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功能化制备用于再生医学应用的重组人胶原蛋白-磷酸胆碱水凝胶。

Functional fabrication of recombinant human collagen-phosphorylcholine hydrogels for regenerative medicine applications.

机构信息

Swedish Medical Nanoscience Center, Dept. of Neurosciences, Karolinska Institutet, S-17177 Stockholm, Sweden; Integrative Regenerative Medicine Centre, Dept. of Clinical and Experimental Medicine, Cell Biology Bldg. - Level 10, Linköping University, S-58185 Linköping, Sweden.

Dept. of Nanoengineering, Center for Physical Sciences and Technology, Savanorių 231, LT-02300 Vilnius, Lithuania.

出版信息

Acta Biomater. 2015 Jan;12:70-80. doi: 10.1016/j.actbio.2014.10.035. Epub 2014 Oct 31.

Abstract

The implant-host interface is a critical element in guiding tissue or organ regeneration. We previously developed hydrogels comprising interpenetrating networks of recombinant human collagen type III and 2-methacryloyloxyethyl phosphorylcholine (RHCIII-MPC) as substitutes for the corneal extracellular matrix that promote endogenous regeneration of corneal tissue. To render them functional for clinical application, we have now optimized their composition and thereby enhanced their mechanical properties. We have demonstrated that such optimized RHCIII-MPC hydrogels are suitable for precision femtosecond laser cutting to produce complementing implants and host surgical beds for subsequent tissue welding. This avoids the tissue damage and inflammation associated with manual surgical techniques, thereby leading to more efficient healing. Although we previously demonstrated in clinical testing that RHCIII-based implants stimulated cornea regeneration in patients, the rate of epithelial cell coverage of the implants needs improvement, e.g. modification of the implant surface. We now show that our 500μm thick RHCIII-MPC constructs comprising over 85% water are suitable for microcontact printing with fibronectin. The resulting fibronectin micropatterns promote cell adhesion, unlike the bare RHCIII-MPC hydrogel. Interestingly, a pattern of 30μm wide fibronectin stripes enhanced cell attachment and showed the highest mitotic rates, an effect that potentially can be utilized for faster integration of the implant. We have therefore shown that laboratory-produced mimics of naturally occurring collagen and phospholipids can be fabricated into robust hydrogels that can be laser profiled and patterned to enhance their potential function as artificial substitutes of donor human corneas.

摘要

植入物-宿主界面是指导组织或器官再生的关键因素。我们之前开发了由重组人胶原蛋白 III 型和 2-甲基丙烯酰氧乙基磷酸胆碱(RHCIII-MPC)互穿网络组成的水凝胶,作为角膜细胞外基质的替代品,促进角膜组织的内源性再生。为了使它们能够在临床应用中发挥作用,我们现在已经优化了它们的组成,从而增强了它们的机械性能。我们已经证明,这种优化的 RHCIII-MPC 水凝胶适用于精密飞秒激光切割,以制作互补的植入物和宿主手术床,用于随后的组织焊接。这避免了与手动手术技术相关的组织损伤和炎症,从而导致更有效的愈合。尽管我们之前在临床试验中证明,基于 RHCIII 的植入物刺激了患者的角膜再生,但植入物上皮细胞覆盖的速度需要提高,例如对植入物表面进行修饰。我们现在表明,我们的 500μm 厚的 RHCIII-MPC 构建体包含超过 85%的水,适合与纤连蛋白进行微接触印刷。与裸 RHCIII-MPC 水凝胶不同,由此产生的纤连蛋白微图案促进细胞黏附。有趣的是,30μm 宽的纤连蛋白条纹图案增强了细胞附着,并显示出最高的有丝分裂率,这种效应可能可用于更快地整合植入物。因此,我们已经表明,实验室生产的天然存在的胶原蛋白和磷脂的模拟物可以被制成坚固的水凝胶,可以进行激光轮廓和图案化,以增强它们作为供体人角膜人工替代品的潜在功能。

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