Post onset, oral rapamycin treatment delays development of mitochondrial encephalopathy only at supramaximal doses

Roberta Felici1, Daniela Buonvicino1, Mirko Muzzi1

  • 1Department of Health Sciences, Section of Clinical Pharmacology and Oncology, University of Florence, Viale G. Pieraccini 6, 50139, Florence, Italy.

Neuropharmacology
|February 6, 2017
PubMed

Insights

High-dose rapamycin improved mitochondrial structure and extended survival in a mouse model of mitochondrial encephalopathy. Lower doses were ineffective, raising concerns for clinical use.

Area of Science:

  • Neuroscience
  • Mitochondrial Biology
  • Pharmacology

Background:

  • Mitochondrial encephalopathies are fatal infantile neurodegenerative disorders.
  • Effective pharmacological treatments are urgently needed.
  • Rapamycin has shown promise in delaying disease onset and enhancing survival in a mouse model.

Purpose of the Study:

  • To evaluate the clinical translatability of rapamycin for mitochondrial encephalopathy.
  • To assess rapamycin's effects on disease progression and mitochondrial parameters using oral dosing in Ndufs4 knockout mice.
  • To investigate the molecular mechanisms underlying rapamycin's effects.

Main Methods:

  • Oral administration of varying rapamycin doses (0.5, 8, and 20 mg/kg) to Ndufs4 knockout mice starting at symptom onset.
  • Evaluation of disease development, neurological symptoms, survival rates, mitochondrial parameters (respiratory complex subunits, mitochondrial number, mtDNA content), and mitochondrial ultrastructure.
  • Assessment of mTOR activity in the brain.

Main Results:

  • Clinically-relevant doses (0.5 mg/kg) of rapamycin did not impact disease development.
  • An 8 mg/kg oral dose delayed neurological symptoms and increased median survival by 25%, with no further benefit at 20 mg/kg.
  • Rapamycin (8 mg/kg) improved mitochondrial cristae architecture but did not alter respiratory complex subunit expression, mitochondrial number, or mtDNA content.
  • mTOR activity reduction in the brain was inconsistent.

Conclusions:

  • Rapamycin demonstrates potential for treating mitochondrial disorders by improving mitochondrial ultrastructure.
  • Higher, non-clinical doses are required, posing challenges for safe and rapid clinical translation.
  • Further research is needed to optimize rapamycin dosing and delivery for therapeutic efficacy.

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