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Engineering anisotropic muscle tissue using acoustic cell patterning
File | Description | Size | Format | |
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Armstrong_et_al-2018-Advanced_Materials.pdf | Published version | 2.05 MB | Adobe PDF | View/Open |
Title: | Engineering anisotropic muscle tissue using acoustic cell patterning |
Authors: | Armstrong, J Puetzer, JL Serio, A Guex, AG Kapnisi, K Breant, A Zong, Y Assal, V Skaalure, S King, O Murty, T Meinert, C Franklin, AC Bassindale, PG Nichols, MK Terracciano, C Hutmacher, DW Drinkwater, BW Klein, TJ Perriman, AW Stevens, MM |
Item Type: | Journal Article |
Abstract: | Tissue engineering has offered unique opportunities for disease modeling and regenerative medicine; however, the success of these strategies is dependent on faithful reproduction of native cellular organization. Here, it is reported that ultrasound standing waves can be used to organize myoblast populations in material systems for the engineering of aligned muscle tissue constructs. Patterned muscle engineered using type I collagen hydrogels exhibits significant anisotropy in tensile strength, and under mechanical constraint, produced microscale alignment on a cell and fiber level. Moreover, acoustic patterning of myoblasts in gelatin methacryloyl hydrogels significantly enhances myofibrillogenesis and promotes the formation of muscle fibers containing aligned bundles of myotubes, with a width of 120–150 µm and a spacing of 180–220 µm. The ability to remotely pattern fibers of aligned myotubes without any material cues or complex fabrication procedures represents a significant advance in the field of muscle tissue engineering. In general, these results are the first instance of engineered cell fibers formed from the differentiation of acoustically patterned cells. It is anticipated that this versatile methodology can be applied to many complex tissue morphologies, with broader relevance for spatially organized cell cultures, organoid development, and bioelectronics. |
Issue Date: | 25-Oct-2018 |
Date of Acceptance: | 9-Aug-2018 |
URI: | http://hdl.handle.net/10044/1/63350 |
DOI: | 10.1002/adma.201802649 |
ISSN: | 0935-9648 |
Publisher: | Wiley |
Start Page: | 1 |
End Page: | 7 |
Journal / Book Title: | Advanced Materials |
Volume: | 30 |
Issue: | 43 |
Sponsor/Funder: | Commission of the European Communities British Heart Foundation Medical Research Council (MRC) Medical Research Council (MRC) Medical Research Council (MRC) Commission of the European Communities Wellcome Trust Medical Research Council (MRC) Arthritis Research UK Medical Research Council Arthritis Research UK |
Funder's Grant Number: | 701664 RM/13/1/30157 MR/K026682/1 MR/R015651/1 MR/L012677/1 ERC-2013-CoG-616417 098411/Z/12/Z MR/S00551X/1 21138 MR/S00551X/1 21138 |
Keywords: | Science & Technology Physical Sciences Technology Chemistry, Multidisciplinary Chemistry, Physical Nanoscience & Nanotechnology Materials Science, Multidisciplinary Physics, Applied Physics, Condensed Matter Chemistry Science & Technology - Other Topics Materials Science Physics acoustic muscle patterning tissue engineering ultrasound standing waves SKELETAL-MUSCLE IN-VITRO CONTRACTION HYDROGELS acoustic muscle patterning tissue engineering ultrasound standing waves Acoustics Animals Cell Line Collagen Hydrogels Mice Muscle Fibers, Skeletal Myoblasts Tissue Engineering Tissue Scaffolds Ultrasonic Waves Cell Line Myoblasts Animals Mice Collagen Hydrogels Tissue Engineering Acoustics Tissue Scaffolds Muscle Fibers, Skeletal Ultrasonic Waves Nanoscience & Nanotechnology 02 Physical Sciences 03 Chemical Sciences 09 Engineering |
Publication Status: | Published |
Open Access location: | https://onlinelibrary.wiley.com/doi/full/10.1002/adma.201802649 |
Article Number: | 1802649 |
Online Publication Date: | 2018-09-12 |
Appears in Collections: | Materials National Heart and Lung Institute Faculty of Medicine Faculty of Natural Sciences Faculty of Engineering |