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通过软骨内成骨增强骨组织工程,从人骨髓间充质干细胞聚集体内包裹的微粒中进行可控双生长因子递送。

Controlled Dual Growth Factor Delivery From Microparticles Incorporated Within Human Bone Marrow-Derived Mesenchymal Stem Cell Aggregates for Enhanced Bone Tissue Engineering via Endochondral Ossification.

作者信息

Dang Phuong N, Dwivedi Neha, Phillips Lauren M, Yu Xiaohua, Herberg Samuel, Bowerman Caitlin, Solorio Loran D, Murphy William L, Alsberg Eben

机构信息

Department of Biomedical Engineering, Case Western Reserve University, Cleveland, Ohio, USA.

Department of Biomedical Engineering, University of Wisconsin, Madison, Wisconsin, USA.

出版信息

Stem Cells Transl Med. 2016 Feb;5(2):206-17. doi: 10.5966/sctm.2015-0115. Epub 2015 Dec 23.

Abstract

Bone tissue engineering via endochondral ossification has been explored by chondrogenically priming cells using soluble mediators for at least 3 weeks to produce a hypertrophic cartilage template. Although recapitulation of endochondral ossification has been achieved, long-term in vitro culture is required for priming cells through repeated supplementation of inductive factors in the media. To address this challenge, a microparticle-based growth factor delivery system was engineered to drive endochondral ossification within human bone marrow-derived mesenchymal stem cell (hMSC) aggregates. Sequential exogenous presentation of soluble transforming growth factor-β1 (TGF-β1) and bone morphogenetic protein-2 (BMP-2) at various defined time courses resulted in varying degrees of chondrogenesis and osteogenesis as demonstrated by glycosaminoglycan and calcium content. The time course that best induced endochondral ossification was used to guide the development of the microparticle-based controlled delivery system for TGF-β1 and BMP-2. Gelatin microparticles capable of relatively rapid release of TGF-β1 and mineral-coated hydroxyapatite microparticles permitting more sustained release of BMP-2 were then incorporated within hMSC aggregates and cultured for 5 weeks following the predetermined time course for sequential presentation of bioactive signals. Compared with cell-only aggregates treated with exogenous growth factors, aggregates with incorporated TGF-β1- and BMP-2-loaded microparticles exhibited enhanced chondrogenesis and alkaline phosphatase activity at week 2 and a greater degree of mineralization by week 5. Staining for types I and II collagen, osteopontin, and osteocalcin revealed the presence of cartilage and bone. This microparticle-incorporated system has potential as a readily implantable therapy for healing bone defects without the need for long-term in vitro chondrogenic priming. Significance: This study demonstrates the regulation of chondrogenesis and osteogenesis with regard to endochondral bone formation in high-density stem cell systems through the controlled presentation of inductive factors from incorporated microparticles. This work lays the foundation for a rapidly implantable tissue engineering system that promotes bone repair via endochondral ossification, a pathway that can delay the need for a functional vascular network and has an intrinsic ability to promote angiogenesis. The modular nature of this system lends well to using different cell types and/or growth factors to induce endochondral bone formation, as well as the production of other tissue types.

摘要

通过软骨内成骨进行骨组织工程已被探索,即使用可溶性介质对细胞进行软骨诱导预处理至少3周,以产生肥大软骨模板。尽管已经实现了软骨内成骨的重现,但需要通过在培养基中反复补充诱导因子对细胞进行长期体外培养。为应对这一挑战,设计了一种基于微粒的生长因子递送系统,以驱动人骨髓间充质干细胞(hMSC)聚集体内的软骨内成骨。在不同的特定时间过程中依次外源性给予可溶性转化生长因子-β1(TGF-β1)和骨形态发生蛋白-2(BMP-2),如糖胺聚糖和钙含量所示,导致了不同程度的软骨生成和骨生成。诱导软骨内成骨效果最佳的时间过程被用于指导基于微粒的TGF-β1和BMP-2控释系统的开发。然后将能够相对快速释放TGF-β1的明胶微粒和允许BMP-2更持续释放的矿物涂层羟基磷灰石微粒纳入hMSC聚集体,并按照预定的时间过程培养5周,以依次呈现生物活性信号。与用外源性生长因子处理的仅含细胞的聚集体相比,含有负载TGF-β1和BMP-2微粒的聚集体在第2周表现出增强的软骨生成和碱性磷酸酶活性,到第5周矿化程度更高。I型和II型胶原蛋白、骨桥蛋白和骨钙素的染色显示存在软骨和骨。这种包含微粒的系统有潜力作为一种易于植入的疗法来修复骨缺损,而无需长期体外软骨诱导预处理。意义:本研究通过从包含的微粒中可控地呈现诱导因子,证明了在高密度干细胞系统中软骨内骨形成过程中软骨生成和骨生成的调控。这项工作为一种快速可植入的组织工程系统奠定了基础,该系统通过软骨内成骨促进骨修复,这一途径可以延迟对功能性血管网络的需求,并且具有促进血管生成的内在能力。该系统的模块化性质非常适合使用不同的细胞类型和/或生长因子来诱导软骨内骨形成,以及生产其他组织类型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2d7d/4729553/35026e77097e/sctm_20150115_f1.jpg

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