Suppr超能文献

肽功能化星形 PEG/肝素水凝胶在体外和体内调节有丝分裂活性、细胞形态和软骨基质分布。

Peptide-functionalized starPEG/heparin hydrogels direct mitogenicity, cell morphology and cartilage matrix distribution in vitro and in vivo.

机构信息

Research Centre for Experimental Orthopaedics, Orthopaedic University Hospital Heidelberg, Germany.

Leibniz Institute of Polymer Research Dresden (IPF), Max Bergmann Centre of Biomaterials Dresden (MBC), Dresden University of Technology, Centre for Regenerative Therapies Dresden (CRTD), Germany.

出版信息

J Tissue Eng Regen Med. 2018 Jan;12(1):229-239. doi: 10.1002/term.2404. Epub 2017 Jun 4.

Abstract

Cell-based tissue engineering is a promising approach for treating cartilage lesions, but available strategies still provide a distinct composition of the extracellular matrix and an inferior mechanical property compared to native cartilage. To achieve fully functional tissue replacement more rationally designed biomaterials may be needed, introducing bioactive molecules which modulate cell behavior and guide tissue regeneration. This study aimed at exploring the impact of cell-instructive, adhesion-binding (GCWGGRGDSP called RGD) and collagen-binding (CKLER/CWYRGRL) peptides, incorporated in a tunable, matrixmetalloprotease (MMP)-responsive multi-arm poly(ethylene glycol) (starPEG)/heparin hydrogel on cartilage regeneration parameters in vitro and in vivo. MMP-responsive-starPEG-conjugates with cysteine termini and heparin-maleimide, optionally pre-functionalized with RGD, CKLER, CWYRGRL or control peptides, were cross-linked by Michael type addition to embed and grow mesenchymal stromal cells (MSC) or chondrocytes. While starPEG/heparin-hydrogel strongly supported chondrogenesis of MSC according to COL2A1, BGN and ACAN induction, MMP-degradability enhanced cell viability and proliferation. RGD-modification of the gels promoted cell spreading with intense cell network formation without negative effects on chondrogenesis. However, CKLER and CWYRGRL were unable to enhance the collagen content of constructs. RGD-modification allowed more even collagen type II distribution by chondrocytes throughout the MMP-responsive constructs, especially in vivo. Collectively, peptide-instruction via heparin-enriched MMP-degradable starPEG allowed adjustment of self-renewal, cell morphology and cartilage matrix distribution in order to guide MSC and chondrocyte-based cartilage regeneration towards an improved outcome. Copyright © 2017 John Wiley & Sons, Ltd.

摘要

基于细胞的组织工程是治疗软骨损伤的一种很有前途的方法,但现有的策略仍然提供了一种明显不同于细胞外基质的组成和较差的机械性能与天然软骨。为了更合理地实现完全功能性的组织替代,可能需要引入生物活性分子来调节细胞行为并指导组织再生。本研究旨在探索细胞指令性、黏附结合(GCWGGRGDSP 称为 RGD)和胶原结合(CKLER/CWYRGRL)肽的影响,这些肽被整合到一种可调谐的、基质金属蛋白酶(MMP)响应性多臂聚乙二醇(starPEG)/肝素水凝胶中,以研究其对体外和体内软骨再生参数的影响。具有半胱氨酸末端和肝素马来酰亚胺的 MMP 响应性-starPEG 缀合物,可选择地用 RGD、CKLER、CWYRGRL 或对照肽进行预功能化,通过迈克尔型加成交联,以嵌入和生长间充质基质细胞(MSC)或软骨细胞。虽然 starPEG/肝素水凝胶强烈支持 MSC 的软骨生成,根据 COL2A1、BGN 和 ACAN 的诱导,但 MMP 降解性增强了细胞活力和增殖。凝胶的 RGD 修饰促进了细胞的扩展,形成了密集的细胞网络,而对软骨生成没有负面影响。然而,CKLER 和 CWYRGRL 都不能提高构建物的胶原蛋白含量。RGD 修饰允许通过软骨细胞在 MMP 响应构建物中更均匀地分布 II 型胶原蛋白,特别是在体内。总之,通过富含肝素的 MMP 可降解 starPEG 进行肽指令,可以调整自我更新、细胞形态和软骨基质分布,以指导 MSC 和软骨细胞为基础的软骨再生,以获得更好的结果。版权所有©2017 约翰威立父子公司

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验