Green Tyler P, Talley Joseph P, Bundy Bradley C
Department of Chemical Engineering, Brigham Young University, Provo, UT 84602, USA.
Biosensors (Basel). 2025 Aug 3;15(8):499. doi: 10.3390/bios15080499.
Cell-free biosensors harness the selectivity of cellular machinery without living cells' constraints, offering advantages in environmental monitoring, medical diagnostics, and biotechnological applications. This review examines recent advances in cell-free biosensor development, highlighting their ability to detect diverse analytes including heavy metals, organic pollutants, pathogens, and clinical biomarkers with high sensitivity and specificity. We analyze technological innovations in cell-free protein synthesis optimization, preservation strategies, and field deployment methods that have enhanced sensitivity, and practical applicability. The integration of synthetic biology approaches has enabled complex signal processing, multiplexed detection, and novel sensor designs including riboswitches, split reporter systems, and metabolic sensing modules. Emerging materials such as supported lipid bilayers, hydrogels, and artificial cells are expanding biosensor capabilities through microcompartmentalization and electronic integration. Despite significant progress, challenges remain in standardization, sample interference mitigation, and cost reduction. Future opportunities include smartphone integration, enhanced preservation methods, and hybrid sensing platforms. Cell-free biosensors hold particular promise for point-of-care diagnostics in resource-limited settings, environmental monitoring applications, and food safety testing, representing essential tools for addressing global challenges in healthcare, environmental protection, and biosecurity.
无细胞生物传感器利用细胞机制的选择性,而不受活细胞的限制,在环境监测、医学诊断和生物技术应用中具有优势。本文综述了无细胞生物传感器开发的最新进展,突出了它们能够以高灵敏度和特异性检测包括重金属、有机污染物、病原体和临床生物标志物在内的多种分析物的能力。我们分析了无细胞蛋白质合成优化、保存策略和现场部署方法等技术创新,这些创新提高了灵敏度和实际适用性。合成生物学方法的整合实现了复杂的信号处理、多重检测以及包括核糖开关、分裂报告系统和代谢传感模块在内的新型传感器设计。诸如支撑脂质双层、水凝胶和人工细胞等新兴材料,正通过微区室化和电子集成来扩展生物传感器的功能。尽管取得了重大进展,但在标准化、样本干扰缓解和成本降低方面仍存在挑战。未来的机遇包括与智能手机集成、改进保存方法以及混合传感平台。无细胞生物传感器在资源有限环境下的即时诊断、环境监测应用和食品安全检测方面具有特别的前景,是应对医疗保健、环境保护和生物安全等全球挑战的重要工具。