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Induction and Analysis of Oxidative Stress in Sleeping Beauty Transposon-Transfected Human Retinal Pigment Epithelial Cells
Published on: December 11, 2020
A Vicious NGF-p75NTR Positive Feedback Loop Exacerbates the Toxic Effects of Oxidative Damage in the Human Retinal
Giuseppe Tringali1, Michela Pizzoferrato1, Lucia Lisi1
1Section of Pharmacology, Department of Healthcare Surveillance and Bioethics, Catholic University Medical School, Fondazione Policlinico Universitario A. Gemelli IRCCS, 00168 Rome, Italy.
Abstract:
In spite of its variety of biological activities, the clinical exploitation of human NGF (hNGF) is currently limited to ocular pathologies. It is therefore interesting to test the effects of hNGF in preclinical models that may predict their efficacy and safety in the clinical setting of ocular disorders and compare the effects of hNGF with those of its analogs. We used a human retinal pigment cell line, ARPE-19 cells, to investigate the effects of hNGF and its analogs, mouse NGF (mNGF) and painless NGF (pNGF), on cell viability under basal conditions and after exposure to oxidative stimuli, i.e., hydrogen peroxide (H2O2) and ultraviolet (UV)-A rays. The effects of hNGF and pNGF were also tested on the gene expression and protein synthesis of the two NGF receptor subtypes, p75 neurotrophic receptors (p75NTR) and tyrosine kinase A (TrkA) receptors. We drew the following conclusions: (i) the exposure of ARPE-19 cells to H2O2 or UV-A causes a dose-dependent decrease in the number of viable cells; (ii) under baseline conditions, hNGF, but not pNGF, causes a concentration-dependent decrease in cell viability in the range of doses 1-100 ng/mL; (iii) hNGF, but not pNGF, significantly potentiates the toxic effects of H2O2 or of UV-A on ARPE-19 cells in the range of doses 1-100 ng/mL, while mNGF at the same doses presents an intermediate behavior; (iv) 100 ng/mL of hNGF triggers an increase in p75NTR expression in H2O2-treated ARPE-19 cells, while pNGF at the same dose does not; (v) pNGF, but not hNGF (both given at 100 ng/mL), increases the total cell fluorescence intensity for TrkA receptors in H2O2-treated ARPE-19 cells. The present findings suggest a vicious positive feedback loop through which NGF-mediated upregulation of p75NTR contributes to worsening the toxic effects of oxidative damage in the human retinal epithelial cell line ARPE-19. Looking at the possible clinical relevance of these findings, one can postulate that pNGF might show a better benefit/risk ratio than hNGF in the treatment of ocular disorders.
Insights
Human nerve growth factor (hNGF) can worsen oxidative damage in retinal cells, unlike its analog pNGF. These findings suggest pNGF may offer a better safety profile for treating ocular disorders.
Area of Science:
- Ophthalmology
- Neuroscience
- Cell Biology
Background:
- Human nerve growth factor (hNGF) has diverse biological activities, but its clinical use is restricted to ocular conditions.
- Preclinical models are crucial for evaluating the efficacy and safety of hNGF and its analogs in ocular disorders.
Purpose of the Study:
- To investigate the effects of hNGF and its analogs (mNGF, pNGF) on retinal pigment ARPE-19 cell viability under basal and oxidative stress conditions.
- To compare the impact of hNGF and pNGF on the expression of NGF receptor subtypes (p75NTR and TrkA).
Main Methods:
- ARPE-19 cells were exposed to hydrogen peroxide (H2O2) or UV-A radiation.
- Cell viability was assessed after treatment with varying concentrations of hNGF, mNGF, and pNGF.
- Gene expression and protein synthesis of p75NTR and TrkA receptors were analyzed.
Main Results:
- Oxidative stimuli (H2O2, UV-A) reduced ARPE-19 cell viability in a dose-dependent manner.
- hNGF decreased cell viability and potentiated oxidative damage, while pNGF did not show these effects.
- hNGF increased p75NTR expression, whereas pNGF increased TrkA receptor expression under oxidative stress.
Conclusions:
- hNGF may exacerbate oxidative damage in retinal cells via a positive feedback loop involving p75NTR upregulation.
- pNGF demonstrates a potentially more favorable benefit/risk profile compared to hNGF for ocular disorder treatment.
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