National Key Laboratory of Green Pesticide, Key Laboratory of Green Pesticide and Agricultural Bioengineering, Ministry of Education, Guizhou University, Guiyang, Guizhou, 550025, China.
Institute of Mass Spectrometry, School of Material Science and Chemical Engineering, Ningbo University, Ningbo, Zhejiang, 315211, China.
Talanta. 2025 Jan 1;281:126876. doi: 10.1016/j.talanta.2024.126876. Epub 2024 Sep 14.
Due to the increasing crop losses caused by common and newly emerging phytopathogens, there is a pressing need for the development of rapid and reliable methods for phytopathogen detection and analysis. Leveraging advancements in biochemical engineering technologies and nanomaterial sciences, researchers have put considerable efforts on utilizing biofunctionalized magnetic micro- and nanoparticles (MPs) to develop rapid and reliable systems for phytopathogen detection. MPs facilitate the rapid, high-throughput analysis and in-field applications, while the biomacromolecules, which play key roles in the biorecognitions, interactions and signal amplification, determine the specificity, sensitivity, reliability, and portability of pathogen detection systems. The integration of MPs and biomacromolecules provides dimensionality- and composition-dependent properties, representing a novel approach to develop phytopathogen detection systems. In this review, we summarize and discuss the general properties, synthesis and characterization of MPs, and focus on biomacromolecule-functionalized MPs as well as their representative applications for phytopathogen detection and analysis reported over the past decade. Extensively studied bioreceptors, such as antibodies, phages and phage proteins, nucleic acids, and glycans that are involved in the recognitions and interactions, are covered and discussed. Additionally, the integration of MPs-based detection system with portable microfluidic devices to facilitate their in-field applications is also discussed. Overall, this review focuses on biomacromolecule-functionalized MPs and their applications for phytopathogen detection, aiming to highlight their potential in developing advanced biosensing systems for effective plant protection.
由于常见和新出现的植物病原体导致的作物损失不断增加,因此迫切需要开发快速可靠的植物病原体检测和分析方法。利用生化工程技术和纳米材料科学的进步,研究人员在利用生物功能化磁性微纳米粒子(MPs)开发快速可靠的植物病原体检测系统方面付出了相当大的努力。MPs 促进了快速、高通量的分析和现场应用,而在生物识别、相互作用和信号放大中起关键作用的生物大分子决定了病原体检测系统的特异性、敏感性、可靠性和便携性。MPs 和生物大分子的结合提供了依赖于维度和组成的特性,这代表了开发植物病原体检测系统的一种新方法。在这篇综述中,我们总结和讨论了 MPs 的一般性质、合成和表征,并重点介绍了生物大分子功能化 MPs 及其在过去十年中用于植物病原体检测和分析的代表性应用。涵盖并讨论了广泛研究的生物受体,如参与识别和相互作用的抗体、噬菌体和噬菌体蛋白、核酸和聚糖。此外,还讨论了基于 MPs 的检测系统与便携式微流控设备的集成,以促进其现场应用。总的来说,本综述重点介绍了生物大分子功能化 MPs 及其在植物病原体检测中的应用,旨在强调它们在开发用于有效植物保护的先进生物传感系统方面的潜力。