Cyclic uniaxial mechanical load enhances chondrogenesis through entraining the molecular circadian clock

J Pineal Res. 2022 Nov;73(4):e12827. doi: 10.1111/jpi.12827. Epub 2022 Sep 2.

Abstract

The biomechanical environment plays a key role in regulating cartilage formation, but the current understanding of mechanotransduction pathways in chondrogenic cells is incomplete. Among the combination of external factors that control chondrogenesis are temporal cues that are governed by the cell-autonomous circadian clock. However, mechanical stimulation has not yet directly been proven to modulate chondrogenesis via entraining the circadian clock in chondroprogenitor cells. The purpose of this study was to establish whether mechanical stimuli entrain the core clock in chondrogenic cells, and whether augmented chondrogenesis caused by mechanical loading was at least partially mediated by the synchronised, rhythmic expression of the core circadian clock genes, chondrogenic transcription factors, and cartilage matrix constituents at both transcript and protein levels. We report here, for the first time, that cyclic uniaxial mechanical load applied for 1 h for a period of 6 days entrains the molecular clockwork in chondroprogenitor cells during chondrogenesis in limb bud-derived micromass cultures. In addition to the several core clock genes and proteins, the chondrogenic markers SOX9 and ACAN also followed a robust sinusoidal rhythmic expression pattern. These rhythmic conditions significantly enhanced cartilage matrix production and upregulated marker gene expression. The observed chondrogenesis-promoting effect of the mechanical environment was at least partially attributable to its entraining effect on the molecular clockwork, as co-application of the small molecule clock modulator longdaysin attenuated the stimulatory effects of mechanical load. This study suggests that an optimal biomechanical environment enhances tissue homoeostasis and histogenesis during chondrogenesis at least partially through entraining the molecular clockwork.

Keywords: biomechanics; chondrochronology; chondrogenesis; circadian rhythm; longdaysin; mechanical load; molecular clock.

MeSH terms

  • Cell Differentiation
  • Cells, Cultured
  • Chondrocytes / metabolism
  • Chondrogenesis
  • Circadian Clocks*
  • Mechanotransduction, Cellular
  • Melatonin* / pharmacology
  • Transcription Factors / metabolism

Substances

  • Melatonin
  • Transcription Factors