Literature DB >> 31944612

Integration of Graphene Electrodes with 3D Skeletal Muscle Tissue Models.

Yongdeok Kim1, Gelson Pagan-Diaz2, Lauren Gapinske2, Yerim Kim3, Judy Suh4, Emilia Solomon5, Jennifer Foster Harris5, SungWoo Nam6, Rashid Bashir7.   

Abstract

Integration of conductive electrodes with 3D tissue models can have great potential for applications in bioelectronics, drug screening, and implantable devices. As conventional electrodes cannot be easily integrated on 3D, polymeric, and biocompatible substrates, alternatives are highly desirable. Graphene offers significant advantages over conventional electrodes due to its mechanical flexibility and robustness, biocompatibility, and electrical properties. However, the transfer of chemical vapor deposition graphene onto millimeter scale 3D structures is challenging using conventional wet graphene transfer methods with a rigid poly (methyl methacrylate) (PMMA) supportive layer. Here, a biocompatible 3D graphene transfer method onto 3D printed structure using a soft poly ethylene glycol diacrylate (PEGDA) supportive layer to integrate the graphene layer with a 3D engineered ring of skeletal muscle tissue is reported. The use of softer PEGDA supportive layer, with a 105 times lower Young's modulus compared to PMMA, results in conformal integration of the graphene with 3D printed pillars and allows electrical stimulation and actuation of the muscle ring with various applied voltages and frequencies. The graphene integration method can be applied to many 3D tissue models and be used as a platform for electrical interfaces to 3D biological tissue system.
© 2020 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.

Entities:  

Keywords:  3D graphene transfer; PEGDA scaffolds; biohybrid robots; biological machines; skeletal muscles

Year:  2020        PMID: 31944612      PMCID: PMC8029654          DOI: 10.1002/adhm.201901137

Source DB:  PubMed          Journal:  Adv Healthc Mater        ISSN: 2192-2640            Impact factor:   9.933


  21 in total

1.  3D graphene oxide-polymer hydrogel: near-infrared light-triggered active scaffold for reversible cell capture and on-demand release.

Authors:  Wen Li; Jiasi Wang; Jinsong Ren; Xiaogang Qu
Journal:  Adv Mater       Date:  2013-10-07       Impact factor: 30.849

2.  Three-dimensional printing of high-content graphene scaffolds for electronic and biomedical applications.

Authors:  Adam E Jakus; Ethan B Secor; Alexandra L Rutz; Sumanas W Jordan; Mark C Hersam; Ramille N Shah
Journal:  ACS Nano       Date:  2015-04-20       Impact factor: 15.881

3.  Printing in three dimensions with graphene.

Authors:  Esther García-Tuñon; Suelen Barg; Jaime Franco; Robert Bell; Salvador Eslava; Eleonora D'Elia; Robert Christopher Maher; Francisco Guitian; Eduardo Saiz
Journal:  Adv Mater       Date:  2015-01-21       Impact factor: 30.849

4.  Graphene-coated atomic force microscope tips for reliable nanoscale electrical characterization.

Authors:  M Lanza; A Bayerl; T Gao; M Porti; M Nafria; G Y Jing; Y F Zhang; Z F Liu; H L Duan
Journal:  Adv Mater       Date:  2012-12-27       Impact factor: 30.849

5.  Highly specific SNP detection using 2D graphene electronics and DNA strand displacement.

Authors:  Michael T Hwang; Preston B Landon; Joon Lee; Duyoung Choi; Alexander H Mo; Gennadi Glinsky; Ratnesh Lal
Journal:  Proc Natl Acad Sci U S A       Date:  2016-06-13       Impact factor: 11.205

6.  Formation and optogenetic control of engineered 3D skeletal muscle bioactuators.

Authors:  Mahmut Selman Sakar; Devin Neal; Thomas Boudou; Michael A Borochin; Yinqing Li; Ron Weiss; Roger D Kamm; Christopher S Chen; H Harry Asada
Journal:  Lab Chip       Date:  2012-12-07       Impact factor: 6.799

7.  Three-Dimensional Integration of Graphene via Swelling, Shrinking, and Adaptation.

Authors:  Jonghyun Choi; Hoe Joon Kim; Michael Cai Wang; Juyoung Leem; William P King; SungWoo Nam
Journal:  Nano Lett       Date:  2015-06-23       Impact factor: 11.189

8.  Reduced Graphene Oxide-GelMA Hybrid Hydrogels as Scaffolds for Cardiac Tissue Engineering.

Authors:  Su Ryon Shin; Claudio Zihlmann; Mohsen Akbari; Pribpandao Assawes; Louis Cheung; Kaizhen Zhang; Vijayan Manoharan; Yu Shrike Zhang; Mehmet Yüksekkaya; Kai-Tak Wan; Mehdi Nikkhah; Mehmet R Dokmeci; Xiaowu Shirley Tang; Ali Khademhosseini
Journal:  Small       Date:  2016-06-02       Impact factor: 13.281

9.  Graphene: status and prospects.

Authors:  A K Geim
Journal:  Science       Date:  2009-06-19       Impact factor: 47.728

10.  Synergistic toughening of composite fibres by self-alignment of reduced graphene oxide and carbon nanotubes.

Authors:  Min Kyoon Shin; Bommy Lee; Shi Hyeong Kim; Jae Ah Lee; Geoffrey M Spinks; Sanjeev Gambhir; Gordon G Wallace; Mikhail E Kozlov; Ray H Baughman; Seon Jeong Kim
Journal:  Nat Commun       Date:  2012-01-31       Impact factor: 14.919

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  3 in total

1.  Compliant 3D frameworks instrumented with strain sensors for characterization of millimeter-scale engineered muscle tissues.

Authors:  Hangbo Zhao; Yongdeok Kim; Heling Wang; Xin Ning; Chenkai Xu; Judy Suh; Mengdi Han; Gelson J Pagan-Diaz; Wei Lu; Haibo Li; Wubin Bai; Onur Aydin; Yoonseok Park; Jiaojiao Wang; Yao Yao; Yishan He; M Taher A Saif; Yonggang Huang; Rashid Bashir; John A Rogers
Journal:  Proc Natl Acad Sci U S A       Date:  2021-05-11       Impact factor: 11.205

Review 2.  3D Graphene Scaffolds for Skeletal Muscle Regeneration: Future Perspectives.

Authors:  Valentina Palmieri; Francesca Sciandra; Manuela Bozzi; Marco De Spirito; Massimiliano Papi
Journal:  Front Bioeng Biotechnol       Date:  2020-05-05

Review 3.  Recent trends in bioartificial muscle engineering and their applications in cultured meat, biorobotic systems and biohybrid implants.

Authors:  Eva Schätzlein; Andreas Blaeser
Journal:  Commun Biol       Date:  2022-07-22
  3 in total

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