Diao Youlu, Gao Jia, Ma Yue, Pan Guoqing
Institute for Advanced Materials, School of Materials Science and Engineering, Jiangsu University, 301 Xuefu Rd, Zhenjiang, Jiangsu, 212013, China.
School of Chemistry and Chemical Engineering, Jiangsu University, 301 Xuefu Rd, Zhenjiang, Jiangsu, 212013, China.
Bioact Mater. 2024 Nov 21;45:162-180. doi: 10.1016/j.bioactmat.2024.11.012. eCollection 2025 Mar.
Molecular imprinting technology (MIT), a synthetic strategy to create tailor-made molecular specificity, has recently achieved significant advancements. Epitope imprinting strategy, an improved MIT by imprinting the epitopes of biomolecules (e.g., proteins and nucleic acids), enables to target the entire molecule through recognizing partial epitopes exposed on it, greatly expanding the applicability and simplifying synthesis process of molecularly imprinted polymers (MIPs). Thus, epitope imprinting strategy offers promising solutions for the fabrication of smart biomaterials with molecular targeting and exhibits wide applications in various biomedical scenarios. This review explores the latest advances in epitope imprinting techniques, emphasizing selection of epitopes and functional monomers. We highlight the significant improvements in specificity, sensitivity, and stability of these materials, which have facilitated their use in bioanalysis, clinical therapy, and pharmaceutical development. Additionally, we discuss the application of epitope-imprinted materials in the recognition and detection of peptides, proteins, and cells. Despite these advancements, challenges such as template complexity, imprinting efficiency, and scalability remain. This review addresses these issues and proposes potential directions for future research to overcome these barriers, thereby enhancing the efficacy and practicality of epitope molecularly imprinting technology in biomedical fields.
分子印迹技术(MIT)作为一种创建定制分子特异性的合成策略,近年来取得了重大进展。表位印迹策略是通过印迹生物分子(如蛋白质和核酸)的表位对MIT的改进,它能够通过识别分子上暴露的部分表位来靶向整个分子,极大地扩展了分子印迹聚合物(MIPs)的适用性并简化了合成过程。因此,表位印迹策略为制备具有分子靶向性的智能生物材料提供了有前景的解决方案,并在各种生物医学场景中展现出广泛应用。本综述探讨了表位印迹技术的最新进展,重点强调了表位和功能单体的选择。我们突出了这些材料在特异性、灵敏度和稳定性方面的显著改进,这些改进促进了它们在生物分析、临床治疗和药物开发中的应用。此外,我们讨论了表位印迹材料在肽、蛋白质和细胞识别与检测中的应用。尽管取得了这些进展,但诸如模板复杂性、印迹效率和可扩展性等挑战仍然存在。本综述阐述了这些问题,并提出了未来研究的潜在方向以克服这些障碍,从而提高表位分子印迹技术在生物医学领域的功效和实用性。