Mechanical Stimuli in the Local In Vivo Environment in Bone: Computational Approaches Linking Organ-Scale Loads to Cellular Signals

Curr Osteoporos Rep. 2018 Aug;16(4):395-403. doi: 10.1007/s11914-018-0448-6.

Abstract

Purpose of review: Connecting organ-scale loads to cellular signals in their local in vivo environment is a current challenge in the field of bone (re)modelling. Understanding this critical missing link would greatly improve our ability to anticipate mechanotransduction during different modes of stimuli and the resultant cellular responses. This review characterises computational approaches that could enable coupling links across the multiple scales of bone.

Recent findings: Current approaches using strain and fluid shear stress concepts have begun to link organ-scale loads to cellular signals; however, these approaches fail to capture localised micro-structural heterogeneities. Furthermore, models that incorporate downstream communication from osteocytes to osteoclasts, bone-lining cells and osteoblasts, will help improve the understanding of (re)modelling activities. Incorporating this potentially key information in the local in vivo environment will aid in developing multiscale models of mechanotransduction that can predict or help describe resultant biological events related to bone (re)modelling. Progress towards multiscale determination of the cell mechanical environment from organ-scale loads remains elusive. Construction of organ-, tissue- and cell-scale computational models that include localised environmental variation, strain amplification and intercellular communication mechanisms will ultimately help couple the hierarchal levels of bone.

Keywords: Bone (re)modelling; Computational systems biomechanics; Local in vivo environment; Mechanical stimulation; Osteocytes.

Publication types

  • Research Support, Non-U.S. Gov't
  • Review

MeSH terms

  • Animals
  • Biomechanical Phenomena
  • Bone Remodeling / physiology*
  • Bone and Bones / cytology
  • Bone and Bones / metabolism
  • Bone and Bones / physiology
  • Cell Communication / physiology*
  • Humans
  • Mechanotransduction, Cellular / physiology*
  • Models, Biological
  • Osteoblasts / metabolism
  • Osteoblasts / physiology*
  • Osteoclasts / metabolism
  • Osteoclasts / physiology*
  • Osteocytes / metabolism
  • Osteocytes / physiology*
  • Signal Transduction
  • Stress, Mechanical*
  • Systems Analysis
  • Weight-Bearing / physiology*