Literature DB >> 27212425

Gold nanorod-incorporated gelatin-based conductive hydrogels for engineering cardiac tissue constructs.

Ali Navaei1, Harpinder Saini1, Wayne Christenson2, Ryan Tanner Sullivan1, Robert Ros3, Mehdi Nikkhah4.   

Abstract

UNLABELLED: The development of advanced biomaterials is a crucial step to enhance the efficacy of tissue engineering strategies for treatment of myocardial infarction. Specific characteristics of biomaterials including electrical conductivity, mechanical robustness and structural integrity need to be further enhanced to promote the functionalities of cardiac cells. In this work, we fabricated UV-crosslinkable gold nanorod (GNR)-incorporated gelatin methacrylate (GelMA) hybrid hydrogels with enhanced material and biological properties for cardiac tissue engineering. Embedded GNRs promoted electrical conductivity and mechanical stiffness of the hydrogel matrix. Cardiomyocytes seeded on GelMA-GNR hybrid hydrogels exhibited excellent cell retention, viability, and metabolic activity. The increased cell adhesion resulted in abundance of locally organized F-actin fibers, leading to the formation of an integrated tissue layer on the GNR-embedded hydrogels. Immunostained images of integrin β-1 confirmed improved cell-matrix interaction on the hybrid hydrogels. Notably, homogeneous distribution of cardiac specific markers (sarcomeric α-actinin and connexin 43), were observed on GelMA-GNR hydrogels as a function of GNRs concentration. Furthermore, the GelMA-GNR hybrids supported synchronous tissue-level beating of cardiomyocytes. Similar observations were also noted by, calcium transient assay that demonstrated the rhythmic contraction of the cardiomyocytes on GelMA-GNR hydrogels as compared to pure GelMA. Thus, the findings of this study clearly demonstrated that functional cardiac patches with superior electrical and mechanical properties can be developed using nanoengineered GelMA-GNR hybrid hydrogels. STATEMENT OF SIGNIFICANCE: In this work, we developed gold nanorod (GNR) incorporated gelatin-based hydrogels with suitable electrical conductivity and mechanical stiffness for engineering functional cardiac tissue constructs (e.g. cardiac patches). The synthesized conductive hybrid hydrogels properly accommodated cardiac cells and subsequently resulted in excellent cell retention, spreading, homogeneous distribution of cardiac specific markers, cell-cell coupling as well as robust synchronized (tissue-level) beating behavior.
Copyright © 2016 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Calcium(2+) puffs; Cardiac patches; Conductive hydrogels; Gelatin methacrylate; Myocardial infarction; Synchronous beating

Mesh:

Substances:

Year:  2016        PMID: 27212425     DOI: 10.1016/j.actbio.2016.05.027

Source DB:  PubMed          Journal:  Acta Biomater        ISSN: 1742-7061            Impact factor:   8.947


  42 in total

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4.  Gold Nanocomposite Bioink for Printing 3D Cardiac Constructs.

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Review 6.  Cardiovascular disease models: A game changing paradigm in drug discovery and screening.

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7.  Nanoparticle-Based Hybrid Scaffolds for Deciphering the Role of Multimodal Cues in Cardiac Tissue Engineering.

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8.  Atorvastatin lipid nanocapsules and gold nanoparticles embedded in injectable thermo-gelling hydrogel scaffold containing adipose tissue extracellular matrix for myocardial tissue regeneration.

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Review 9.  Endogenous Electric Signaling as a Blueprint for Conductive Materials in Tissue Engineering.

Authors:  Alena Casella; Alyssa Panitch; J Kent Leach
Journal:  Bioelectricity       Date:  2021-03-16

10.  Effect of sterilization treatment on mechanical properties, biodegradation, bioactivity and printability of GelMA hydrogels.

Authors:  Muhammad Rizwan; Sarah W Chan; Patricia A Comeau; Thomas L Willett; Evelyn K F Yim
Journal:  Biomed Mater       Date:  2020-10-03       Impact factor: 3.715

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