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Published on: September 25, 2019
Chronic rapamycin treatment causes diabetes in male mice
Christine E Schindler1, Uttara Partap1, Bonnie K Patchen1
1Department of Biology, Williams College, Williamstown, Massachusetts.
Abstract:
Current evidence indicates that the mammalian target of rapamycin inhibitor rapamycin both increases longevity and, seemingly contradictorily, impairs glucose homeostasis. Most studies exploring the dimensions of this paradox have been based on rapamycin treatment in mice for up to 20 wk. We sought to better understand the metabolic effects of oral rapamycin over a substantially longer period of time in HET3 mice. We observed that treatment with rapamycin for 52 wk induced diabetes in male mice, characterized by hyperglycemia, significant urine glucose levels, and severe glucose and pyruvate intolerance. Glucose intolerance occurred in male mice by 4 wk on rapamycin and could be only partially reversed with cessation of rapamycin treatment. Female mice developed moderate glucose intolerance over 1 yr of rapamycin treatment, but not diabetes. The role of sex hormones in the differential development of diabetic symptoms in male and female mice was further explored. HET3 mice treated with rapamycin for 52 wk were gonadectomized and monitored over 10 wk. Castrated male mice remained glucose intolerant, while ovariectomized females developed significant glucose intolerance over the same time period. Subsequent replacement of 17β-estradiol (E2) in ovariectomized females promoted a recovery of glucose tolerance over a 4-wk period, suggesting the protective role of E2 against rapamycin-induced diabetes. These results indicate that 1) oral rapamycin treatment causes diabetes in male mice, 2) the diabetes is partially reversible with cessation of treatment, and 3) E2 plays a protective role against the development of rapamycin-induced diabetes.
Insights
Rapamycin extends lifespan but impairs glucose control. Long-term rapamycin treatment in mice caused diabetes in males, with estrogen showing a protective effect in females against this metabolic dysfunction.
Area of Science:
- Gerontology
- Metabolic Research
- Endocrinology
Background:
- Rapamycin (mTOR inhibitor) extends lifespan but paradoxically impairs glucose homeostasis.
- Previous studies on rapamycin's metabolic effects were limited to shorter durations (up to 20 weeks).
Purpose of the Study:
- To investigate the long-term metabolic effects of oral rapamycin in HET3 mice.
- To explore the sex-specific differences in rapamycin-induced metabolic dysfunction.
- To elucidate the role of sex hormones in mediating these effects.
Main Methods:
- HET3 mice received oral rapamycin for 52 weeks.
- Metabolic parameters including glucose and pyruvate tolerance tests were assessed.
- Gonadectomy and hormone replacement (17β-estradiol) were performed to investigate sex hormone roles.
Main Results:
- Long-term rapamycin (52 weeks) induced diabetes in male mice (hyperglycemia, glucosuria, severe glucose/pyruvate intolerance).
- Glucose intolerance appeared early (4 weeks) in males and was partially reversible.
- Female mice developed moderate glucose intolerance, not diabetes.
- Estrogen replacement in ovariectomized females recovered glucose tolerance, indicating a protective role.
Conclusions:
- Oral rapamycin treatment for 52 weeks causes diabetes in male mice.
- Rapamycin-induced diabetes is partially reversible upon treatment cessation.
- 17β-estradiol plays a protective role against rapamycin-induced diabetes in female mice.
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