Shanghai Qisheng Biological Preparation Co. Ltd., Shanghai 201106, PR China; Shanghai Haohai Biological Technology Co. Ltd., Shanghai 200052, PR China; Polymer Processing Laboratory, Key Laboratory for Preparation and Application of Ultrafine Materials of Ministry of Education, School of Material Science and Engineering, East China University of Science and Technology, Shanghai 200237, PR China.
Shanghai Qisheng Biological Preparation Co. Ltd., Shanghai 201106, PR China.
Int J Biol Macromol. 2021 Jun 1;180:234-241. doi: 10.1016/j.ijbiomac.2021.03.071. Epub 2021 Mar 16.
Cell fate and morphologies are influenced by the mechanical property of matrix. However, the relevant works about the dynamic adjustable of matrix mechanical property is rare and most of them need extra stimulation, such as the controllable of the degradation. In this study, double crosslinking (DC) hydrogels are fabricated by sequential covalent crosslinking and electrostatic interactions between hyaluronic acid and poly-lysine. Without any extra stimulation or treatment, the compressive stress of DC-hydrogels increases from 22.4 ± 9.4 kPa to 320.1 ± 6.6 kPa with the elongation of incubation time in DMEM solution. The change of compressive stress of matrix induced the morphology of L929 fibroblast cells adjusted from the distributed round shape to spheroid cell clusters and finally to spread shape. RNA sequence analysis also demonstrated that the differentially gene expression and GO enrichment between the cells seeded on the DC-hydrogel with different incubation time. In addition, by increasing the electrostatic interactions ratio of the hydrogel, the biodegradation, compressive stress and energy dissipation of the DC-hydrogels were also significantly improved. Therefore, our study provides new and critical insights into the design strategy to achieve DC-hydrogels which can in situ alter cells morphology and open up a new avenue for the application of disease therapy.
细胞命运和形态受基质力学性质的影响。然而,关于基质力学性质动态可调的相关工作很少,而且大多数都需要额外的刺激,如可控降解。在这项研究中,通过透明质酸和聚赖氨酸之间的顺序共价交联和静电相互作用来制备双重交联 (DC) 水凝胶。在 DMEM 溶液中孵育时间的延长,无需任何额外的刺激或处理,DC-水凝胶的压缩应力从 22.4±9.4kPa 增加到 320.1±6.6kPa。基质压缩应力的变化诱导 L929 成纤维细胞的形态从分散的圆形调整为球形细胞簇,最终调整为展开的形状。RNA 序列分析还表明,在不同孵育时间的 DC-水凝胶上接种的细胞之间存在差异基因表达和 GO 富集。此外,通过增加水凝胶的静电相互作用比,DC-水凝胶的生物降解、压缩应力和能量耗散也得到了显著改善。因此,我们的研究为实现可原位改变细胞形态的 DC-水凝胶提供了新的设计策略,并为疾病治疗的应用开辟了新途径。