Literature DB >> 22014462

Increasing the pore sizes of bone-mimetic electrospun scaffolds comprised of polycaprolactone, collagen I and hydroxyapatite to enhance cell infiltration.

Matthew C Phipps1, William C Clem, Jessica M Grunda, Gregory A Clines, Susan L Bellis.   

Abstract

Bone-mimetic electrospun scaffolds consisting of polycaprolactone (PCL), collagen I and nanoparticulate hydroxyapatite (HA) have previously been shown to support the adhesion, integrin-related signaling and proliferation of mesenchymal stem cells (MSCs), suggesting these matrices serve as promising degradable substrates for osteoregeneration. However, the small pore sizes in electrospun scaffolds hinder cell infiltration in vitro and tissue-ingrowth into the scaffold in vivo, limiting their clinical potential. In this study, three separate techniques were evaluated for their capability to increase the pore size of the PCL/col I/nanoHA scaffolds: limited protease digestion, decreasing the fiber packing density during electrospinning, and inclusion of sacrificial fibers of the water-soluble polymer PEO. The PEO sacrificial fiber approach was found to be the most effective in increasing scaffold pore size. Furthermore, the use of sacrificial fibers promoted increased MSC infiltration into the scaffolds, as well as greater infiltration of endogenous cells within bone upon placement of scaffolds within calvarial organ cultures. These collective findings support the use of sacrificial PEO fibers as a means to increase the porosity of complex, bone-mimicking electrospun scaffolds, thereby enhancing tissue regenerative processes that depend upon cell infiltration, such as vascularization and replacement of the scaffold with native bone tissue. Copyright Â
© 2011 Elsevier Ltd. All rights reserved.

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Year:  2011        PMID: 22014462      PMCID: PMC3381740          DOI: 10.1016/j.biomaterials.2011.09.080

Source DB:  PubMed          Journal:  Biomaterials        ISSN: 0142-9612            Impact factor:   12.479


  49 in total

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4.  Assessing new bone formation in neonatal calvarial organ cultures.

Authors:  Khalid S Mohammad; John M Chirgwin; Theresa A Guise
Journal:  Methods Mol Biol       Date:  2008

5.  Highly porous electrospun nanofibers enhanced by ultrasonication for improved cellular infiltration.

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7.  Controlling the porosity of fibrous scaffolds by modulating the fiber diameter and packing density.

Authors:  Sherif Soliman; Shilpa Sant; Jason W Nichol; Masoud Khabiry; Enrico Traversa; Ali Khademhosseini
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8.  Cell infiltration and growth in a low density, uncompressed three-dimensional electrospun nanofibrous scaffold.

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10.  Nanofibrous membrane of collagen-polycaprolactone for cell growth and tissue regeneration.

Authors:  Jae-Jun Lee; Hye-Sun Yu; Seok-Jung Hong; Ishik Jeong; Jun-Hyeog Jang; Hae-Won Kim
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  50 in total

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Review 6.  Tissue-engineering-based strategies for regenerative endodontics.

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7.  Microporous dermal-like electrospun scaffolds promote accelerated skin regeneration.

Authors:  Paul P Bonvallet; Bonnie K Culpepper; Jennifer L Bain; Matthew J Schultz; Steven J Thomas; Susan L Bellis
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Review 8.  In pursuit of functional electrospun materials for clinical applications in humans.

Authors:  Ryan J Stoddard; Arielle L Steger; Anna K Blakney; Kim A Woodrow
Journal:  Ther Deliv       Date:  2016-06-02

9.  The improvement of cell infiltration in an electrospun scaffold with multiple synthetic biodegradable polymers using sacrificial PEO microparticles.

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10.  Winner of the Young Investigator Award of the Society for Biomaterials at the 10th World Biomaterials Congress, May 17-22, 2016, Montreal QC, Canada: Microribbon-based hydrogels accelerate stem cell-based bone regeneration in a mouse critical-size cranial defect model.

Authors:  Li-Hsin Han; Bogdan Conrad; Michael T Chung; Lorenzo Deveza; Xinyi Jiang; Andrew Wang; Manish J Butte; Michael T Longaker; Derrick Wan; Fan Yang
Journal:  J Biomed Mater Res A       Date:  2016-04-09       Impact factor: 4.396

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