Department of Chemistry, Beijing Key Laboratory of Microanalytical Methods and Instrumentation, Key Laboratory of Bioorganic Phosphorus Chemistry & Chemical Biology (Ministry of Education), Tsinghua University, Beijing 100084, China.
ACS Appl Mater Interfaces. 2023 Feb 15;15(6):7833-7840. doi: 10.1021/acsami.2c21104. Epub 2023 Jan 11.
Fabrication and application of novel anisotropic microparticles are of wide interest. Herein, a new method for producing novel crater-terrain hydrogel microparticles is presented using a concept of droplet-aerosol impact and regional polymerization. The surface pattern of microparticles is similar to the widespread "crater" texture on the lunar surface and can be regulated by the impact morphology of aerosols on the droplet surface. Methodological applicability was demonstrated by producing ionic-cross-linked (alginate) and photo-cross-linked (poly(ethylene glycol) diacrylate, PEGDA) microparticles. Additionally, the crater-terrain microparticles (CTMs) can induce nonspecific protein absorption on their surface to acquire cell affinity, and they were exploited as cell carriers to load living cells. Cells could adhere and proliferate, and a special cellular adhesion fingerprint was observed on the novel cell carrier. Therefore, the scalable manufacturing method and biological potential make the engineered microparticles promising to open a new avenue for exploring cell-biomaterial crosstalk.
新型各向异性微球的制备和应用受到广泛关注。在此,提出了一种利用液滴-气溶胶撞击和区域聚合的新概念来制备新型火山口地形水凝胶微球的新方法。微球的表面图案类似于月球表面广泛存在的“火山口”纹理,并且可以通过气溶胶在液滴表面的撞击形态进行调节。通过制备离子交联(海藻酸盐)和光交联(聚乙二醇二丙烯酸酯,PEGDA)微球证明了方法的适用性。此外,火山口地形微球(CTMs)可以在其表面诱导非特异性蛋白质吸收以获得细胞亲和力,并将其用作细胞载体来负载活细胞。细胞可以附着和增殖,并在新型细胞载体上观察到特殊的细胞附着指纹。因此,可扩展的制造方法和生物学潜力使得工程微球有望为探索细胞-生物材料相互作用开辟新途径。