State and Local Joint Engineering Laboratory for Novel Functional Polymeric Materials, College of Chemistry, Chemical Engineering and Materials Science, Soochow University, 199 Ren-Ai Road, Suzhou 215123, P.R. China.
Jiangsu Biosurf Biotech Company Ltd., Building 26, Dongjing Industrial Square, No. 1, Jintian Road, Suzhou Industrial Park, Suzhou 215123, P.R. China.
ACS Biomater Sci Eng. 2023 Sep 11;9(9):5304-5311. doi: 10.1021/acsbiomaterials.3c00860. Epub 2023 Aug 15.
Heparin-mimicking polymers (HMPs) are artificially synthesized alternatives to heparin with comparable regulatory effects on protein adsorption and cell behavior. By introducing two major structural elements of HMPs (sulfonate- and glyco-containing units) to different areas of material surfaces, heterogeneous surfaces patterned with different HMPs and homogeneous surfaces patterned with the same HMPs can be obtained. In this work, heterogeneous HMP-patterned poly(dimethylsiloxane) (PDMS) surfaces with sulfonate-containing polySS (pS) and glyco-containing polyMAG (pM) distributed in circular patterns (with a diameter of 300 μm) were prepared (S-M and M-S). Specifically, pS and pM were distributed inside and outside the circles on S-M, respectively, and exchanged their distribution on M-S. Homogeneous HMP-patterned silicone surfaces (SM-SM) where sulfonate- and glyco-containing poly(SS--MAG) (pSM) were distributed uniformly were prepared. Vascular cells showed interestingly different behaviors between chemically homogeneous and heterogeneous surfaces. They tended to grow in the sulfonate-modified area on S-M and M-S and were distributed uniformly on SM-SM. Compared with M-S, S-M showed a better promoting effect on the growth of vascular cells. Among all the samples, SM-SM exhibited the highest proliferation density and an optimum spreading state of vascular cells, as well as the highest human umbilical vein endothelial cell (HUVEC) viability (∼99%) and relatively low human umbilical vein smooth muscle cell (HUVSMC) viability (∼72%). By heterogeneous or homogeneous patterning with different structural elements of HMPs, the modified silicone surfaces spatially guided vascular cell distribution and functions. This strategy provides a new surface engineering approach to the study of cell-HMP interactions.
肝素模拟聚合物(HMPs)是人工合成的肝素替代品,对蛋白质吸附和细胞行为具有相似的调节作用。通过将 HMP 的两个主要结构元素(磺酸基和糖基单元)引入到材料表面的不同区域,可以获得具有不同 HMP 图案的异质表面和具有相同 HMP 图案的均质表面。在这项工作中,制备了具有磺酸基聚 SS(pS)和糖基聚 MAG(pM)分布的圆形图案(直径为 300μm)的异质 HMP 图案化聚二甲基硅氧烷(PDMS)表面(S-M 和 M-S)。具体而言,pS 和 pM 分别分布在 S-M 的内圈和外圈,在 M-S 上则相互交换了分布位置。还制备了磺酸基和糖基聚(SS-MAG)(pSM)均匀分布的均质 HMP 图案化硅酮表面(SM-SM)。有趣的是,血管细胞在化学均相和异质表面上表现出不同的行为。它们倾向于在 S-M 和 M-S 的磺酸基修饰区域生长,并在 SM-SM 上均匀分布。与 M-S 相比,S-M 对血管细胞的生长具有更好的促进作用。在所有样品中,SM-SM 表现出最高的增殖密度和血管细胞的最佳铺展状态,以及最高的人脐静脉内皮细胞(HUVEC)活力(约 99%)和相对较低的人脐静脉平滑肌细胞(HUVSMC)活力(约 72%)。通过 HMP 不同结构元素的异质或同质图案化,可以空间引导血管细胞的分布和功能。该策略为研究细胞-HMP 相互作用提供了一种新的表面工程方法。