The genetic toxicology of methylphenidate hydrochloride in non-human primates

Suzanne M Morris1, Vasily N Dobrovolsky, Joseph G Shaddock

  • 1Division of Genetic and Reproductive Toxicology, National Center for Toxicological Research, US Food and Drug Administration, 3900 NCTR Road, Jefferson, AR 72079, United States. suzanne.morris@fda.hhs.gov

Mutation Research
|January 13, 2009
PubMed

Insights

This study assessed the genetic toxicity of methylphenidate hydrochloride (MPH) in rhesus monkeys over 20 months. Results showed no significant increase in genetic damage, indicating MPH is not genotoxic in non-human primates at tested doses.

Area of Science:

  • Pharmacology
  • Toxicology
  • Genetics

Background:

  • Methylphenidate hydrochloride (MPH) is widely prescribed for ADHD.
  • Long-term genetic toxicity data in non-human primates (NHP) are crucial for safety assessment.
  • Chronic exposure studies are needed to understand potential risks.

Purpose of the Study:

  • To evaluate the long-term genetic toxicity of MPH in male rhesus monkeys.
  • To assess MPH's genotoxic potential under a chronic, high-dose regimen.
  • To determine if MPH causes DNA damage or chromosomal abnormalities.

Main Methods:

  • Oral administration of MPH (0.15-12.5 mg/kg/day) or control for 20 months in rhesus monkeys.
  • Monthly monitoring of MPH and ritalinic acid serum levels.
  • Assessment of micronucleated erythrocytes (MN-RETs), HPRT mutations, and chromosome aberrations.

Main Results:

  • Plasma MPH levels in treated animals were comparable to pediatric therapeutic doses.
  • No significant increases in MN-RETs, HPRT mutants, or chromosome aberrations were observed.
  • Hematology and serum chemistry parameters remained within normal limits, except for transient alanine amino transferase changes.

Conclusions:

  • Chronic oral administration of MPH did not induce significant genetic toxicity in male rhesus monkeys.
  • The study supports a favorable genetic safety profile for MPH in NHP under long-term exposure.
  • Findings suggest MPH is unlikely to pose a genotoxic risk at clinically relevant exposure levels.

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