Jang Wookyoung, Byun Ji Won, Choi Jun Hee, Kim Bolam, Bong Ki Wan
Department of Chemical and Biological Engineering, Korea University, Seoul, 02841, Republic of Korea.
Small. 2025 Aug;21(32):e2503007. doi: 10.1002/smll.202503007. Epub 2025 Jun 12.
Graphically encoded hydrogel microparticle-based biosensing is a promising suspension microarray platform by virtue of multiplexing capability, robust sensitivity, and facilitated downstream analysis. However, the absence of a long-term and stable storage protocol for the hydrogel microparticle has been a bottleneck for the sensing platform to be adapted to practical fields. In this study, the polyethylene glycol (PEG) nanofiller-mediated lyophilization strategy of the hydrogel microparticles is presented. To inhibit the lyophilization-induced deformation of the porous structure and geometries of the particles, PEG is utilized as the filler material occupying the porous region in the hydrogel particles to prevent the interaction between polymer chains and the collapse of the porous structure. Based on the filler effect, the high decoding accuracy (more than 95%) for the lyophilized microparticles after reconstitution can be achieved by outstanding preservation of the particle geometries. Furthermore, the immunoassay performance of the antibody-functionalized microparticles lyophilized with PEG nanofiller is comparable to that of the non-lyophilized particles. Finally, the possibility of long-term storage (more than 6 months) of the lyophilized microparticles is confirmed by thermal aging. This finding is expected to promote the hydrogel microparticle-based sensing platform to be extended to practical fields via the innovation of the storage protocol.
基于图形编码水凝胶微粒的生物传感技术凭借其多重检测能力、强大的灵敏度以及便捷的下游分析,是一个颇具前景的悬浮微阵列平台。然而,缺乏一种针对水凝胶微粒的长期稳定存储方案一直是该传感平台应用于实际领域的瓶颈。在本研究中,我们提出了聚乙二醇(PEG)纳米填料介导的水凝胶微粒冻干策略。为抑制冻干过程中微粒多孔结构和几何形状的变形,PEG被用作填充材料,占据水凝胶颗粒中的多孔区域,以防止聚合物链之间的相互作用和多孔结构的坍塌。基于填充效应,通过出色地保留微粒几何形状,可实现重构后冻干微粒的高解码准确率(超过95%)。此外,用PEG纳米填料冻干的抗体功能化微粒的免疫分析性能与未冻干微粒相当。最后,通过热老化证实了冻干微粒长期存储(超过6个月)的可能性。这一发现有望通过存储方案的创新推动基于水凝胶微粒的传感平台扩展到实际领域。