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用于牙科潜在应用的大孔聚合物支架设计进展。

Advances in the design of macroporous polymer scaffolds for potential applications in dentistry.

作者信息

Bencherif Sidi A, Braschler Thomas M, Renaud Philippe

机构信息

School of Engineering and Applied Sciences, Harvard University, Cambridge, MA, USA. ; Wyss Institute for Biologically Inspired Engineering at Harvard University, Boston, MA, USA.

School of Engineering and Applied Sciences, Harvard University, Cambridge, MA, USA. ; Laboratory of Microsystems, STI-LMIS4, École Polytechnique Fédérale de Lausanne (EPFL), Lausanne, Switzerland.

出版信息

J Periodontal Implant Sci. 2013 Dec;43(6):251-61. doi: 10.5051/jpis.2013.43.6.251. Epub 2013 Dec 31.

Abstract

A paradigm shift is taking place in medicine and dentistry from using synthetic implants and tissue grafts to a tissue engineering approach that uses degradable porous three-dimensional (3D) material hydrogels integrated with cells and bioactive factors to regenerate tissues such as dental bone and other oral tissues. Hydrogels have been established as a biomaterial of choice for many years, as they offer diverse properties that make them ideal in regenerative medicine, including dental applications. Being highly biocompatible and similar to native extracellular matrix, hydrogels have emerged as ideal candidates in the design of 3D scaffolds for tissue regeneration and drug delivery applications. However, precise control over hydrogel properties, such as porosity, pore size, and pore interconnectivity, remains a challenge. Traditional techniques for creating conventional crosslinked polymers have demonstrated limited success in the formation of hydrogels with large pore size, thus limiting cellular infiltration, tissue ingrowth, vascularization, and matrix mineralization (in the case of bone) of tissue-engineered constructs. Emerging technologies have demonstrated the ability to control microarchitectural features in hydrogels such as the creation of large pore size, porosity, and pore interconnectivity, thus allowing the creation of engineered hydrogel scaffolds with a structure and function closely mimicking native tissues. In this review, we explore the various technologies available for the preparation of macroporous scaffolds and their potential applications.

摘要

医学和牙科学正在发生范式转变,从使用合成植入物和组织移植物转向组织工程方法,该方法使用与细胞和生物活性因子整合的可降解多孔三维(3D)材料水凝胶来再生诸如牙骨和其他口腔组织等组织。多年来,水凝胶已被确立为一种首选生物材料,因为它们具有多种特性,使其在再生医学(包括牙科应用)中非常理想。由于具有高度生物相容性且与天然细胞外基质相似,水凝胶已成为用于组织再生和药物递送应用的3D支架设计中的理想候选材料。然而,精确控制水凝胶的特性,如孔隙率、孔径和孔隙连通性,仍然是一个挑战。用于制备传统交联聚合物的传统技术在形成具有大孔径的水凝胶方面取得的成功有限,从而限制了组织工程构建体的细胞浸润、组织向内生长、血管化和基质矿化(在骨的情况下)。新兴技术已证明有能力控制水凝胶中的微观结构特征,如创建大孔径、孔隙率和孔隙连通性,从而能够创建结构和功能与天然组织紧密相似的工程水凝胶支架。在这篇综述中,我们探讨了可用于制备大孔支架的各种技术及其潜在应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8cfe/3891856/374aecbcfbfd/jpis-43-251-g001.jpg

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