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Layer-by-Layer Assembly of 3D Tissue Constructs with Functionalized Graphene

机译:具有功能化石墨烯的3D组织构造的逐层组装

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摘要

Carbon-based nanomaterials have been considered promising candidates to mimic certain structure and function of native extracellular matrix materials for tissue engineering. Significant progress has been made in fabricating carbon nanoparticle-incorporated cell culture substrates, but only a limited number of studies have been reported on the development of 3D tissue constructs using these nanomaterials. Here, a novel approach to engineer 3D multilayer constructs using layer-by-layer (LbL) assembly of cells separated with self-assembled graphene oxide (GO)-based thin films is presented. The GO-based structures are shown to serve as cell adhesive sheets that effectively facilitate the formation of multilayer cell constructs with interlayer connectivity. By controlling the amount of GO deposited in forming the thin films, the thickness of the multilayer tissue constructs could be tuned with high cell viability. Specifically, this approach could be useful for creating dense and tightly connected cardiac tissues through the co-culture of cardiomyocytes and other cell types. In this work, the fabrication of stand-alone multilayer cardiac tissues with strong spontaneous beating behavior and programmable pumping properties is demonstrated. Therefore, this LbL-based cell construct fabrication approach, utilizing GO thin films formed directly on cell surfaces, has great potential in engineering 3D tissue structures with improved organization, electrophysiological function, and mechanical integrity.
机译:碳基纳米材料被认为是有前途的候选者,可以模仿组织工程中天然细胞外基质材料的某些结构和功能。在制备掺有碳纳米颗粒的细胞培养基质方面取得了重大进展,但是关于使用这些纳米材料开发3D组织构建体的报道只有有限的研究。在这里,提出了一种新的方法来工程化3D多层构造,该方法使用由基于自组装氧化石墨烯(GO)的薄膜分隔的单元的逐层(LbL)组装。示出了基于GO的结构用作细胞粘合片,其有效地促进了具有层间连接性的多层细胞构建体的形成。通过控制沉积在形成薄膜中的GO的数量,多层组织构建体的厚度可以在高细胞生存力的情况下进行调整。特别地,这种方法对于通过心肌细胞和其他细胞类型的共培养产生密集且紧密连接的心脏组织可能是有用的。在这项工作中,展示了具有强自发搏动行为和可编程泵送特性的独立多层心脏组织的制造。因此,这种基于LbL的细胞构建体制造方法利用直接在细胞表面形成的GO薄膜,在工程3D组织结构的工程改造,电生理功能和机械完整性改善方面具有巨大潜力。

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  • 来源
    《Advanced Functional Materials》 |2014年第39期|6136-6144|共9页
  • 作者单位

    Biomaterials Innovation Research Center Division of Biomedical Engineering Department of Medicine Brigham and Women's Hospital, Harvard Medical School Cambridge, MA 02139, USA, Harvard-MIT Division of Health Sciences and Technology Massachusetts Institute of Technology Cambridge, MA 02139, USA, Wyss Institute for Biologically Inspired Engineering Harvard University Boston, MA 02115, USA;

    Biomaterials Innovation Research Center Division of Biomedical Engineering Department of Medicine Brigham and Women's Hospital, Harvard Medical School Cambridge, MA 02139, USA, Harvard-MIT Division of Health Sciences and Technology Massachusetts Institute of Technology Cambridge, MA 02139, USA, Department of Cell and Molecular Biology Uppsala University SE-751 24, Uppsala, Sweden, Charles Perkins Centre D17, The University of Sydney, NSW 2006, Australia;

    Department of Chemistry & Waterloo Institute for Nanotechnology University of Waterloo 200 University Ave. West, Waterloo, Ontario N2L 3G1, CanActa;

    Biomaterials Innovation Research Center Division of Biomedical Engineering Department of Medicine Brigham and Women's Hospital, Harvard Medical School Cambridge, MA 02139, USA, Harvard-MIT Division of Health Sciences and Technology Massachusetts Institute of Technology Cambridge, MA 02139, USA, School of Biological and Health Systems Engineering, Arizona State University, Tempe, AZ, 85287, USA;

    Department of Electrical Engineering and Computer Science Massachusetts Institute of Technology Cambridge, MA 02139, USA;

    Biomaterials Innovation Research Center Division of Biomedical Engineering Department of Medicine Brigham and Women's Hospital, Harvard Medical School Cambridge, MA 02139, USA, Harvard-MIT Division of Health Sciences and Technology Massachusetts Institute of Technology Cambridge, MA 02139, USA, Interdisciplinary Nanoscience Center (iNANO) Aarhus University Aarhus, Denmark, Wyss Institute for Biologically Inspired Engineering Harvard University Boston, MA 02115, USA;

    Biomaterials Innovation Research Center Division of Biomedical Engineering Department of Medicine Brigham and Women's Hospital, Harvard Medical School Cambridge, MA 02139, USA, Harvard-MIT Division of Health Sciences and Technology Massachusetts Institute of Technology Cambridge, MA 02139, USA;

    Department of Mechanical Engineering Inha University Incheon 402-751, Republic of Korea;

    Biomaterials Innovation Research Center Division of Biomedical Engineering Department of Medicine Brigham and Women's Hospital, Harvard Medical School Cambridge, MA 02139, USA, Harvard-MIT Division of Health Sciences and Technology Massachusetts Institute of Technology Cambridge, MA 02139, USA, Wyss Institute for Biologically Inspired Engineering Harvard University Boston, MA 02115, USA;

    Department of Chemistry & Waterloo Institute for Nanotechnology University of Waterloo 200 University Ave. West, Waterloo, Ontario N2L 3G1, CanActa;

    Biomaterials Innovation Research Center Division of Biomedical Engineering Department of Medicine Brigham and Women's Hospital, Harvard Medical School Cambridge, MA 02139, USA, Harvard-MIT Division of Health Sciences and Technology Massachusetts Institute of Technology Cambridge, MA 02139, USA, Wyss Institute for Biologically Inspired Engineering Harvard University Boston, MA 02115, USA, Department of Maxillofacial Biomedical Engineering and Institute of Oral Biology School of Dentistry, Kyung Hee University Seoul 130-701, Republic of Korea, Department of Physics King Abdulaziz University Jeddah 21569, Saudi Arabia;

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