Literature DB >> 30797003

Modulating smooth muscle cell response by the release of TGFβ2 from tubular scaffolds for vascular tissue engineering.

D C Ardila1, E Tamimi1, T Doetschman2, W R Wagner3, J P Vande Geest4.   

Abstract

Tissue engineering has gained considerable attention in the development of small diameter tissue engineered vascular grafts (TEVGs) for treating coronary heart disease. A properly designed acellular and biodegradable TEVG must encourage the infiltration and growth of vascular smooth muscle cells (SMCs). Our group has previously shown that increasing levels of TGFβ2 can differentially modulate SMC migration and proliferation. In this study, tubular electrospun scaffolds loaded with TGFβ2 were fabricated using various ratios of gelatin/polycaprolactone (PCL), resulting in scaffolds with porous nano-woven architecture suitable for tissue ingrowth. Scaffold morphology, degradation rate, TGβ2 release kinetics, and bioactivity were assessed. TGFβ2 was successfully integrated into the electrospun biomaterial that resulted in a differential release profile depending on the gelatin/PCL ratio over the course of 42 days. Higher TGFβ2 elution was obtained in scaffolds with higher gelatin content, which may be related to the biodegradation of gelatin in culture media. The biological activity of the released TGFβ2 was evaluated by its ability to affect SMC proliferation as a function of its concentration. SMCs seeded on TGFβ2-loaded scaffolds also showed higher densities and infiltration after 5 days in culture as compared to scaffolds without TGFβ2. Our results demonstrate that the ratio of synthetic and natural polymers in electrospun blends can be used to tune the release of TGFβ2. This method can be used to intelligently modulate the SMC response in gelatin/PCL scaffolds making the TGFβ2-loaded conduits attractive for cardiovascular tissue engineering applications.
Copyright © 2019 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Electrospinning; Gelatin; Polycaprolactone; Smooth muscle cells; TGFβ2 release; Vascular tissue engineering

Mesh:

Substances:

Year:  2019        PMID: 30797003      PMCID: PMC6430660          DOI: 10.1016/j.jconrel.2019.02.024

Source DB:  PubMed          Journal:  J Control Release        ISSN: 0168-3659            Impact factor:   9.776


  37 in total

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2.  Progress in the field of electrospinning for tissue engineering applications.

Authors:  Seema Agarwal; Joachim H Wendorff; Andreas Greiner
Journal:  Adv Mater       Date:  2009-09-04       Impact factor: 30.849

3.  Tailoring the porosity and pore size of electrospun synthetic human elastin scaffolds for dermal tissue engineering.

Authors:  Jelena Rnjak-Kovacina; Steven G Wise; Zhe Li; Peter K M Maitz; Cara J Young; Yiwei Wang; Anthony S Weiss
Journal:  Biomaterials       Date:  2011-06-17       Impact factor: 12.479

4.  In vitro evaluation of the genotoxicity of a naturally occurring crosslinking agent (genipin) for biologic tissue fixation.

Authors:  C C Tsai; R N Huang; H W Sung; H C Liang
Journal:  J Biomed Mater Res       Date:  2000-10

5.  Tailored release of TGF-beta1 from porous scaffolds for cartilage tissue engineering.

Authors:  J Sohier; D Hamann; M Koenders; M Cucchiarini; H Madry; C van Blitterswijk; K de Groot; J M Bezemer
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Review 6.  Bioactive electrospun scaffolds delivering growth factors and genes for tissue engineering applications.

Authors:  Wei Ji; Yan Sun; Fang Yang; Jeroen J J P van den Beucken; Mingwen Fan; Zhi Chen; John A Jansen
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7.  Transforming growth factor Beta2 is required for valve remodeling during heart development.

Authors:  Mohamad Azhar; Kristen Brown; Connie Gard; Hwudaurw Chen; Sudarsan Rajan; David A Elliott; Mark V Stevens; Todd D Camenisch; Simon J Conway; Thomas Doetschman
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8.  Electrospinning of gelatin fibers and gelatin/PCL composite fibrous scaffolds.

Authors:  Yanzhong Zhang; Hongwei Ouyang; Chwee Teck Lim; Seeram Ramakrishna; Zheng-Ming Huang
Journal:  J Biomed Mater Res B Appl Biomater       Date:  2005-01-15       Impact factor: 3.368

9.  Three-dimensional electrospun ECM-based hybrid scaffolds for cardiovascular tissue engineering.

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10.  In vivo assessment of a tissue-engineered vascular graft combining a biodegradable elastomeric scaffold and muscle-derived stem cells in a rat model.

Authors:  Alejandro Nieponice; Lorenzo Soletti; Jianjun Guan; Yi Hong; Burhan Gharaibeh; Timothy M Maul; Johnny Huard; William R Wagner; David A Vorp
Journal:  Tissue Eng Part A       Date:  2010-04       Impact factor: 3.845

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Authors:  Jamie L Hernandez; Kim A Woodrow
Journal:  Adv Healthc Mater       Date:  2022-02-19       Impact factor: 11.092

2.  Acute Elution of TGFβ2 Affects the Smooth Muscle Cells in a Compliance-Matched Vascular Graft.

Authors:  Kenneth J Furdella; Shinichi Higuchi; Kang Kim; Tom Doetschman; William R Wagner; Jonathan P Vande Geest
Journal:  Tissue Eng Part A       Date:  2022-07       Impact factor: 4.080

Review 3.  Growth Factor Immobilization Strategies for Musculoskeletal Disorders.

Authors:  Joseph J Pearson; Johnna S Temenoff
Journal:  Curr Osteoporos Rep       Date:  2022-02-04       Impact factor: 5.096

4.  Electrospun fibre diameter and its effects on vascular smooth muscle cells.

Authors:  James Alexander Reid; Alison McDonald; Anthony Callanan
Journal:  J Mater Sci Mater Med       Date:  2021-10-09       Impact factor: 3.896

Review 5.  Engineering Smooth Muscle to Understand Extracellular Matrix Remodeling and Vascular Disease.

Authors:  Danielle Yarbrough; Sharon Gerecht
Journal:  Bioengineering (Basel)       Date:  2022-09-07

6.  A multilayered scaffold for regeneration of smooth muscle and connective tissue layers.

Authors:  Carly M Garrison; Anya Singh-Varma; Alexandra K Pastino; Joseph A M Steele; Joachim Kohn; N Sanjeeva Murthy; Jean E Schwarzbauer
Journal:  J Biomed Mater Res A       Date:  2020-08-14       Impact factor: 4.854

  6 in total

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