Literature DB >> 25469315

Peptide-modified zwitterionic porous hydrogels for endothelial cell and vascular engineering.

Chih-Yeh Lin1, Yi-Ren Wang1, Che-Wei Lin1, Shih-Wen Wang1, Hsiu-Wen Chien1, Nai-Chen Cheng1, Wei-Bor Tsai1, Jiashing Yu1.   

Abstract

Hydrogels allow control of gel composition and mechanics, and permit incorporation of cells and a wide variety of molecules from nanoparticles to micromolecules. Peptide-linked hydrogels should tune the basic polymer into a more bioactive template to influence cellular activities. In this study, we first introduced the generation of 2D poly-(sulfobetaine methacrylate [SBMA]) hydrogel surfaces. By incorporating with functional peptide RGD and vascular endothelial growth factor-mimicking peptide KLTWQELYQLKYKG (QK) peptides, endothelial cells attached to the surface well and proliferated in a short-term culturing. However, the mechanical property, which plays a crucial role directing the cellular functions and supporting the structures, decreased when peptides graft onto hydrogels. Manipulating the mechanical property was thus necessary, and the most related factor was the monomer concentration. From our results, the higher amount of SBMA caused greater stiffness in hydrogels. Following the 2D surface studies, we fabricated 3D porous hydrogels for cell scaffolds by several methods. The salt/particle leaching method showed a more reliable way than gas-foaming method to fabricate homogeneous and open-interconnected pores within the hydrogel. Using the salt/particle leaching method, we can control the pore size before leaching. Morphology of endothelial cells within scaffolds was also investigated by scanning electron microscopy, and histological analysis was conducted in vitro and in vivo to test the biocompatibility of SB hydrogel and its potential as a therapeutic reagent for ischemic tissue repair in mice.

Entities:  

Keywords:  endothelial cell; porous hydrogels; salt/particle leaching; tissue engineering

Year:  2014        PMID: 25469315      PMCID: PMC4245844          DOI: 10.1089/biores.2014.0048

Source DB:  PubMed          Journal:  Biores Open Access        ISSN: 2164-7844


  29 in total

Review 1.  Hydrogels for biomedical applications.

Authors:  A S Hoffman
Journal:  Ann N Y Acad Sci       Date:  2001-11       Impact factor: 5.691

2.  Engineering pro-angiogenic peptides using stable, disulfide-rich cyclic scaffolds.

Authors:  Lai Y Chan; Sunithi Gunasekera; Sonia T Henriques; Nathalie F Worth; Sarah-Jane Le; Richard J Clark; Julie H Campbell; David J Craik; Norelle L Daly
Journal:  Blood       Date:  2011-10-28       Impact factor: 22.113

3.  Differential effects of a soluble or immobilized VEGFR-binding peptide.

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Authors:  Vandana Keskar; Nicholas W Marion; Jeremy J Mao; Richard A Gemeinhart
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Review 5.  Controlling the porosity and microarchitecture of hydrogels for tissue engineering.

Authors:  Nasim Annabi; Jason W Nichol; Xia Zhong; Chengdong Ji; Sandeep Koshy; Ali Khademhosseini; Fariba Dehghani
Journal:  Tissue Eng Part B Rev       Date:  2010-08       Impact factor: 6.389

6.  Thermal behavior and mechanical properties of physically crosslinked PVA/Gelatin hydrogels.

Authors:  Yurong Liu; Luke M Geever; James E Kennedy; Clement L Higginbotham; Paul A Cahill; Garrett B McGuinness
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7.  Generation of porous poly(ethylene glycol) hydrogels by salt leaching.

Authors:  Yu-Chieh Chiu; Jeffery C Larson; Anthony Isom; Eric M Brey
Journal:  Tissue Eng Part C Methods       Date:  2010-10       Impact factor: 3.056

8.  In vivo properties of the proangiogenic peptide QK.

Authors:  Gaetano Santulli; Michele Ciccarelli; Gianluigi Palumbo; Alfonso Campanile; Gennaro Galasso; Barbara Ziaco; Giovanna Giuseppina Altobelli; Vincenzo Cimini; Federico Piscione; Luca Domenico D'Andrea; Carlo Pedone; Bruno Trimarco; Guido Iaccarino
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9.  Murine model of hindlimb ischemia.

Authors:  Hiroshi Niiyama; Ngan F Huang; Mark D Rollins; John P Cooke
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10.  Embryonic stem cell-derived endothelial cells for treatment of hindlimb ischemia.

Authors:  Ngan F Huang; Hiroshi Niiyama; Abhijit De; Sanjiv S Gambhir; John P Cooke
Journal:  J Vis Exp       Date:  2009-01-23       Impact factor: 1.355

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  2 in total

Review 1.  Stem Cell Sources and Graft Material for Vascular Tissue Engineering.

Authors:  Dorothee Hielscher; Constanze Kaebisch; Benedikt Julius Valentin Braun; Kevin Gray; Edda Tobiasch
Journal:  Stem Cell Rev Rep       Date:  2018-10       Impact factor: 5.739

Review 2.  3D Bioprinting for Vascularized Tissue Fabrication.

Authors:  Dylan Richards; Jia Jia; Michael Yost; Roger Markwald; Ying Mei
Journal:  Ann Biomed Eng       Date:  2016-05-26       Impact factor: 3.934

  2 in total

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