Literature DB >> 24507669

Stimulation of bone repair with ultrasound: a review of the possible mechanic effects.

Frédéric Padilla1, Regina Puts2, Laurence Vico3, Kay Raum2.   

Abstract

In vivo and in vitro studies have demonstrated the positive role that ultrasound can play in the enhancement of fracture healing or in the reactivation of a failed healing process. We review the several options available for the use of ultrasound in this context, either to induce a direct physical effect (LIPUS, shock waves), to deliver bioactive molecules such as growth factors, or to transfect cells with osteogenic plasmids; with a main focus on LIPUS (or Low Intensity Pulsed Ultrasound) as it is the most widespread and studied technique. The biological response to LIPUS is complex as numerous cell types respond to this stimulus involving several pathways. Known to-date mechanotransduction pathways involved in cell responses include MAPK and other kinases signaling pathways, gap-junctional intercellular communication, up-regulation and clustering of integrins, involvement of the COX-2/PGE2, iNOS/NO pathways and activation of ATI mechanoreceptor. The mechanisms by which ultrasound can trigger these effects remain intriguing. Possible mechanisms include direct and indirect mechanical effects like acoustic radiation force, acoustic streaming, and propagation of surface waves, fluid-flow induced circulation and redistribution of nutrients, oxygen and signaling molecules. Effects caused by the transformation of acoustic wave energy into heat can usually be neglected, but heating of the transducer may have a potential impact on the stimulation in some in-vitro systems, depending on the coupling conditions. Cavitation cannot occur at the pressure levels delivered by LIPUS. In-vitro studies, although not appropriate to identify the overall biological effects, are of great interest to study specific mechanisms of action. The diversity of current experimental set-ups however renders this analysis very complex, as phenomena such as transducer heating, inhomogeneities of the sound intensity in the near field, resonances in the transmission and reflection through the culture dish walls and the formation of standing waves will greatly affect the local type and amplitude of the stimulus exerted on the cells. A future engineering challenge is therefore the design of dedicated experimental set-ups, in which the different mechanical phenomena induced by ultrasound can be controlled. This is a prerequisite to evaluate the biological effects of the different phenomena with respect to particular parameters, like intensity, frequency, or duty cycle. By relating the variations of these parameters to the induced physical effects and to the biological responses, it will become possible to derive an 'acoustic dose' and propose a quantification and cross-calibration of the different experimental systems. Improvements in bone healing management will probably also come from a combination of ultrasound with a 'biologic' components, e.g. growth factors, scaffolds, gene therapies, or drug delivery vehicles, the effects of which being potentiated by the ultrasound.
Copyright © 2014 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Bioeffects; Fracture healing; LIPUS; Mechanotransduction

Mesh:

Year:  2014        PMID: 24507669     DOI: 10.1016/j.ultras.2014.01.004

Source DB:  PubMed          Journal:  Ultrasonics        ISSN: 0041-624X            Impact factor:   2.890


  48 in total

1.  Understanding Mechanobiology: Physical Therapists as a Force in Mechanotherapy and Musculoskeletal Regenerative Rehabilitation.

Authors:  William R Thompson; Alexander Scott; M Terry Loghmani; Samuel R Ward; Stuart J Warden
Journal:  Phys Ther       Date:  2015-12-04

2.  Physical Stimulations for Bone and Cartilage Regeneration.

Authors:  Xiaobin Huang; Ritopa Das; Avi Patel; Thanh Duc Nguyen
Journal:  Regen Eng Transl Med       Date:  2018-06-25

3.  Low-intensity pulsed ultrasound activates ERK1/2 and PI3K-Akt signalling pathways and promotes the proliferation of human amnion-derived mesenchymal stem cells.

Authors:  Li Ling; Tianqin Wei; Lianli He; Yaping Wang; Yan Wang; Xiushan Feng; Wenqian Zhang; Zhengai Xiong
Journal:  Cell Prolif       Date:  2017-09-22       Impact factor: 6.831

Review 4.  Mechanisms of Interaction of Ultrasound With Cancellous Bone: A Review.

Authors:  Keith A Wear
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2019-10-16       Impact factor: 2.725

5.  Low-Intensity Pulsed Ultrasound Improves the Functional Properties of Cardiac Mesoangioblasts.

Authors:  Aurora Bernal; Laura M Pérez; Beatriz De Lucas; Nuria San Martín; Anke Kadow-Romacker; Gustavo Plaza; Kay Raum; Beatriz G Gálvez
Journal:  Stem Cell Rev Rep       Date:  2015-12       Impact factor: 5.739

6.  Piezoelectric and Opto-Acoustic Material Properties of Bone.

Authors:  Atsushi Hosokawa; Mami Matsukawa
Journal:  Adv Exp Med Biol       Date:  2022       Impact factor: 2.622

Review 7.  [Mechanobiology and bone metabolism: Clinical relevance for fracture treatment].

Authors:  M Haffner-Luntzer; A Liedert; A Ignatius
Journal:  Unfallchirurg       Date:  2015-12       Impact factor: 1.000

8.  Bone marrow mesenchymal stem cells stimulated with low-intensity pulsed ultrasound: Better choice of transplantation treatment for spinal cord injury: Treatment for SCI by LIPUS-BMSCs transplantation.

Authors:  Guang-Zhi Ning; Wen-Ye Song; Hong Xu; Ru-Sen Zhu; Qiu-Li Wu; Yu Wu; Shi-Bo Zhu; Ji-Qing Li; Man Wang; Zhi-Gang Qu; Shi-Qing Feng
Journal:  CNS Neurosci Ther       Date:  2018-10-08       Impact factor: 5.243

9.  Low-intensity pulsed ultrasound promotes cell motility through vinculin-controlled Rac1 GTPase activity.

Authors:  Paul Atherton; Franziska Lausecker; Andrew Harrison; Christoph Ballestrem
Journal:  J Cell Sci       Date:  2017-06-02       Impact factor: 5.285

10.  Effects of low intensity pulsed ultrasound on expression of B-cell lymphoma-2 and BCL2-Associated X in premature ovarian failure mice induced by 4-vinylcyclohexene diepoxide.

Authors:  Haopeng Xu; Yi Xia; Juan Qin; Jie Xu; Chongyan Li; Yan Wang
Journal:  Reprod Biol Endocrinol       Date:  2021-07-20       Impact factor: 5.211

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