Dose-dependent effects of mTOR inhibition on weight and mitochondrial disease in mice

Simon C Johnson1, Melana E Yanos2, Alessandro Bitto3

  • 1Department of Pathology, University of Washington Seattle, WA, USA ; Department of Genetics, Albert Einstein College of Medicine New York, NY, USA.

Frontiers in Genetics
|August 11, 2015
PubMed

Insights

Higher oral doses of rapamycin significantly improve health and survival in a mouse model of mitochondrial disease, suggesting current standard doses may be suboptimal for targeting mTOR signaling.

Area of Science:

  • Gerontology
  • Pharmacology
  • Mitochondrial Biology

Background:

  • Rapamycin extends lifespan and treats age-related diseases in mice at 14 ppm via diet.
  • Previous studies showed daily rapamycin injections (8 mg/kg) improved Ndufs4 knockout mice with Leigh Syndrome.
  • Optimal rapamycin dosage for systemic mTOR targeting in mice remains unestablished.

Purpose of the Study:

  • To determine if higher oral rapamycin doses yield a more significant impact on mTOR-driven parameters.
  • To establish a dose-response profile for oral rapamycin in mice.
  • To evaluate rapamycin's efficacy in the Ndufs4 knockout mouse model of Leigh Syndrome.

Main Methods:

  • Comparison of dietary rapamycin doses (14–378 PPM) in control and Ndufs4 knockout mice.
  • Assessment of developmental weight, health, and survival in Ndufs4 knockout mice.
  • Evaluation of rapamycin's tolerability and adverse effects at high doses.

Main Results:

  • High-dose oral rapamycin was well tolerated and reduced developmental weight gain, overcoming gender differences.
  • The highest dose (approx. 27x lifespan-extending dose) significantly increased Ndufs4 knockout mouse survival.
  • Survival outcomes with high-dose oral rapamycin mirrored those of daily injections without adverse effects.

Conclusions:

  • Current standard dietary rapamycin (14 PPM) may be sub-optimal for systemic mTOR targeting in mice.
  • Higher oral rapamycin doses show promise for treating mitochondrial diseases and have broad implications for murine studies.
  • The role of mTOR in mammalian biology might be underestimated at commonly used rapamycin doses.