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Microspheres of Carboxymethyl Chitosan, Sodium Alginate, and Collagen as a Hemostatic Agent in Vivo.羧甲基壳聚糖、海藻酸钠和胶原蛋白微球作为体内止血剂的研究
ACS Biomater Sci Eng. 2018 Jul 9;4(7):2541-2551. doi: 10.1021/acsbiomaterials.8b00453. Epub 2018 Jun 20.
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Degradation, Intra-Articular Biocompatibility, Drug Release, and Bioactivity of Tacrolimus-Loaded Poly(d-l-lactide-PEG)--poly(l-lactide) Multiblock Copolymer-Based Monospheres.负载他克莫司的聚(d-丙交酯-聚乙二醇)-聚(l-丙交酯)多嵌段共聚物基单球体的降解、关节内生物相容性、药物释放及生物活性
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Encapsulation of Biological Agents in Hydrogels for Therapeutic Applications.用于治疗应用的水凝胶中生物制剂的包封
Gels. 2018 Jul 11;4(3):61. doi: 10.3390/gels4030061.
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Jammed Microgel Inks for 3D Printing Applications.用于3D打印应用的堵塞微凝胶墨水。
Adv Sci (Weinh). 2018 Oct 24;6(1):1801076. doi: 10.1002/advs.201801076. eCollection 2019 Jan 9.
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Silk fibroin micro-particle scaffolds with superior compression modulus and slow bioresorption for effective bone regeneration.具有优异压缩模量和缓慢生物吸收的丝素微颗粒支架,可有效促进骨再生。
Sci Rep. 2018 May 8;8(1):7235. doi: 10.1038/s41598-018-25643-x.
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Assembly of PEG Microgels into Porous Cell-Instructive 3D Scaffolds via Thiol-Ene Click Chemistry.通过巯基-烯点击化学将 PEG 微凝胶组装成多孔的细胞指导性 3D 支架。
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Harnessing macrophage-mediated degradation of gelatin microspheres for spatiotemporal control of BMP2 release.利用巨噬细胞介导的明胶微球降解实现 BMP2 释放的时空控制。
Biomaterials. 2018 Apr;161:216-227. doi: 10.1016/j.biomaterials.2018.01.040. Epub 2018 Feb 3.
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Microparticle-mediated sequestration of cell-secreted proteins to modulate chondrocytic differentiation.微粒介导的细胞分泌蛋白隔离以调节软骨细胞分化。
Acta Biomater. 2018 Mar 1;68:125-136. doi: 10.1016/j.actbio.2017.12.038. Epub 2017 Dec 30.
10
High-throughput double emulsion-based microfluidic production of hydrogel microspheres with tunable chemical functionalities toward biomolecular conjugation.基于高通量双重乳液的微流控法制备具有可调化学功能的水凝胶微球,用于生物分子偶联。
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微凝胶:用于组织再生的模块化、可调结构。

Microgels: Modular, tunable constructs for tissue regeneration.

机构信息

Chemical & Biological Engineering, Colorado School of Mines, Golden, CO, United States.

Orthopedics, University of Colorado Anschutz Medical Campus, Aurora, CO, United States.

出版信息

Acta Biomater. 2019 Apr 1;88:32-41. doi: 10.1016/j.actbio.2019.02.011. Epub 2019 Feb 12.

DOI:10.1016/j.actbio.2019.02.011
PMID:30769137
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6441611/
Abstract

Biopolymer microgels are emerging as a versatile tool for aiding in the regeneration of damaged tissues due to their biocompatible nature, tunable microporous structure, ability to encapsulate bioactive factors, and tailorable properties such as stiffness and composition. These properties of microgels, along with their injectability, have allowed for their utilization in a multitude of different tissue engineering applications. Controlled release of growth factors, antibodies, and other bioactive factors from microgels have demonstrated their capabilities as transporters for essential bioactive molecules necessary for guiding tissue reconstruction. Additionally, recent in vitro studies of cellular interaction and proliferation within microgel structures have laid the initial groundwork for regenerative tissue engineering using these materials. Microgels have even been crosslinked together in various ways or 3D printed to form three-dimensional scaffolds to support cell growth. In vivo studies of microgels have pioneered the clinical relevance of these novel and innovative materials for regenerative tissue engineering. This review will cover recent developments and research of microgels as they pertain to bioactive factor release, cellular interaction and proliferation in vitro, and tissue regeneration in vivo. STATEMENT OF SIGNIFICANCE: This review is focused on state-of-the-art microgel technology and innovations within the tissue engineering field, focusing on the use of microgels in bioactive factor delivery and as cell-interactive scaffolds, both in vitro and in vivo. Microgels are hydrogel microparticles that can be tuned based on the biopolymer from which they are derived, the crosslinking chemistry used, and the fabrication method. The emergence of microgels for tissue regeneration applications in recent years illuminates their versatility and applicability in clinical settings.

摘要

生物聚合物微凝胶作为一种多功能工具,由于其生物相容性、可调的微孔结构、封装生物活性因子的能力以及可定制的特性(如硬度和组成),正在帮助受损组织的再生。微凝胶的这些特性,以及其可注射性,使其能够应用于多种不同的组织工程应用。从微凝胶中控制生长因子、抗体和其他生物活性因子的释放,证明了它们作为必需生物活性分子载体的能力,这些分子对于指导组织重建是必不可少的。此外,最近关于细胞在微凝胶结构内相互作用和增殖的体外研究为使用这些材料进行再生组织工程奠定了基础。微凝胶已经以各种方式交联在一起或 3D 打印形成三维支架,以支持细胞生长。微凝胶的体内研究开创了这些新型创新材料在再生组织工程中的临床相关性。这篇综述将涵盖微凝胶作为生物活性因子释放、体外细胞相互作用和增殖以及体内组织再生方面的最新进展和研究。意义陈述:这篇综述重点介绍了组织工程领域的最先进的微凝胶技术和创新,重点介绍了微凝胶在生物活性因子传递和作为细胞相互作用支架方面的应用,包括体外和体内。微凝胶是水凝胶微颗粒,可以根据其来源的生物聚合物、使用的交联化学物质和制造方法进行调整。近年来,微凝胶在组织再生应用中的出现,突显了它们在临床环境中的多功能性和适用性。