Literature DB >> 23312903

The support of bone marrow stromal cell differentiation by airbrushed nanofiber scaffolds.

Wojtek Tutak1, Sumona Sarkar, Sheng Lin-Gibson, Tanya M Farooque, Giri Jyotsnendu, Dongbo Wang, Joachim Kohn, Durgadas Bolikal, Carl G Simon.   

Abstract

Nanofiber scaffolds are effective for tissue engineering since they emulate the fibrous nanostructure of native extracellular matrix (ECM). Although electrospinning has been the most common approach for fabricating nanofiber scaffolds, airbrushing approaches have also been advanced for making nanofibers. For airbrushing, compressed gas is used to blow polymer solution through a small nozzle which shears the polymer solution into fibers. Our goals were 1) to assess the versatility of airbrushing, 2) to compare the properties of airbrushed and electrospun nanofiber scaffolds and 3) to test the ability of airbrushed nanofibers to support stem cell differentiation. The results demonstrated that airbrushing could produce nanofibers from a wide range of polymers and onto a wide range of targets. Airbrushing was safer, 10-fold faster, 100-fold less expensive to set-up and able to deposit nanofibers onto a broader range of targets than electrospinning. Airbrushing yielded nanofibers that formed loosely packed bundles of aligned nanofibers, while electrospinning produced un-aligned, single nanofibers that were tightly packed and highly entangled. Airbrushed nanofiber mats had larger pores, higher porosity and lower modulus than electrospun mats, results that were likely caused by the differences in morphology (nanofiber packing and entanglement). Airbrushed nanofiber scaffolds fabricated from 4 different polymers were each able to support osteogenic differentiation of primary human bone marrow stromal cells (hBMSCs). Finally, the differences in airbrushed versus electrospun nanofiber morphology caused differences in hBMSC shape where cells had a smaller spread area and a smaller volume on airbrushed nanofiber scaffolds. These results highlight the advantages and disadvantages of airbrushing versus electrospinning nanofiber scaffolds and demonstrate that airbrushed nanofiber scaffolds can support stem cell differentiation. Published by Elsevier Ltd.

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Year:  2013        PMID: 23312903     DOI: 10.1016/j.biomaterials.2012.12.020

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


  21 in total

1.  DiameterJ: A validated open source nanofiber diameter measurement tool.

Authors:  Nathan A Hotaling; Kapil Bharti; Haydn Kriel; Carl G Simon
Journal:  Biomaterials       Date:  2015-05-15       Impact factor: 12.479

2.  Nanofibers as Bioinstructive Scaffolds Capable of Modulating Differentiation through Mechanosensitive Pathways for Regenerative Engineering.

Authors:  Daniel T Bowers; Justin L Brown
Journal:  Regen Eng Transl Med       Date:  2018-07-31

3.  Airbrushed composite polymer Zr-ACP nanofiber scaffolds with improved cell penetration for bone tissue regeneration.

Authors:  Kathleen Hoffman; Drago Skrtic; Jirun Sun; Wojtek Tutak
Journal:  Tissue Eng Part C Methods       Date:  2014-10-07       Impact factor: 3.056

Review 4.  Nanofiber Scaffold-Based Tissue-Engineered Retinal Pigment Epithelium to Treat Degenerative Eye Diseases.

Authors:  Nathan A Hotaling; Vladimir Khristov; Qin Wan; Ruchi Sharma; Balendu Shekhar Jha; Mostafa Lotfi; Arvydas Maminishkis; Carl G Simon; Kapil Bharti
Journal:  J Ocul Pharmacol Ther       Date:  2016-04-25       Impact factor: 2.671

5.  Oriented Nanofibrous Polymer Scaffolds Containing Protein-Loaded Porous Silicon Generated by Spray Nebulization.

Authors:  Jonathan M Zuidema; Tushar Kumeria; Dokyoung Kim; Jinyoung Kang; Joanna Wang; Geoffrey Hollett; Xuan Zhang; David S Roberts; Nicole Chan; Cari Dowling; Elena Blanco-Suarez; Nicola J Allen; Mark H Tuszynski; Michael J Sailor
Journal:  Adv Mater       Date:  2018-01-24       Impact factor: 30.849

6.  Nebulized solvent ablation of aligned PLLA fibers for the study of neurite response to anisotropic-to-isotropic fiber/film transition (AFFT) boundaries in astrocyte-neuron co-cultures.

Authors:  Jonathan M Zuidema; Gregory P Desmond; Christopher J Rivet; Kathryn R Kearns; Deanna M Thompson; Ryan J Gilbert
Journal:  Biomaterials       Date:  2015-01-17       Impact factor: 12.479

7.  Blow-spun chitosan/PEG/PLGA nanofibers as a novel tissue engineering scaffold with antibacterial properties.

Authors:  Diane R Bienek; Kathleen M Hoffman; Wojtek Tutak
Journal:  J Mater Sci Mater Med       Date:  2016-08-27       Impact factor: 3.896

8.  Rapid fabrication of poly(DL-lactide) nanofiber scaffolds with tunable degradation for tissue engineering applications by air-brushing.

Authors:  Adam M Behrens; Jeffrey Kim; Nathan Hotaling; Jonathan E Seppala; Peter Kofinas; Wojtek Tutak
Journal:  Biomed Mater       Date:  2016-04-28       Impact factor: 3.715

9.  A Review of the Fundamental Principles and Applications of Solution Blow Spinning.

Authors:  John L Daristotle; Adam M Behrens; Anthony D Sandler; Peter Kofinas
Journal:  ACS Appl Mater Interfaces       Date:  2016-12-14       Impact factor: 9.229

10.  Biodegradable-Polymer-Blend-Based Surgical Sealant with Body-Temperature-Mediated Adhesion.

Authors:  Adam M Behrens; Nora G Lee; Brendan J Casey; Priya Srinivasan; Michael J Sikorski; John L Daristotle; Anthony D Sandler; Peter Kofinas
Journal:  Adv Mater       Date:  2015-11-10       Impact factor: 30.849

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