Reyes Sherwin, Rodriguez Raymarcos, Dikici Emre, Daunert Sylvia, Deo Sapna
Department of Biochemistry and Molecular Biology, University of Miami Miller School of Medicine, Miami, FL 33136, USA.
The Dr. John T. McDonald Foundation Bionanotechnology Institute, University of Miami, Miami, FL 33136, USA.
Biosensors (Basel). 2025 Jul 2;15(7):422. doi: 10.3390/bios15070422.
Point-of-care testing (POCT) offers a transformative approach to diagnostics by enabling rapid and accurate results at or near the site of patient care. This is especially valuable in critical care, emergency settings, and resource-limited areas. However, one major limitation of POCT remains its analytical sensitivity, particularly in detecting low concentrations of analytes. To address this, various innovations are being explored, including advanced sensors, signal amplification, and sensitive labels. Among these, bioluminescent proteins have gained attention for their high sensitivity, fast readout, minimal background interference, and simplified instrumentation. Bioluminescence-light emission from biochemical reactions-presents an ideal platform for enhancing POCT sensitivity. In parallel, metal-organic frameworks (MOFs), especially structures like ZIF-8, are emerging as valuable materials in biosensing. Their high porosity, tunable surface properties, and ability to host biomolecules make them excellent candidates for improving analyte capture and signal transduction. When integrated with bioluminescent systems, MOFs can stabilize proteins, concentrate targets, and enhance overall assay performance. This review highlights the role of bioluminescent proteins in medical diagnostics and their application in POCT platforms. We also discuss the potential synergy between MOFs and bioluminescence to overcome current sensitivity limitations. Finally, we examine existing challenges and strategies to optimize these technologies for robust, field-deployable diagnostic tools. By leveraging both the natural sensitivity of bioluminescence and the structural advantages of MOFs, next-generation POCT systems can achieve superior performance, driving forward diagnostic accessibility and patient care outcomes.
即时检测(POCT)通过在患者护理现场或其附近实现快速准确的结果,为诊断提供了一种变革性方法。这在重症监护、急诊环境和资源有限地区尤其有价值。然而,POCT的一个主要限制仍然是其分析灵敏度,特别是在检测低浓度分析物时。为了解决这个问题,人们正在探索各种创新方法,包括先进传感器、信号放大和灵敏标记。其中,生物发光蛋白因其高灵敏度、快速读数、最小背景干扰和简化仪器而受到关注。生物发光——生化反应产生的光——为提高POCT灵敏度提供了一个理想平台。与此同时,金属有机框架(MOF),尤其是像ZIF-8这样的结构,正成为生物传感中有价值的材料。它们的高孔隙率、可调节的表面性质以及容纳生物分子的能力,使其成为改善分析物捕获和信号转导的优秀候选材料。当与生物发光系统集成时,MOF可以稳定蛋白质、浓缩靶标并提高整体检测性能。本综述强调了生物发光蛋白在医学诊断中的作用及其在POCT平台中的应用。我们还讨论了MOF与生物发光之间潜在的协同作用,以克服当前的灵敏度限制。最后,我们研究了现有挑战和策略,以优化这些技术,使其成为强大的、可现场部署的诊断工具。通过利用生物发光的天然灵敏度和MOF的结构优势,下一代POCT系统可以实现卓越性能,推动诊断的可及性和患者护理结果的改善。