Novel image analysis methods for quantification of in situ 3-D tendon cell and matrix strain

J Biomech. 2018 Jan 23:67:184-189. doi: 10.1016/j.jbiomech.2017.11.030. Epub 2017 Dec 6.

Abstract

Macroscopic tendon loads modulate the cellular microenvironment leading to biological outcomes such as degeneration or repair. Previous studies have shown that damage accumulation and the phases of tendon healing are marked by significant changes in the extracellular matrix, but it remains unknown how mechanical forces of the extracellular matrix are translated to mechanotransduction pathways that ultimately drive the biological response. Our overarching hypothesis is that the unique relationship between extracellular matrix strain and cell deformation will dictate biological outcomes, prompting the need for quantitative methods to characterize the local strain environment. While 2-D methods have successfully calculated matrix strain and cell deformation, 3-D methods are necessary to capture the increased complexity that can arise due to high levels of anisotropy and out-of-plane motion, particularly in the disorganized, highly cellular, injured state. In this study, we validated the use of digital volume correlation methods to quantify 3-D matrix strain using images of naïve tendon cells, the collagen fiber matrix, and injured tendon cells. Additionally, naïve tendon cell images were used to develop novel methods for 3-D cell deformation and 3-D cell-matrix strain, which is defined as a quantitative measure of the relationship between matrix strain and cell deformation. The results support that these methods can be used to detect strains with high accuracy and can be further extended to an in vivo setting for observing temporal changes in cell and matrix mechanics during degeneration and healing.

Keywords: 3-D strain; Cell deformation; Digital volume correlation; Extracellular matrix strain; Tendon.

Publication types

  • Research Support, N.I.H., Extramural

MeSH terms

  • Animals
  • Anisotropy
  • Extracellular Matrix / metabolism*
  • Humans
  • Imaging, Three-Dimensional*
  • Mechanotransduction, Cellular
  • Stress, Mechanical*
  • Tendons / cytology*
  • Tendons / drug effects*