Oxidative Stress Induces a Breakdown of the Cytoskeleton and Tight Junctions of the Corneal Endothelial Cells

Author(s):  
Anupama Chalimeswamy ◽  
Marasarakottige Yogananda Thanuja ◽  
Sudhir H. Ranganath ◽  
Kaveet Pandya ◽  
Uday B. Kompella ◽  
...  
2011 ◽  
Vol 36 (10) ◽  
pp. 910-917 ◽  
Author(s):  
Young Joo Shin ◽  
Jong Mo Seo ◽  
Tae Young Chung ◽  
Joon Young Hyon ◽  
Won Ryang Wee

2018 ◽  
Vol 2018 ◽  
pp. 1-11 ◽  
Author(s):  
Mohit Parekh ◽  
Bert Van den Bogerd ◽  
Nadia Zakaria ◽  
Diego Ponzin ◽  
Stefano Ferrari

Purpose. To investigate the biocompatibility of fish scale-derived scaffolds (FSS) with primary human corneal endothelial cells (HCEnCs). Methods. HCEnCs were isolated from 30 donor corneas in a donor-matched study and plated in precoated Lab-Tek slides (n=15) and FSS (n=15). Cell morphology, proliferation/migration, and glucose uptake were studied (n=30). Hoechst, ethidium homodimer, and calcein AM (HEC) staining was performed to determine viability and toxicity (n=6). The cell surface area was calculated based on calcein AM staining. HCEnCs were stained for ZO-1 (n=6) to detect tight junctions and to measure cell morphology; Ki-67 (n=6) to measure proliferating cells; and vinculin to quantify focal adhesions (n=6). The formation of de novo extracellular matrix was analyzed using histology (n=6). Results. HCEnCs attach and grow faster on Lab-Tek slides compared to the undulating topography of the FSS. At day 11, HCEnCs on Lab-Tek slide grew 100% confluent, while FSS was only 65% confluent (p=0.0883), with no significant difference in glucose uptake between the two (p=0.5181) (2.2 μg/mL in Lab-Tek versus 2.05 μg/mL in FSS). HEC staining showed no toxicity. The surface area of the cells in Lab-Tek was 409.1 μm2 compared to 452.2 μm2 on FSS, which was not significant (p=0.5325). ZO-1 showed the presence of tight junctions in both conditions; however, hexagonality was higher (74% in Lab-Tek versus 45% in FSS; p=0.0006) with significantly less polymorphic cells on Lab-Tek slides (8% in Lab-Tek versus 16% in FSS; p=0.0041). Proliferative cells were detected in both conditions (4.6% in Lab-Tek versus 4.2% in FSS; p=0.5922). Vinculin expression was marginally higher in HCEnCs cultured on Lab-Tek (234 versus 199 focal adhesions; p=0.0507). Histological analysis did not show the formation of a basement membrane. Conclusions. HCEnCs cultured on precoated FSS form a monolayer, displaying correct morphology, cytocompatibility, and absence of toxicity. FSS needs further modification in terms of structure and surface chemistry before considering it as a potential carrier for cultured HCEnCs.


1994 ◽  
Vol 232 (10) ◽  
pp. 608-613 ◽  
Author(s):  
Walter Noske ◽  
Béatrice Levarlet ◽  
Klaus Martin Kreusel ◽  
Michael Fromm ◽  
Michel Hirsch

Antioxidants ◽  
2018 ◽  
Vol 7 (12) ◽  
pp. 180 ◽  
Author(s):  
Matthew Lovatt ◽  
Khadijah Adnan ◽  
Gary Peh ◽  
Jodhbir Mehta

The inner layer of the cornea, the corneal endothelium, is post-mitotic and unable to regenerate if damaged. The corneal endothelium is one of the most transplanted tissues in the body. Fuchs’ endothelial corneal dystrophy (FECD) is the leading indication for corneal endothelial transplantation. FECD is thought to be an age-dependent disorder, with a major component related to oxidative stress. Prdx6 is an antioxidant with particular affinity for repairing peroxidised cell membranes. To address the role of Prdx6 in corneal endothelial cells, we used a combination of biochemical and functional studies. Our data reveal that Prdx6 is expressed at unusually high levels at the plasma membrane of corneal endothelial cells. RNAi-mediated knockdown of Prdx6 revealed a role for Prdx6 in lipid peroxidation. Furthermore, following induction of oxidative stress with menadione, Prdx6-deficient cells had defective mitochondrial membrane potential and were more sensitive to cell death. These data reveal that Prdx6 is compartmentalised in corneal endothelial cells and has multiple functions to preserve cellular integrity.


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