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Published on: October 3, 2011
Prolonging the survival of Tsc2 conditional knockout mice by glutamine supplementation
Natalia S Rozas1, John B Redell1, James McKenna2
1Department of Neurobiology and Anatomy, The University of Texas Medical School, Houston, TX 77225, USA.
Abstract:
The genetic disease tuberous sclerosis complex (TSC) is an autosomal dominant disorder caused by loss of function mutations in either TSC1 (hamartin) or TSC2 (tuberin), which serve as negative regulators of mechanistic target of rapamycin complex 1 (mTORC1) activity. TSC patients exhibit developmental brain abnormalities and tuber formations that are associated with neuropsychological and neurocognitive impairments, seizures and premature death. Mechanistically, TSC1 and TSC2 loss of function mutations result in abnormally high mTORC1 activity. Thus, the development of a strategy to inhibit abnormally high mTORC1 activity may have therapeutic value in the treatment of TSC. mTORC1 is a master regulator of growth processes, and its activity can be reduced by withdrawal of growth factors, decreased energy availability, and by the immunosuppressant rapamycin. Recently, glutamine has been shown to alter mTORC1 activity in a TSC1-TSC2 independent manner in cells cultured under amino acid- and serum-deprived conditions. Since starvation culture conditions are not physiologically relevant, we examined if glutamine can regulate mTORC1 in non-deprived cells and in a murine model of TSC. Our results show that glutamine can reduce phosphorylation of S6 and S6 kinase, surrogate indicators of mTORC1 activity, in both deprived and non-deprived cells, although higher concentrations were required for non-deprived cultures. When administered orally to TSC2 knockout mice, glutamine reduced S6 phosphorylation in the brain and significantly prolonged their lifespan. Taken together, these results suggest that glutamine supplementation can be used as a potential treatment for TSC.
Insights
Glutamine supplementation shows promise for treating tuberous sclerosis complex (TSC), a genetic disorder. Oral glutamine reduced key indicators of disease activity in TSC2 knockout mice and significantly extended their lifespan.
Area of Science:
- Biochemistry
- Genetics
- Neuroscience
Background:
- Tuberous sclerosis complex (TSC) is a genetic disorder caused by mutations in TSC1 or TSC2 genes.
- These mutations lead to dysregulated mechanistic target of rapamycin complex 1 (mTORC1) activity, causing developmental abnormalities and seizures.
- Current treatments for TSC are limited, highlighting the need for novel therapeutic strategies.
Purpose of the Study:
- To investigate the potential of glutamine as a therapeutic agent for TSC.
- To determine if glutamine can modulate mTORC1 activity in non-deprived cellular conditions and in a TSC mouse model.
- To assess the impact of glutamine supplementation on the lifespan and brain pathology of TSC2-deficient mice.
Main Methods:
- Utilized cell culture models and a murine model of TSC (TSC2 knockout mice).
- Assessed mTORC1 activity by measuring the phosphorylation of S6 and S6 kinase.
- Administered glutamine orally to TSC2 knockout mice and monitored lifespan and brain S6 phosphorylation.
Main Results:
- Glutamine effectively reduced mTORC1 activity indicators (S6 and S6 kinase phosphorylation) in both amino acid-deprived and non-deprived cells.
- Higher glutamine concentrations were required to achieve similar effects in non-deprived cells.
- Oral glutamine administration in TSC2 knockout mice decreased brain S6 phosphorylation and significantly prolonged survival.
Conclusions:
- Glutamine demonstrates a capacity to inhibit mTORC1 signaling, a key pathway implicated in TSC.
- Glutamine supplementation represents a potential therapeutic strategy for tuberous sclerosis complex.
- Further research into glutamine's efficacy and safety for TSC treatment is warranted.

