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Updated: Jan 27, 2026

Intranasal Administration of CNS Therapeutics to Awake Mice
Published on: April 8, 2013
Rapamycin administration is not a valid therapeutic strategy for every case of mitochondrial disease
Eliana Barriocanal-Casado1, Agustín Hidalgo-Gutiérrez1, Nuno Raimundo2
1Departamento de Fisiología, Facultad de Medicina, Universidad de Granada, 18016 Granada, Spain; Instituto de Biotecnología, Centro de Investigación Biomédica, Universidad de Granada, 18016 Granada, Spain.
Background:
The vast majority of mitochondrial disorders have limited the clinical management to palliative care. Rapamycin has emerged as a potential therapeutic drug for mitochondrial diseases since it has shown therapeutic benefits in a few mouse models of mitochondrial disorders. However, the underlying therapeutic mechanism is unclear, the minimal effective dose needs to be defined and whether this therapy can be generally used is unknown.
Methods:
We have evaluated whether low and high doses of rapamycin administration may result in therapeutic effects in a mouse model (Coq9R239X) of mitochondrial encephalopathy due to CoQ deficiency. The evaluation involved phenotypic, molecular, image (histopathology and MRI), metabolomics, transcriptomics and bioenergetics analyses.
Findings:
Low dose of rapamycin induces metabolic changes in liver and transcriptomics modifications in midbrain. The high dose of rapamycin induces further changes in the transcriptomics profile in midbrain due to the general inhibition of mTORC1. However, neither low nor high dose of rapamycin were able to improve the mitochondrial bioenergetics, the brain injuries and the phenotypic characteristics of Coq9R239X mice, resulting in the lack of efficacy for increasing the survival.
Interpretation:
These results may be due to the lack of microgliosis-derived neuroinflammation, the limitation to induce autophagy, or the need of a functional CoQ-junction. Therefore, the translation of rapamycin therapy into the clinic for patients with mitochondrial disorders requires, at least, the consideration of the particularities of each mitochondrial disease. FUND: Supported by the grants from "Fundación Isabel Gemio - Federación Española de Enfermedades Neuromusculares - Federación FEDER" (TSR-1), the NIH (P01HD080642) and the ERC (Stg-337327).
Insights
Rapamycin did not improve survival or symptoms in a mouse model of mitochondrial disease, despite causing some molecular changes. Further research is needed to understand its potential for treating mitochondrial disorders.
Area of Science:
- Biochemistry
- Genetics
- Neuroscience
Background:
- Mitochondrial disorders often lack effective treatments beyond palliative care.
- Rapamycin shows promise for mitochondrial diseases, but its mechanism, optimal dose, and general applicability are unknown.
Purpose of the Study:
- To evaluate the therapeutic effects of low and high doses of rapamycin in a mouse model of mitochondrial encephalopathy (Coq9R239X).
- To investigate the underlying mechanisms of rapamycin's efficacy or lack thereof in this model.
Main Methods:
- Phenotypic, molecular, imaging (histopathology, MRI), metabolomic, transcriptomic, and bioenergetic analyses were performed.
- Rapamycin was administered at low and high doses to Coq9R239X mice.
Main Results:
- Low-dose rapamycin induced metabolic and transcriptomic changes; high-dose rapamycin further altered midbrain transcriptomics via mTORC1 inhibition.
- Neither dose improved mitochondrial bioenergetics, brain injury, or survival in the Coq9R239X mouse model.
Conclusions:
- Rapamycin therapy's clinical translation for mitochondrial disorders needs to consider disease-specific factors like neuroinflammation and autophagy.
- The lack of efficacy may stem from insufficient autophagy induction or the requirement for a functional CoQ-junction.
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