Literature DB >> 26636618

Tunable Keratin Hydrogels for Controlled Erosion and Growth Factor Delivery.

Trevor R Ham1,2, Ryan T Lee1, Sangheon Han1, Salma Haque1, Yael Vodovotz3, Junnan Gu3, Luke R Burnett4, Seth Tomblyn4, Justin M Saul1.   

Abstract

Tunable erosion of polymeric materials is an important aspect of tissue engineering for reasons that include cell infiltration, controlled release of therapeutic agents, and ultimately to tissue healing. In general, the biological response to proteinaceous polymeric hydrogels is favorable (e.g., minimal inflammatory response). However, unlike synthetic polymers, achieving tunable erosion with natural materials is a challenge. Keratins are a class of intermediate filament proteins that can be obtained from several sources, including human hair, and have gained increasing levels of use in tissue engineering applications. An important characteristic of keratin proteins is the presence of a large number of cysteine residues. Two classes of keratins with different chemical properties can be obtained by varying the extraction techniques: (1) keratose by oxidative extraction and (2) kerateine by reductive extraction. Cysteine residues of keratose are "capped" by sulfonic acid and are unable to form covalent cross-links upon hydration, whereas cysteine residues of kerateine remain as sulfhydryl groups and spontaneously form covalent disulfide cross-links. Here, we describe a straightforward approach to fabricate keratin hydrogels with tunable rates of erosion by mixing keratose and kerateine. SEM imaging and mechanical testing of freeze-dried materials showed similar pore diameters and compressive moduli, respectively, for each keratose-kerateine mixture formulation (∼1200 kPa for freeze-dried materials and ∼1.5 kPa for hydrogels). However, the elastic modulus (G') determined by rheology varied in proportion with the keratose-kerateine ratios, as did the rate of hydrogel erosion and the release rate of thiol from the hydrogels. The variation in keratose-kerateine ratios also led to tunable control over release rates of recombinant human insulin-like growth factor 1.

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Year:  2015        PMID: 26636618      PMCID: PMC5565161          DOI: 10.1021/acs.biomac.5b01328

Source DB:  PubMed          Journal:  Biomacromolecules        ISSN: 1525-7797            Impact factor:   6.988


  61 in total

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3.  Preparation of keratin and chemically modified keratin hydrogels and their evaluation as cell substrate with drug releasing ability.

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5.  Thermogelling chitosan-g-(PAF-PEG) aqueous solution as an injectable scaffold.

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6.  Structure-property relationships of meta-kerateine biomaterials derived from human hair.

Authors:  Jillian R Richter; Roche C de Guzman; Olga K Greengauz-Roberts; Mark Van Dyke
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Review 9.  Rheology of biopolymer solutions and gels.

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  18 in total

1.  Tunable Protein Hydrogels: Present State and Emerging Development.

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4.  In Vivo Evaluation of Three-Dimensional Printed, Keratin-Based Hydrogels in a Porcine Thermal Burn Model.

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Journal:  Tissue Eng Part A       Date:  2020-01-09       Impact factor: 3.845

5.  HPLC-MS/MS method for quantification of paclitaxel from keratin containing samples.

Authors:  Emily A Turner; Alexandra C Stenson; Saami K Yazdani
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6.  Keratin Hydrogel Enhances In Vivo Skeletal Muscle Function in a Rat Model of Volumetric Muscle Loss.

Authors:  J A Passipieri; H B Baker; Mevan Siriwardane; Mary D Ellenburg; Manasi Vadhavkar; Justin M Saul; Seth Tomblyn; Luke Burnett; George J Christ
Journal:  Tissue Eng Part A       Date:  2017-04-14       Impact factor: 3.845

7.  Cell and Growth Factor-Loaded Keratin Hydrogels for Treatment of Volumetric Muscle Loss in a Mouse Model.

Authors:  H B Baker; J A Passipieri; Mevan Siriwardane; Mary D Ellenburg; Manasi Vadhavkar; Christopher R Bergman; Justin M Saul; Seth Tomblyn; Luke Burnett; George J Christ
Journal:  Tissue Eng Part A       Date:  2017-04-14       Impact factor: 3.845

8.  Effects of Tunable Keratin Hydrogel Erosion on Recombinant Human Bone Morphogenetic Protein 2 Release, Bioactivity, and Bone Induction.

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9.  Development of keratin nanoparticles for controlled gastric mucoadhesion and drug release.

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10.  The Hair Follicle: An Underutilized Source of Cells and Materials for Regenerative Medicine.

Authors:  Mehrdad T Kiani; Claire A Higgins; Benjamin D Almquist
Journal:  ACS Biomater Sci Eng       Date:  2017-03-21
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