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The role of biomechanical factors in models of intervertebral disc degeneration across multiple length scales. | LitMetric

The role of biomechanical factors in models of intervertebral disc degeneration across multiple length scales.

APL Bioeng

Department of Engineering, University of Exeter, Harrison Building, Streatham Campus, North Park Road, Exeter EX4 4QF, United Kingdom.

Published: June 2023

AI Article Synopsis

  • Low back pain is a major global health issue, largely due to intervertebral disc degeneration, yet there are currently no approved therapies for disc regeneration.
  • Various mechanical stimulation models and testing methods, like microfluidics and bioreactors, have been developed to assess these regenerative therapies, but they still face challenges in accurately representing real-life conditions.
  • The review evaluates different disc models by their biological and mechanical similarity to human IVDs, discussing trade-offs in complexity, cost, and ethical considerations for testing methods.

Article Abstract

Low back pain is the leading cause of disability, producing a substantial socio-economic burden on healthcare systems worldwide. Intervertebral disc (IVD) degeneration is a primary cause of lower back pain, and while regenerative therapies aimed at full functional recovery of the disc have been developed in recent years, no commercially available, approved devices or therapies for the regeneration of the IVD currently exist. In the development of these new approaches, numerous models for mechanical stimulation and preclinical assessment, including cell studies using microfluidics, organ studies coupled with bioreactors and mechanical testing rigs, and testing in a variety of large and small animals, have emerged. These approaches have provided different capabilities, certainly improving the preclinical evaluation of these regenerative therapies, but challenges within the research environment, and compromises relating to non-representative mechanical stimulation and unrealistic test conditions, remain to be resolved. In this review, insights into the ideal characteristics of a disc model for the testing of IVD regenerative approaches are first assessed. Key learnings from , , and IVD models under mechanical loading stimulation to date are presented alongside the merits and limitations of each model based on the physiological resemblance to the human IVD environment (biological and mechanical) as well as the possible feedback and output measurements for each approach. When moving from simplified models to and approaches, the complexity increases resulting in less controllable models but providing a better representation of the physiological environment. Although cost, time, and ethical constraints are dependent on each approach, they escalate with the model complexity. These constraints are discussed and weighted as part of the characteristics of each model.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10168717PMC
http://dx.doi.org/10.1063/5.0137698DOI Listing

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