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Tailoring the morphology of emulsion-templated porous polymers.定制乳液模板法制备的多孔聚合物的形态
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4
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Synthesis and characterization of an injectable allograft bone/polymer composite bone void filler with tunable mechanical properties.可注射同种异体骨/聚合物复合材料骨腔填充物的合成与表征,具有可调节的机械性能。
Tissue Eng Part A. 2010 Aug;16(8):2505-18. doi: 10.1089/ten.TEA.2009.0672.
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Biodegradable fumarate-based polyHIPEs as tissue engineering scaffolds.基于富马酸酯的可生物降解多孔高内相乳液作为组织工程支架
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Combination of platelet-rich plasma with polycaprolactone-tricalcium phosphate scaffolds for segmental bone defect repair.富含血小板血浆与聚己内酯-磷酸三钙支架联合用于节段性骨缺损修复。
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9
Tailoring the porosity and morphology of gelatin-methacrylate polyHIPE scaffolds for tissue engineering applications.定制用于组织工程应用的明胶-甲基丙烯酸酯聚高内相乳液支架的孔隙率和形态。
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Synthesis, material properties, and biocompatibility of a novel self-cross-linkable poly(caprolactone fumarate) as an injectable tissue engineering scaffold.一种新型可自交联聚(富马酸己内酯)作为可注射组织工程支架的合成、材料性能及生物相容性
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在用于骨组织工程的可注射多孔高内相乳液中实现相互连接的孔隙结构。

Achieving interconnected pore architecture in injectable PolyHIPEs for bone tissue engineering.

作者信息

Robinson Jennifer L, Moglia Robert S, Stuebben Melissa C, McEnery Madison A P, Cosgriff-Hernandez Elizabeth

机构信息

Department of Biomedical Engineering, Texas A&M University , College Station, Texas.

出版信息

Tissue Eng Part A. 2014 Mar;20(5-6):1103-12. doi: 10.1089/ten.TEA.2013.0319. Epub 2014 Jan 29.

DOI:10.1089/ten.TEA.2013.0319
PMID:24124758
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3938937/
Abstract

Template polymerization of a high internal phase emulsion (polyHIPE) is a relatively new method to produce tunable high-porosity scaffolds for tissue regeneration. This study focuses on the development of biodegradable injectable polyHIPEs with interconnected porosity that have the potential to fill bone defects and enhance healing. Our laboratory previously fabricated biodegradable polyHIPEs that cure in situ upon injection; however, these scaffolds possessed a closed-pore morphology, which could limit bone ingrowth. To address this issue, HIPEs were fabricated with a radical initiator dissolved in the organic phase rather than the aqueous phase of the emulsion. Organic-phase initiation resulted in macromer densification forces that facilitated pore opening during cure. Compressive modulus and strength of the polyHIPEs were found to increase over 2 weeks to 43±12 MPa and 3±0.2 MPa, respectively, properties comparable to cancellous bone. The viscosity of the HIPE before cure (11.0±2.3 Pa·s) allowed for injection and filling of the bone defect, retention at the defect site during cure under water, and microscale integration of the graft with the bone. Precuring the materials before injection allowed for tuning of the work and set times. Furthermore, storage of the HIPEs before cure for 1 week at 4°C had a negligible effect on pore architecture after injection and cure. These findings indicate the potential of these emulsions to be stored at reduced temperatures and thawed in the surgical suite before injection. Overall, this work highlights the potential of interconnected propylene fumarate dimethacrylate polyHIPEs as injectable scaffolds for bone tissue engineering.

摘要

高内相乳液(聚HIPE)的模板聚合是一种相对较新的方法,用于生产用于组织再生的可调高孔隙率支架。本研究重点关注具有相互连通孔隙率的可生物降解注射型聚HIPE的开发,这些聚HIPE有潜力填充骨缺损并促进愈合。我们实验室之前制备了可生物降解的聚HIPE,其在注射后原位固化;然而,这些支架具有闭孔形态,这可能会限制骨长入。为了解决这个问题,制备了将自由基引发剂溶解在乳液的有机相而非水相中的HIPE。有机相引发产生了大分子单体致密化力,有助于在固化过程中打开孔隙。发现聚HIPE的压缩模量和强度在2周内分别增加到43±12 MPa和3±0.2 MPa,这些性能与松质骨相当。固化前HIPE的粘度(11.0±2.3 Pa·s)允许注射并填充骨缺损,在水下固化期间保留在缺损部位,并使移植物与骨在微观尺度上整合。在注射前对材料进行预固化可以调整工作时间和凝固时间。此外,在4°C下将HIPE在固化前储存1周,对注射和固化后的孔隙结构影响可忽略不计。这些发现表明这些乳液有潜力在低温下储存,并在手术室内注射前解冻。总体而言,这项工作突出了相互连通的二甲基丙烯酸富马酸丙酯聚HIPE作为骨组织工程注射型支架的潜力。