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Published on: September 30, 2015
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.
Abstract:
Mitochondrial encephalopathies are fatal, infantile neurodegenerative disorders caused by a deficit of mitochondrial functioning, for which there is urgent need to identify efficacious pharmacological treatments. Recent evidence shows that rapamycin administered both intraperitoneally or in the diet delays disease onset and enhances survival in the Ndufs4 null mouse model of mitochondrial encephalopathy. To delineate the clinical translatability of rapamycin in treatment of mitochondrial encephalopathy, we evaluated the drug's effects on disease evolution and mitochondrial parameters adopting treatment paradigms with fixed daily, oral doses starting at symptom onset in Ndufs4 knockout mice. Molecular mechanisms responsible for the pharmacodynamic effects of rapamycin were also evaluated. We found that rapamycin did not affect disease development at clinically-relevant doses (0.5 mg kg-1). Conversely, an oral dose previously adopted for intraperitoneal administration (8 mg kg-1) delayed development of neurological symptoms and increased median survival by 25%. Neurological improvement and lifespan were not further increased when the dose raised to 20 mg kg-1. Notably, rapamycin at 8 mg kg-1 did not affect the reduced expression of respiratory complex subunits, as well as mitochondrial number and mtDNA content. This treatment regimen however significantly ameliorated architecture of mitochondria cristae in motor cortex and cerebellum. However, reduction of mTOR activity by rapamycin was not consistently found within the brain of knockout mice. Overall, data show the ability of rapamycin to improve ultrastructure of dysfunctional mitochondria and corroborate its therapeutic potential in mitochondrial disorders. The non-clinical standard doses required, however, raise concerns about its rapid and safe clinical transferability.
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.

