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AuthorSteppe, Lenadc.contributor.author
AuthorLiedert, Astriddc.contributor.author
AuthorIgnatius, Anitadc.contributor.author
AuthorHaffner-Luntzer, Melaniedc.contributor.author
Date of accession2020-12-08T13:43:13Zdc.date.accessioned
Available in OPARU since2020-12-08T13:43:13Zdc.date.available
Date of first publication2020-10-21dc.date.issued
AbstractBone is a mechanosensitive tissue for which mechanical stimuli are crucial in maintaining its structure and function. Bone cells react to their biomechanical environment by activating molecular signaling pathways, which regulate their proliferation, differentiation, and matrix production. Bone implants influence the mechanical conditions in the adjacent bone tissue. Optimizing their mechanical properties can support bone regeneration. Furthermore, external biomechanical stimulation can be applied to improve implant osseointegration and accelerate bone regeneration. One promising anabolic therapy is vertical whole-body low-magnitude high-frequency vibration (LMHFV). This form of vibration is currently extensively investigated to serve as an easyto- apply, cost-effective, and efficient treatment for bone disorders and regeneration. This review aims to provide an overview of LMHFV effects on bone cells in vitro and on implant integration and bone fracture healing in vivo. In particular, we review the current knowledge on cellular signaling pathways which are influenced by LMHFV within bone tissue. Most of the in vitro experiments showed that LMHFV is able to enhance mesenchymal stem cell (MSC) and osteoblast proliferation. Furthermore, osteogenic differentiation of MSCs and osteoblasts was shown to be accelerated by LMHFV, whereas osteoclastogenic differentiation was inhibited. Furthermore, LMHFV increased bone regeneration during osteoporotic fracture healing and osseointegration of orthopedic implants. Important mechanosensitive pathways mediating the effects of LMHFV might be the Wnt/beta-catenin signaling pathway, the estrogen receptor (ER) signaling pathway, and cytoskeletal remodeling.dc.description.abstract
Languageendc.language.iso
PublisherUniversität Ulmdc.publisher
LicenseCC BY 4.0 Internationaldc.rights
Link to license texthttps://creativecommons.org/licenses/by/4.0/dc.rights.uri
KeywordVibrationdc.subject
KeywordLMHFVdc.subject
KeywordOsseointegrationdc.subject
KeywordMechanostimulationdc.subject
Dewey Decimal GroupDDC 610 / Medicine & healthdc.subject.ddc
MeSHBone and bonesdc.subject.mesh
MeSHFracture healingdc.subject.mesh
MeSHOsseointegrationdc.subject.mesh
MeSHRegenerationdc.subject.mesh
TitleInfluence of low-magnitude high-frequency vibration on bone cells and bone regenerationdc.title
Resource typeWissenschaftlicher Artikeldc.type
VersionpublishedVersiondc.description.version
DOIhttp://dx.doi.org/10.18725/OPARU-33999dc.identifier.doi
URNhttp://nbn-resolving.de/urn:nbn:de:bsz:289-oparu-34061-6dc.identifier.urn
GNDKnochendc.subject.gnd
GNDFrakturheilungdc.subject.gnd
GNDKnochenumbaudc.subject.gnd
InstitutionUKU. Institut für Unfallchirurgische Forschung und Biomechanikuulm.affiliationSpecific
Peer reviewjauulm.peerReview
DCMI TypeTextuulm.typeDCMI
CategoryPublikationenuulm.category
DOI of original publication10.3389/fbioe.2020.595139dc.relation1.doi
Source - Title of sourceFrontiers in Bioengineering and Biotechnologysource.title
Source - Place of publicationFrontiers Mediasource.publisher
Source - Volume8source.volume
Source - Year2020source.year
Source - Article number595139source.articleNumber
Source - eISSN2296-4185source.identifier.eissn
Bibliographyuulmuulm.bibliographie
xmlui.metadata.uulm.OAfundingOpen-Access-Förderung durch die Medizinische Fakultät der Universität Ulmuulm.OAfunding
xmlui.metadata.uulm.OAfundingGefördert vom Ministerium für Wissenschaft, Forschung und Kunst Baden-Württemberguulm.OAfunding


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