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在灌注生物反应器内培养分层3D支架:支架设计与流体流动的有限元分析

Cultivation of hierarchical 3D scaffolds inside a perfusion bioreactor: scaffold design and finite-element analysis of fluid flow.

作者信息

Sampson Kaylie, Koo Songmi, Gadola Carter, Vasiukhina Anastasiia, Singh Aditya, Spartano Alexandra, Gollapudi Rachana, Duley Matthew, Mueller Jens, James Paul F, Yousefi Amy M

机构信息

Department of Chemical, Paper and Biomedical Engineering, Miami University, Oxford, OH 45056.

Department of Biology, Miami University, Oxford, OH 45056.

出版信息

SN Appl Sci. 2021 Dec;3(12). doi: 10.1007/s42452-021-04871-3. Epub 2021 Nov 24.

Abstract

The use of porous 3D scaffolds for the repair of bone nonunion and osteoporotic bone is currently an area of great interest. Using a combination of thermally-induced phase separation (TIPS) and 3D-plotting (3DP), we have generated hierarchical 3DP/TIPS scaffolds made of poly(lactic-co-glycolic acid) (PLGA) and nanohydroxyapatite (nHA). A full factorial design of experiments was conducted, in which the PLGA and nHA compositions were varied between 6-12% w/v and 10-40% w/w, respectively, totaling 16 scaffold formulations with an overall porosity ranging between 87%-93%. These formulations included an optimal scaffold design identified in our previous study. The internal structures of the scaffolds were examined using scanning electron microscopy and microcomputed tomography. Our optimal scaffold was seeded with MC3T3-E1 murine preosteoblastic cells and subjected to cell culture inside a tissue culture dish and a perfusion bioreactor. The results were compared to those of a commercial CellCeram™ scaffold with a composition of 40% β-tricalcium phosphate and 60% hydroxyapatite (β-TCP/HA). Media flow within the macrochannels of 3DP/TIPS scaffolds was modeled in COMSOL software in order to fine tune the wall shear stress. CyQUANT DNA assay was performed to assess cell proliferation. The normalized number of cells for the optimal scaffold was more than twofold that of CellCeram™ scaffold after two weeks of culture inside the bioreactor. Despite the substantial variability in the results, the observed improvement in cell proliferation upon culture inside the perfusion bioreactor (vs. static culture) demonstrated the role of macrochannels in making the 3DP/TIPS scaffolds a promising candidate for scaffold-based tissue engineering.

摘要

使用多孔3D支架修复骨不连和骨质疏松性骨目前是一个备受关注的领域。通过热致相分离(TIPS)和3D打印(3DP)相结合的方法,我们制备了由聚乳酸-乙醇酸共聚物(PLGA)和纳米羟基磷灰石(nHA)制成的分级3DP/TIPS支架。进行了全因子实验设计,其中PLGA和nHA的组成分别在6-12% w/v和10-40% w/w之间变化,总共16种支架配方,总体孔隙率在87%-93%之间。这些配方包括我们之前研究中确定的最佳支架设计。使用扫描电子显微镜和微型计算机断层扫描检查支架的内部结构。我们的最佳支架接种了MC3T3-E1小鼠前成骨细胞,并在组织培养皿和灌注生物反应器中进行细胞培养。将结果与商业CellCeram™支架(由40%β-磷酸三钙和60%羟基磷灰石组成,即β-TCP/HA)的结果进行比较。在COMSOL软件中对3DP/TIPS支架宏观通道内的介质流动进行建模,以微调壁面剪应力。进行CyQUANT DNA测定以评估细胞增殖。在生物反应器中培养两周后,最佳支架的归一化细胞数量是CellCeram™支架的两倍多。尽管结果存在很大差异,但在灌注生物反应器中培养时观察到的细胞增殖改善(与静态培养相比)证明了宏观通道在使3DP/TIPS支架成为基于支架的组织工程有前途的候选材料方面的作用。

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Clinical Applications of Bone Tissue Engineering in Orthopedic Trauma.骨组织工程在骨科创伤中的临床应用
Curr Pathobiol Rep. 2018 Jun;6(2):99-108. doi: 10.1007/s40139-018-0166-x. Epub 2018 Apr 19.

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