Wang Jiale, Li Kai, Li Fukai, Li Xinran, Zhou Jian, Yang Mengrui, Zhang Xiao, Wang Mengyu, Li Liang
School of Life Science and Technology, Changchun University of Science and Technology, Changchun 130022, China.
State Key Laboratory for Quality and Safety of Agro-Products, Institute of Quality Standard and Testing Technology for Agro-products, Chinese Academy of Agricultural Sciences, Beijing 100081, China.
Int J Biol Sci. 2025 Jun 9;21(9):4051-4068. doi: 10.7150/ijbs.113309. eCollection 2025.
Nucleic acid analysis technology is the key to cracking the genetic information of life, which is very important for insight into disease diagnosis, drug development, food safety and environmental monitoring. The successful implementation of nucleic acid analysis depends on efficient and accurate nucleic acid sample purification technology. Traditional nucleic acid extraction methods are not only time-consuming and difficult to handle but also require skilled operators. Nanotechnology is gradually innovating nucleic acid extraction, simplifying the process and promoting biological science into a new era. The interaction modes between nanomaterials and nucleic acid molecules are diverse, including electrostatic interaction, covalent binding (direct covalent bonding, biotin-avidin system, disulfide bond connection, coordination bond, azide-alkyne click reaction, EDC/NHS coupling), π-π stacking effect, hydrogen bond formation, hydrophobic interaction and ion exchange. Among them, electrostatic interaction and covalent binding are particularly common and widely used. In addition, integrating nanomaterials into advanced monitoring systems such as microfluidic chips and biosensors provides strong support for the innovation of nucleic acid detection technology. The purpose of this paper is to comprehensively explain the basic principles and related molecular mechanisms of the interaction between nucleic acids and nanomaterials and to demonstrate their effectiveness in practical applications through specific examples for each interaction mode. Finally, we will review the latest progress of nanomaterial application in nucleic acid analysis, aiming to provide valuable references and inspirations for future research and development in this field.
核酸分析技术是破解生命遗传信息的关键,对于洞察疾病诊断、药物研发、食品安全和环境监测非常重要。核酸分析的成功实施依赖于高效准确的核酸样本纯化技术。传统的核酸提取方法不仅耗时且操作困难,还需要熟练的操作人员。纳米技术正在逐步革新核酸提取,简化流程并推动生物科学进入一个新时代。纳米材料与核酸分子之间的相互作用模式多种多样,包括静电相互作用、共价结合(直接共价键合、生物素-抗生物素蛋白系统、二硫键连接、配位键、叠氮化物-炔烃点击反应、EDC/NHS偶联)、π-π堆积效应、氢键形成、疏水相互作用和离子交换。其中,静电相互作用和共价结合尤为常见且应用广泛。此外,将纳米材料集成到微流控芯片和生物传感器等先进监测系统中,为核酸检测技术的创新提供了有力支持。本文旨在全面阐释核酸与纳米材料相互作用的基本原理及相关分子机制,并通过每种相互作用模式的具体实例展示其在实际应用中的有效性。最后,我们将综述纳米材料在核酸分析中的应用最新进展,旨在为该领域未来的研发提供有价值的参考和启示。