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Studying the Hypothalamic Insulin Signal to Peripheral Glucose Intolerance with a Continuous Drug Infusion System into the Mouse Brain
Published on: January 4, 2018
Metformin reduces glucose intolerance caused by rapamycin treatment in genetically heterogeneous female mice
Roxanne Weiss1,2, Elizabeth Fernandez1,2, Yuhong Liu2
1Geriatric Research, Education and Clinical Center, South Texas Veterans Health Care System, San Antonio, TX 78294, USA.
Abstract:
The use of rapamycin to extend lifespan and delay age-related disease in mice is well-established despite its potential to impair glucose metabolism which is driven partially due to increased hepatic gluconeogenesis. We tested whether a combination therapeutic approach using rapamycin and metformin could diminish some of the known metabolic defects caused by rapamycin treatment in mice. In genetically heterogeneous HET3 mice, we found that chronic administration of encapsulated rapamycin by diet caused a measurable defect in glucose metabolism in both male and female mice as early as 1 month after treatment. In female mice, this defect was alleviated over time by simultaneous treatment with metformin, also by diet, such that females treated with both drugs where indistinguishable from control mice during glucose tolerance tests. While rapamycin-mediated glucose intolerance was unaffected by metformin in males, we found metformin prevented rapamycin-mediated reduction in insulin and leptin concentrations following 9 months of co-treatment. Recently, the Interventions Testing Program showed that mice treated with metformin and rapamycin live at least as long as those treated with rapamycin alone. Together, our data provide compelling evidence that the pro-longevity effects of rapamycin can be uncoupled from its detrimental effects on metabolism through combined therapeutic approaches.
Insights
Combining rapamycin and metformin in mice shows promise for extending lifespan without metabolic side effects. Metformin alleviates rapamycin-induced glucose intolerance in females and preserves insulin levels in males, supporting combined therapeutic approaches.
Area of Science:
- Gerontology
- Metabolic research
- Pharmacology
Background:
- Rapamycin extends lifespan and delays age-related diseases in mice.
- Rapamycin can impair glucose metabolism, partly due to increased hepatic gluconeogenesis.
- Metformin is a common diabetes drug that may counteract metabolic defects.
Purpose of the Study:
- To investigate if combining rapamycin and metformin can mitigate rapamycin's metabolic side effects in mice.
- To assess the impact of combined therapy on glucose metabolism and hormone levels.
Main Methods:
- Genetically heterogeneous HET3 mice were used.
- Chronic administration of encapsulated rapamycin and metformin via diet.
- Glucose tolerance tests were performed.
- Insulin and leptin concentrations were measured after 9 months of treatment.
Main Results:
- Rapamycin caused glucose metabolism defects in both male and female mice.
- Metformin alleviated these defects in female mice over time.
- Metformin did not affect rapamycin-induced glucose intolerance in males.
- Metformin prevented rapamycin-induced reductions in insulin and leptin in males after 9 months.
- Combined treatment in mice lived as long as rapamycin alone.
Conclusions:
- The pro-longevity effects of rapamycin can be separated from its metabolic detriments through combination therapy.
- Combined rapamycin and metformin treatment offers a potential strategy to enhance longevity while managing metabolic health.
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