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Updated: Aug 9, 2026

Corneal Tissue Engineering: An In Vitro Model of the Stromal-nerve Interactions of the Human Cornea
Published on: January 24, 2018
Human Corneal Fibroblast Pattern Evolution and Matrix Synthesis on Mechanically Biased Substrates
Ramin Zareian1, Monica E Susilo1, Jeffrey A Paten1
11 Department of Bioengineering, Northeastern University , Boston, Massachusetts.
Physiological tension significantly impacts fibroblast behavior and extracellular matrix (ECM) deposition in corneal stromal development. Mechanically biased substrates promote stable cell patterning and organized ECM, crucial for tissue development.
Area of Science:
- Biomedical Engineering
- Cell Biology
- Tissue Engineering
Background:
- Corneal stromal development involves fibroblast behavior and extracellular matrix (ECM) organization.
- Understanding the role of mechanical forces, or physiological tension, in this process is critical for regenerative medicine and disease modeling.
Purpose of the Study:
- To investigate how physiological tension influences fibroblast patterning dynamics and extracellular matrix (ECM) orientation during corneal stromal development.
- To compare the effects of mechanically biased, loaded, dense, disorganized collagen substrate (LDDCS), glass coverslips, and unloaded, dense, disorganized collagen substrate (UDDCS) on cell behavior.
Main Methods:
- Utilized a fibroblast colony model of corneal stromal development.
- Employed long-term live-cell microscopy within an optically accessible mechanobioreactor.
- Cultured primary human corneal fibroblasts on LDDCS, glass, and UDDCS.
Main Results:
- On LDDCS, fibroblasts exhibited early orientation and migration along a preferred angle, with long-range correlation and stable colony patterns.
- Glass substrates showed poorly correlated fibroblast orientation, slower pattern development, and metastable colony patterns.
- UDDCS resulted in shorter-range cell orientation correlations compared to LDDCS, with ECM patterns consistently reflecting cell patterns across all substrates.
Conclusions:
- Mechanically biasing collagen substrates significantly alters individual cell migration behavior during early development.
- This mechanical influence leads to stable, emergent cell patterning that dictates the template for subsequent ECM synthesis.
- Findings highlight the critical role of mechanical cues in directing tissue development and ECM organization in the corneal stroma.
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