Optimization of polycaprolactone fibrous scaffold for heart valve tissue engineering

IF 3.9 3区 医学 Q2 ENGINEERING, BIOMEDICAL Biomedical materials Pub Date : 2019-10-08 DOI:10.1088/1748-605X/ab3d24
S. Jana, Amrita Bhagia, A. Lerman
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引用次数: 21

Abstract

Pore size is generally small in nanofibrous scaffolds prepared by electrospinning polymeric solutions. Increase of scaffold thickness leads to decrease in pore size, causing impediment to cell infiltration into the scaffolds during tissue engineering. In contrast, comparatively larger pore size can be realized in microfibrous scaffolds prepared from polymeric solutions at higher concentrations. Further, microfibrous scaffolds are conducive to infiltration of reparative M2 phenotype macrophages during in vivo/in situ tissue engineering. However, rise of mechanical properties of a fibrous scaffold with the increase of polymer concentration may limit the functionality of a scaffold-based, tissue-engineered heart valve. In this study, we developed microfibrous scaffolds from 14%, 16% and 18% (wt/v) polycaprolactone (PCL) polymer solutions prepared with chloroform solvent. Porcine valvular interstitial cells were cultured in the scaffolds for 14 d to investigate the effect of microfibers prepared with different PCL concentrations on the seeded cells. Further, fresh microfibrous scaffolds were implanted subcutaneously in a rat model for two months to investigate the effect of microfibers on infiltrated cells. Cell proliferation, and its morphologies, gene expression and deposition of different extracellular matrix proteins in the in vitro study were characterized. During the in vivo study, we characterized cell infiltration, and myofibroblast and M1/M2 phenotypes expression of the infiltrated cells. Among different PCL concentrations, microfibrous scaffolds from 14% solution were suitable for heart valve tissue engineering for their sufficient pore size and low but adequate tensile properties, which promoted cell adhesion to and proliferation in the scaffolds, and effective gene expression and extracellular matrix deposition by the cells in vitro. They also encouraged the cells in vivo for their infiltration and effective gene expression, including M2 phenotype expression.
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用于心脏瓣膜组织工程的聚己内酯纤维支架的优化
静电纺丝聚合物溶液制备的纳米纤维支架的孔径一般较小。在组织工程中,支架厚度的增加导致孔径的减小,阻碍细胞向支架的浸润。相比之下,由较高浓度的聚合物溶液制备的微纤维支架可以实现相对较大的孔径。此外,在体内/原位组织工程中,微纤维支架有利于修复性M2表型巨噬细胞的浸润。然而,随着聚合物浓度的增加,纤维支架的机械性能的提高可能会限制基于支架的组织工程心脏瓣膜的功能。在这项研究中,我们用氯仿溶剂制备了14%、16%和18% (wt/v)的聚己内酯(PCL)聚合物溶液,制备了微纤维支架。将猪瓣膜间质细胞在支架中培养14 d,研究不同浓度PCL制备的微纤维对种子细胞的影响。在大鼠模型皮下植入新鲜微纤维支架2个月,观察微纤维对浸润细胞的影响。对体外研究中不同细胞外基质蛋白的细胞增殖、形态、基因表达和沉积进行了表征。在体内研究中,我们表征了细胞浸润,以及浸润细胞的肌成纤维细胞和M1/M2表型表达。在不同PCL浓度下,14%溶液微纤维支架具有足够的孔径和较低但足够的拉伸性能,可促进细胞在支架内的粘附和增殖,促进细胞在体外有效的基因表达和细胞外基质沉积,适合于心脏瓣膜组织工程。他们还鼓励细胞在体内浸润和有效的基因表达,包括M2表型表达。
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来源期刊
Biomedical materials
Biomedical materials 工程技术-材料科学:生物材料
CiteScore
6.70
自引率
7.50%
发文量
294
审稿时长
3 months
期刊介绍: The goal of the journal is to publish original research findings and critical reviews that contribute to our knowledge about the composition, properties, and performance of materials for all applications relevant to human healthcare. Typical areas of interest include (but are not limited to): -Synthesis/characterization of biomedical materials- Nature-inspired synthesis/biomineralization of biomedical materials- In vitro/in vivo performance of biomedical materials- Biofabrication technologies/applications: 3D bioprinting, bioink development, bioassembly & biopatterning- Microfluidic systems (including disease models): fabrication, testing & translational applications- Tissue engineering/regenerative medicine- Interaction of molecules/cells with materials- Effects of biomaterials on stem cell behaviour- Growth factors/genes/cells incorporated into biomedical materials- Biophysical cues/biocompatibility pathways in biomedical materials performance- Clinical applications of biomedical materials for cell therapies in disease (cancer etc)- Nanomedicine, nanotoxicology and nanopathology- Pharmacokinetic considerations in drug delivery systems- Risks of contrast media in imaging systems- Biosafety aspects of gene delivery agents- Preclinical and clinical performance of implantable biomedical materials- Translational and regulatory matters
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