Misko Vyacheslav R, Makasali Ramadhani Juma, Briet Matthieu, Legein Filip, Levecke Bruno, De Malsche Wim
µFlow Group, Department of Chemical Engineering, Vrije Universiteit Brussel, 1050 Brussels, Belgium.
Department of Translational Physiology, Infectiology and Public Health, Ghent University, 9820 Merelbeke, Belgium.
Micromachines (Basel). 2023 Nov 11;14(11):2087. doi: 10.3390/mi14112087.
The recently proposed single-image parasite quantification (SIMPAQ) platform based on a Lab-on-a-Disc (LOD) device was previously successfully tested in field conditions, demonstrating its efficiency in soil-transmitted helminth (STH) egg detection and analysis on the level delivered by the current state-of-the-art methods. Furthermore, the SIMPAQ provides relatively quick diagnostics and requires small amounts of sample and materials. On the other hand, in a recent related study, it was revealed that the performance of the SIMPAQ method can be limited due to the action of the tangential Euler and Coriolis forces, and the interaction of the moving eggs with the walls of the LOD chamber. Here, we propose a new improved design that allows us to overcome these limitations and enhance the yield of the SIMPAQ LOD device, as demonstrated in experiments with a synthetic particle model system and real parasite eggs. Despite the simplicity, the proposed design modification is demonstrated to allow a substantial improvement in the yield of the SIMPAQ device, i.e., above 90% of parasite eggs and 98% of synthetic model particles were transported to the field of view. The new design proposed here will be further examined in the new generation of SIMPAQ devices within ongoing research on STH egg detection in field conditions.
最近提出的基于盘上实验室(LOD)设备的单图像寄生虫定量(SIMPAQ)平台此前已在野外条件下成功测试,证明了其在土壤传播蠕虫(STH)虫卵检测和分析方面的效率与当前最先进方法相当。此外,SIMPAQ提供相对快速的诊断,并且所需样本和材料量少。另一方面,在最近的一项相关研究中发现,由于切向欧拉力和科里奥利力的作用以及移动虫卵与LOD腔室壁的相互作用,SIMPAQ方法的性能可能会受到限制。在此,我们提出一种新的改进设计,通过合成颗粒模型系统和真实寄生虫卵的实验证明,该设计可以克服这些限制并提高SIMPAQ LOD设备的产量。尽管设计简单,但所提出的设计改进被证明可大幅提高SIMPAQ设备的产量,即超过90%的寄生虫卵和98%的合成模型颗粒被输送到视野中。本文提出的新设计将在正在进行的野外条件下STH虫卵检测的新一代SIMPAQ设备中进一步检验。