Medical College, Tianjin University, Tianjin 300072, China.
Academy of Medical Engineering and Translational Medicine, Tianjin University, Tianjin 300072, China.
Biosensors (Basel). 2023 Aug 25;13(9):848. doi: 10.3390/bios13090848.
Cancer is a common illness with a high mortality. Compared with traditional technologies, biomarker detection, with its low cost and simple operation, has a higher sensitivity and faster speed in the early screening and prognosis of cancer. Therefore, extensive research has focused on the development of biosensors and the construction of sensing interfaces. Molybdenum disulfide (MoS) is a promising two-dimensional (2D) nanomaterial, whose unique adjustable bandgap shows excellent electronic and optical properties in the construction of biosensor interfaces. It not only has the advantages of a high catalytic activity and low manufacturing costs, but it can also further expand the application of hybrid structures through different functionalization, and it is widely used in various biosensors fields. Herein, we provide a detailed introduction to the structure and synthesis methods of MoS, and explore the unique properties and advantages/disadvantages exhibited by different structures. Specifically, we focus on the excellent properties and application performance of MoS and its composite structures, and discuss the widespread application of MoS in cancer biomarkers detection from both electrochemical and optical dimensions. Additionally, with the cross development of emerging technologies, we have also expanded the application of other emerging sensors based on MoS for early cancer diagnosis. Finally, we summarized the challenges and prospects of MoS in the synthesis, functionalization of composite groups, and applications, and provided some insights into the potential applications of these emerging nanomaterials in a wider range of fields.
癌症是一种常见的高死亡率疾病。与传统技术相比,生物标志物检测具有成本低、操作简单的特点,在癌症的早期筛查和预后方面具有更高的灵敏度和更快的速度。因此,广泛的研究集中在生物传感器的开发和传感界面的构建上。二硫化钼(MoS)是一种很有前途的二维(2D)纳米材料,其独特的可调带隙在生物传感器界面的构建中表现出优异的电子和光学性能。它不仅具有高催化活性和低成本制造的优点,而且可以通过不同的功能化进一步扩展混合结构的应用,广泛应用于各种生物传感器领域。在此,我们详细介绍了 MoS 的结构和合成方法,并探讨了不同结构所表现出的独特性质和优缺点。具体而言,我们专注于 MoS 及其复合结构的优异性质和应用性能,并从电化学和光学两个维度讨论了 MoS 在癌症生物标志物检测中的广泛应用。此外,随着新兴技术的交叉发展,我们还扩展了基于 MoS 的其他新兴传感器在早期癌症诊断中的应用。最后,我们总结了 MoS 在合成、复合基团功能化和应用方面的挑战和前景,并对这些新兴纳米材料在更广泛领域的潜在应用提供了一些见解。