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Real-Time Analysis of Bioenergetics in Primary Human Retinal Pigment Epithelial Cells Using High-Resolution Respirometry
Published on: February 3, 2023
Methylphenidate triggers retinal oxidative stress and mitochondrial dysfunction under physiological conditions but
Eliane S Sanches1, Ricardo A Leitão2, Filipa I Baptista1
1University of Coimbra, Institute of Pharmacology and Experimental Therapeutics, Faculty of Medicine, Coimbra, Portugal; University of Coimbra, Coimbra Institute for Clinical and Biomedical Research (iCBR), Faculty of Medicine, Coimbra, Portugal; University of Coimbra, Center for Innovative Biomedicine and Biotechnology (CIBB), Coimbra, Portugal; Clinical Academic Center of Coimbra (CACC), Coimbra, Portugal.
Abstract:
Methylphenidate (MPH) is widely used as the first-line pharmacological treatment for attention-deficit/hyperactivity disorder (ADHD). However, its misuse as a cognitive enhancer has been increasing worldwide. Despite the scientific advances in understanding the effects of MPH on the brain, its impact on the retina, which shares the same embryonic origin with the brain, remains poorly understood. In the present study, primary retinal neural cell cultures were exposed to MPH (0.1-1 mM) alone or to MPH after an inflammatory stimulus (lipopolysaccharide; LPS, 1 μg/ml). Additionally, male Wistar Kyoto rats (WKY, control rats) and Spontaneously Hypertensive rats (SHR, ADHD model) were orally treated with MPH (1.5 mg/kg/day, P28-57). MPH (0.1 mM) preserved retinal cell viability but induced oxidative stress through NOX2 and PI3K/AKT/DRP1 signaling activation and mitochondrial dysfunction. This was evidenced by a decrease in the mitochondria number, increased fragmentation, impaired membrane potential, reduced oxygen consumption rate, and shifted metabolism towards a glycolytic metabolic profile. Under an inflammatory environment, MPH enhanced antioxidant defenses, decreased oxidative stress and intracellular calcium levels, and improved mitochondrial structure and function. These contrasting effects were corroborated in animal studies, where MPH treatment reduced oxidative stress and improved mitochondrial function in the ADHD model, despite having detrimental effects in control rats. Our findings uncover a novel mechanism through which MPH affects retinal cells via NOX2/PI3K/AKT/DRP1 signaling and mitochondrial alterations. Moreover, MPH demonstrates a context-dependent effect, yielding detrimental outcomes under physiological conditions but beneficial effects in inflammatory settings. These results provide new insights into both MPH's therapeutic potential and misuse-associated risks.
Insights
Methylphenidate (MPH) harms retinal cells under normal conditions but benefits them during inflammation, impacting mitochondrial function and oxidative stress. This highlights context-dependent effects and risks associated with MPH misuse.
Area of Science:
- Neuroscience
- Ophthalmology
- Pharmacology
Background:
- Methylphenidate (MPH) is a primary treatment for attention-deficit/hyperactivity disorder (ADHD).
- MPH misuse as a cognitive enhancer is rising globally.
- The retina's response to MPH, despite its shared embryonic origin with the brain, is not well understood.
Purpose of the Study:
- To investigate the effects of MPH on retinal neural cells and mitochondrial function.
- To explore MPH's impact in both physiological and inflammatory conditions.
- To elucidate the underlying signaling pathways involved in MPH's retinal effects.
Main Methods:
- Primary retinal neural cell cultures were treated with MPH alone or after lipopolysaccharide (LPS) stimulation.
- In vivo studies involved oral MPH administration to control rats (WKY) and an ADHD model (SHR).
- Evaluated cell viability, oxidative stress markers, mitochondrial function (number, membrane potential, oxygen consumption), and signaling pathways (NOX2, PI3K/AKT/DRP1).
Main Results:
- Low-dose MPH (0.1 mM) preserved cell viability but induced oxidative stress and mitochondrial dysfunction in normal conditions.
- MPH activated NOX2 and PI3K/AKT/DRP1 signaling, leading to mitochondrial fragmentation and altered metabolism.
- In inflammatory settings, MPH enhanced antioxidant defenses, reduced oxidative stress, and improved mitochondrial function.
- Animal studies showed MPH reduced oxidative stress and improved mitochondrial function in ADHD models but had detrimental effects in controls.
Conclusions:
- MPH exhibits context-dependent effects on retinal cells, causing harm under physiological conditions but offering protection during inflammation.
- A novel mechanism involving NOX2/PI3K/AKT/DRP1 signaling and mitochondrial alterations mediates MPH's retinal impact.
- Findings provide crucial insights into MPH's therapeutic potential and the risks associated with its misuse.
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