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Replace and repair: Biomimetic bioprinting for effective muscle engineering

dc.contributor.authorBlake, Cooper
dc.contributor.authorMassey, Oliver
dc.contributor.authorBoyd-Moss, Mitchell
dc.contributor.authorFiripis, K.
dc.contributor.authorRifai, Aaqil
dc.contributor.authorFranks, Stephanie
dc.contributor.authorQuigley, Anita F.
dc.contributor.authorKapsa, Robert M. I.
dc.contributor.authorNisbet, David
dc.contributor.authorWilliams, Richard J.
dc.date.accessioned2023-06-30T03:54:06Z
dc.date.available2023-06-30T03:54:06Z
dc.date.issued2021
dc.date.updated2022-04-10T08:18:30Z
dc.description.abstractThe debilitating effects of muscle damage, either through ischemic injury or volumetric muscle loss (VML), can have significant impacts on patients, and yet there are few effective treatments. This challenge arises when function is degraded due to significant amounts of skeletal muscle loss, beyond the regenerative ability of endogenous repair mechanisms. Currently available surgical interventions for VML are quite invasive and cannot typically restore function adequately. In response to this, many new bioengineering studies implicate 3D bioprinting as a viable option. Bioprinting for VML repair includes three distinct phases: printing and seeding, growth and maturation, and implantation and application. Although this 3D bioprinting technology has existed for several decades, the advent of more advanced and novel printing techniques has brought us closer to clinical applications. Recent studies have overcome previous limitations in diffusion distance with novel microchannel construct architectures and improved myotubule alignment with highly biomimetic nanostructures. These structures may also enhance angiogenic and nervous ingrowth post-implantation, though further research to improve these parameters has been limited. Inclusion of neural cells has also shown to improve myoblast maturation and development of neuromuscular junctions, bringing us one step closer to functional, implantable skeletal muscle constructs. Given the current state of skeletal muscle 3D bioprinting, the most pressing future avenues of research include furthering our understanding of the physical and biochemical mechanisms of myotube development and expanding our control over macroscopic and microscopic construct structures. Further to this, current investigation needs to be expanded from immunocompromised rodent and murine myoblast models to more clinically applicable human cell lines as we move closer to viable therapeutic implementation.en_AU
dc.description.sponsorshipK.F. was supported by an RMIT Research Stipend, an RMIT Engineering Scholarship, and an Australian Government Research Training Program Scholarship. A.R. acknowledges funding through the Alfred Deakin Postdoctoral Research Fellowship. A.Q., R.K., and R.J.W. acknowledge funding from the NHMRC Ideas Program, No. APP2002723.en_AU
dc.format.mimetypeapplication/pdfen_AU
dc.identifier.issn2473-2877en_AU
dc.identifier.urihttp://hdl.handle.net/1885/293805
dc.language.isoen_AUen_AU
dc.provenanceAll article content, except where otherwise noted, is licensed under a Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).en_AU
dc.publisherAIP Publishing LLCen_AU
dc.relationhttp://purl.org/au-research/grants/nhmrc/2002723en_AU
dc.rights© 2021 Author(s)en_AU
dc.rights.licenseCreative Commons Attribution (CC BY) licenseen_AU
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/en_AU
dc.sourceAPL Bioengineeringen_AU
dc.subjectMicrochannelen_AU
dc.subjectPolymersen_AU
dc.subjectBiomimeticsen_AU
dc.subjectBioengineeringen_AU
dc.subjectNeural synapsesen_AU
dc.subjectMusculoskeletal systemen_AU
dc.subjectTherapeuticsen_AU
dc.subjectMammalsen_AU
dc.subjectCell linesen_AU
dc.subject3D bioprintingen_AU
dc.titleReplace and repair: Biomimetic bioprinting for effective muscle engineeringen_AU
dc.typeJournal articleen_AU
dcterms.accessRightsOpen Accessen_AU
local.bibliographicCitation.issue3en_AU
local.bibliographicCitation.lastpage17en_AU
local.bibliographicCitation.startpage1en_AU
local.contributor.affiliationBlake, Cooper, Deakin Universityen_AU
local.contributor.affiliationMassey, Oliver, Deakin Universityen_AU
local.contributor.affiliationBoyd-Moss, Mitchell, RMIT Universityen_AU
local.contributor.affiliationFiripis, K., RMIT Universityen_AU
local.contributor.affiliationRifai, Aaqil, Deakin Universityen_AU
local.contributor.affiliationFranks, Stephanie, College of Engineering and Computer Science, ANUen_AU
local.contributor.affiliationQuigley, Anita F., RMIT Universityen_AU
local.contributor.affiliationKapsa, Robert M. I., RMIT Universityen_AU
local.contributor.affiliationNisbet, David, College of Health and Medicine, ANUen_AU
local.contributor.affiliationWilliams, Richard J., Deakin Universityen_AU
local.contributor.authoruidFranks, Stephanie, u5357367en_AU
local.contributor.authoruidNisbet, David, u5031428en_AU
local.description.notesImported from ARIESen_AU
local.identifier.absfor310102 - Cell development, proliferation and deathen_AU
local.identifier.absfor320903 - Central nervous systemen_AU
local.identifier.absfor310113 - Synthetic biologyen_AU
local.identifier.absseo200105 - Treatment of human diseases and conditionsen_AU
local.identifier.absseo280105 - Expanding knowledge in the chemical sciencesen_AU
local.identifier.absseo280102 - Expanding knowledge in the biological sciencesen_AU
local.identifier.ariespublicationa383154xPUB21116en_AU
local.identifier.citationvolume5en_AU
local.identifier.doi10.1063/5.0040764en_AU
local.identifier.scopusID2-s2.0-85109417429
local.publisher.urlhttps://pubs.aip.org/en_AU
local.type.statusPublished Versionen_AU

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