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Research ArticleFocus Issue Article

Fundamentals of Mechanobiology and Potential Applications in Spinal Fusion

Matthew Scott-Young, David Nielsen and Sukhman Riar
International Journal of Spine Surgery December 2023, 8562; DOI: https://doi.org/10.14444/8562
Matthew Scott-Young
1 Faculty of Health Science and Medicine, Bond University, Gold Coast, Queensland, Australia
2 Gold Coast Spine, Bond University, Gold Coast, Queensland, Australia
MBBS, FRACS
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  • For correspondence: swalter@goldcoastspine.com.au
David Nielsen
2 Gold Coast Spine, Bond University, Gold Coast, Queensland, Australia
MBBS, FRACS
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Sukhman Riar
1 Faculty of Health Science and Medicine, Bond University, Gold Coast, Queensland, Australia
2 Gold Coast Spine, Bond University, Gold Coast, Queensland, Australia
BSᴄ
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Abstract

Background Mechanobiology can help optimize spinal fusion by providing insights into the mechanical environment required for bone healing and fusion. This includes understanding the optimal loading conditions, the mechanical properties of implanted materials, and the effects of mechanical stimuli on the cells involved in bone formation. The present article reviews the evidence for surface technologies and implant modification of spinal cages in enhancing spinal fusion.

Methods Databases used included Embase, MEDLINE, Springer, and Cochrane Library. Relevant articles were identified using specific keywords and search fields. Only systematic reviews, meta-analyses, review articles, and original research articles in English were included. Two researchers independently performed the search and selection process. A flowchart of the search strategy and study selection method is provided in the article.

Results The studies indicate that surface modification can significantly enhance osseointegration and interbody fusion by promoting cellular adhesion, proliferation, differentiation, and mineralization. Various surface modification techniques such as coating, etching, nanotopography, and functionalization achieve this. Similarly, implant material modification can improve implant stability, biocompatibility, and bioactivity, leading to better fusion outcomes. Mechanobiology plays a vital role in this process by influencing the cellular response to mechanical cues and promoting bone formation.

Conclusions The studies reviewed indicate that surface technologies and implant material modification are promising approaches for improving the success of spinal cage fusion. Mechanobiology is critical in this process by influencing the cellular response to mechanical signals and promoting bone growth.

  • mechanobiology
  • mechanotransduction
  • spinal fusion
  • cages
  • surface technology

Footnotes

  • Funding The authors received no financial support for the research, authorship, and/or publication of this article.

  • Declarations This research received no specific grant from any funding agency in the public, commercial, or not-for-profit sectors. The authors have no conflicts of interest to disclose.

  • This manuscript is generously published free of charge by ISASS, the International Society for the Advancement of Spine Surgery. Copyright © 2023 ISASS. To see more or order reprints or permissions, see http://ijssurgery.com.
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International Journal of Spine Surgery: 19 (S2)
International Journal of Spine Surgery
Vol. 19, Issue S2
1 Apr 2025
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Fundamentals of Mechanobiology and Potential Applications in Spinal Fusion
Matthew Scott-Young, David Nielsen, Sukhman Riar
International Journal of Spine Surgery Dec 2023, 8562; DOI: 10.14444/8562

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Fundamentals of Mechanobiology and Potential Applications in Spinal Fusion
Matthew Scott-Young, David Nielsen, Sukhman Riar
International Journal of Spine Surgery Dec 2023, 8562; DOI: 10.14444/8562
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  • The Future of Arthroplasty in the Spine
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Keywords

  • mechanobiology
  • mechanotransduction
  • spinal fusion
  • cages
  • surface technology

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