodium vivax</i>, we are demonstrating that the RMOD detects both hemozoin production and clearance rates with high sensitivity and temporal resolution. Thus, RMOD technique offers a quantitative tool to follow the maturation of the malaria parasites even on sub-cycle timescales.
ISSN:2218-273X