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  4. The cellular responses of corneal fibroblasts to cyclic stretching loads
 
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The cellular responses of corneal fibroblasts to cyclic stretching loads

Journal
Experimental eye research
Journal Volume
237
Date Issued
2023-12
Author(s)
Tan, Hsin-Yuan
Wu, Yueh-Feng
Wang, Chia-Yi
SUNG-JAN LIN  
Ma, Yunn-Hwa
Young, Tai-Horng  
DOI
10.1016/j.exer.2023.109696
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/641801
URL
https://api.elsevier.com/content/abstract/scopus_id/85175465286
Abstract
Mechanical signaling plays a crucial role in maintaining extracellular matrix (ECM) homeostasis in various structures. In this study, we investigated the responses of corneal fibroblasts to cyclic stretching loads using an in vitro cell culture system. Bovine corneal fibroblasts were cultured and subjected to equibiaxial cyclic strain of 15% for 72 h at a frequency of 0.25 Hz, with bovine skin fibroblasts used as a comparison. We explored various cellular behaviors, including morphological changes, cell proliferation, and metabolism in response to mechanical stretching loads. The expression of genes, protein secretion, and enzymatic activity for several major metalloproteinases was also determined through Q-PCR, Western blot, and gel zymography. Additionally, we investigated the involvement of mitogen-activated protein kinases (MAPKs) signaling pathways in the corneal fibroblasts when subjected to mechanical stimuli. Our findings revealed that, compared to skin fibroblasts, corneal fibroblasts were reluctant to morphological changes in response to a prolonged (72 h) and high-amplitude (15% of strain) cyclic stretching load. However, cyclic stretching loads stimulated the upregulation of MMP-2 expression in corneal fibroblasts via the MAPK signaling pathways involving extracellular signal-regulated kinase and p38. Together with a lack of upregulation in type I collagen expression, our results indicate the induction of the ECM degradation process in corneal fibroblasts in response to cyclic stretching. These findings emphasize the mechanoresponsive nature of corneal fibroblasts and shed light on the potential impact of intense mechanical stress on the cornea in both normal and pathological conditions such as keratoconus, providing valuable insights for understanding corneal mechanobiology.
Subjects
Cornea; Cyclic stretch; Fibroblasts; Matrix metalloproteinase (MMPs); Mitogen-activated protein kinase (MAPK)
Type
journal article

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