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.

Neuropharmacology
|August 2, 2025
PubMed

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.