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Improving Lateral Flow Assay Performance Using Computational Modeling

机译:使用计算建模改进横向流动测定性能

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摘要

The performance, field utility, and low cost of lateral flow assays (LFAs) have driven a tremendous shift in global health care practices by enabling diagnostic testing in previously unserved settings. This success has motivated the continued improvement of LFAs through increasingly sophisticated materials and reagents. However, our mechanistic understanding of the underlying processes that drive the informed design of these systems has not received commensurate attention. Here, we review the principles underpinning LFAs and the historical evolution of theory to predict their performance. As this theory is integrated into computational models and becomes testable, the criteria for quantifying performance and validating predictive power are critical. The integration of computational design with LFA development offers a promising and coherent framework to choose from an increasing number of novel materials, techniques, and reagents to deliver the low-cost, high-fidelity assays of the future.
机译:横向流量测定(LFA)的性能,现场实用性和低成本通过在先前未维护的设置中启用诊断测试,驱动了全局医疗实践中的巨大转变。这一成功激励了通过越来越复杂的材料和试剂的LFA继续改善。然而,我们对推动这些系统的知情设计的潜在流程的机制理解并未接受关注。在这里,我们审查了基于LFA的原则和理论的历史演变来预测其表现。随着该理论被集成到计算模型中并且变得可测试,定量性能和验证预测功率的标准是至关重要的。使用LFA开发的计算设计的整合提供了有希望和相干的框架,可从越来越多的新型材料,技术和试剂中选择,以提供未来的低成本,高保真测定。

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