Department of Physics, Budapest University of Technology and Economics and MTA-BME Lendület Magneto-optical Spectroscopy Research Group, 1111 Budapest, Hungary.
Institute of Enzymology, Research Centre for Natural Sciences, Hungarian Academy of Sciences, 1117 Budapest, Hungary.
Biomolecules. 2019 Oct 7;9(10):579. doi: 10.3390/biom9100579.
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 lentum strain blood-stage infections by the RMOD method and comparing the results to the unsynchronized 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's clearing mechanism. Using parasites with synchronous blood stage cycle, which resemble human malaria parasite infections with and , 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.
旋转晶体磁光诊断(RMOD)技术是一种灵敏、快速的疟疾诊断方法。在此,我们报告了 RMOD 方法对同步 lentum 株血期感染的详细体内评估,并将结果与非同步 17X-NL(非致死)感染进行了比较。此外,我们通过 RMOD 评估了氯喹治疗与未治疗自限性感染之间的疟色素产生和清除动力学。该研究的结果表明,RMOD 信号与疟色素含量成正比,并密切跟随实际的疟原虫血症水平。外周血中没有长期积累的疟色素表明疟原虫的疟色素产生率与免疫系统的清除机制之间存在动态平衡。使用具有同步血期周期的寄生虫,类似于 和 的人类疟原虫感染,我们证明 RMOD 以高灵敏度和时间分辨率检测疟色素的产生和清除率。因此,RMOD 技术提供了一种定量工具,可在亚周期时间尺度上跟踪疟原虫的成熟。