Literature DB >> 35872663

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

Kaylie Sampson1, Songmi Koo1, Carter Gadola2, Anastasiia Vasiukhina1, Aditya Singh1, Alexandra Spartano1, Rachana Gollapudi1, Matthew Duley3, Jens Mueller4, Paul F James2, Amy M Yousefi1.   

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.

Entities:  

Keywords:  3D-plotting; COMSOL simulation; Phase separation; design of experiments; perfusion bioreactor

Year:  2021        PMID: 35872663      PMCID: PMC9307081          DOI: 10.1007/s42452-021-04871-3

Source DB:  PubMed          Journal:  SN Appl Sci        ISSN: 2523-3963


  33 in total

1.  Effects of designed PLLA and 50:50 PLGA scaffold architectures on bone formation in vivo.

Authors:  Eiji Saito; Elly E Liao; Wei-Wen Hu; Paul H Krebsbach; Scott J Hollister
Journal:  J Tissue Eng Regen Med       Date:  2011-12-09       Impact factor: 3.963

Review 2.  Scaffolds and biomaterials for tissue engineering: a review of clinical applications.

Authors:  A Vats; N S Tolley; J M Polak; J E Gough
Journal:  Clin Otolaryngol Allied Sci       Date:  2003-06

Review 3.  Can shear stress direct stem cell fate?

Authors:  Sarah Stolberg; Kara E McCloskey
Journal:  Biotechnol Prog       Date:  2009 Jan-Feb

Review 4.  Three-dimensional scaffolds for tissue engineering applications: role of porosity and pore size.

Authors:  Qiu Li Loh; Cleo Choong
Journal:  Tissue Eng Part B Rev       Date:  2013-06-25       Impact factor: 6.389

5.  Optimizing the medium perfusion rate in bone tissue engineering bioreactors.

Authors:  Warren L Grayson; Darja Marolt; Sarindr Bhumiratana; Mirjam Fröhlich; X Edward Guo; Gordana Vunjak-Novakovic
Journal:  Biotechnol Bioeng       Date:  2010-12-22       Impact factor: 4.530

Review 6.  Development, characterization and clinical use of a biodegradable composite scaffold for bone engineering in oro-maxillo-facial surgery.

Authors:  John E Davies; Rano Matta; Vanessa C Mendes; Paulo S Perri de Carvalho
Journal:  Organogenesis       Date:  2010 Jul-Sep       Impact factor: 2.500

Review 7.  Diabetes and Its Effect on Bone and Fracture Healing.

Authors:  Hongli Jiao; E Xiao; Dana T Graves
Journal:  Curr Osteoporos Rep       Date:  2015-10       Impact factor: 5.096

8.  I-Optimal Design of Hierarchical 3D Scaffolds Produced by Combining Additive Manufacturing and Thermally Induced Phase Separation.

Authors:  Azizeh-Mitra Yousefi; Junyi Liu; Riley Sheppard; Songmi Koo; Joshua Silverstein; Jing Zhang; Paul F James
Journal:  ACS Appl Bio Mater       Date:  2018-12-31

Review 9.  The role of perfusion bioreactors in bone tissue engineering.

Authors:  Diana Alves Gaspar; Viviane Gomide; Fernando Jorge Monteiro
Journal:  Biomatter       Date:  2012 Oct-Dec

Review 10.  An overview of poly(lactic-co-glycolic) acid (PLGA)-based biomaterials for bone tissue engineering.

Authors:  Piergiorgio Gentile; Valeria Chiono; Irene Carmagnola; Paul V Hatton
Journal:  Int J Mol Sci       Date:  2014-02-28       Impact factor: 5.923

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