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Updated: Jun 12, 2026

A11-positive β-amyloid Oligomer Preparation and Assessment Using Dot Blotting Analysis
Published on: May 22, 2018
Rapamycin promotes beta-amyloid production via ADAM-10 inhibition
Sheqing Zhang1, Jon Salemi, Hauyan Hou
1Rashid Laboratory for Developmental Neurobiology, Silver Child Development Center, College of Medicine, University of South Florida, Tampa, FL 33613, USA.
Abstract:
Rapamycin is a well known immunosuppressant drug for rejection prevention in organ transplantation. Numerous clinical trials using rapamycin analogs, involving both children and adults with various disorders are currently ongoing worldwide. Most recently, rapamycin gained much attention for what appears to be life-span extending properties when administered to mice. The risk for Alzheimer disease (AD) is strongly and positively correlated with advancing age and is characterized by deposition of beta-amyloid peptides (Abeta) as senile plaques in the brain. We report that rapamycin (2.5muM), significantly increases Abeta generation in murine neuron-like cells (N2a) transfected with the human "Swedish" mutant amyloid precursor protein (APP). In concert with these observations, we found rapamycin significantly decreases the neuroprotective amino-terminal APP (amyloid precursor protein) cleavage product, soluble APP-alpha (sAPP-alpha) while increasing production of the beta-carboxyl-terminal fragment of APP (beta-CTF). These cleavage events are associated with decreased activation of a disintegrin and metallopeptidase domain-10 (ADAM-10), an important candidate alpha-secretase which opposes Abeta generation. To validate these findings in vivo, we intraperitoneal (i.p.) injected Tg2576 Abeta-overproducing transgenic mice with rapamycin (3mg/kg/day) for 2weeks. We found increased Abeta levels associated with decreased sAPP-alpha at an average rapamycin plasma concentration of 169.7+/-23.5ng/mL by high performance liquid chromatography (HPLC). These data suggest that although rapamycin may increase the lifespan in some mouse models, it may not decrease the risk for age-associated neurodegenerative disorders such as AD.
Insights
Rapamycin, known for immunosuppression and potential life extension in mice, may increase beta-amyloid generation, a hallmark of Alzheimer disease (AD). This study suggests rapamycin might not reduce AD risk despite its lifespan benefits.
Area of Science:
- Neuroscience
- Pharmacology
- Gerontology
Background:
- Rapamycin is an immunosuppressant used in organ transplantation and is being investigated for life-extension properties.
- Alzheimer disease (AD) risk increases with age and is characterized by beta-amyloid peptide (Abeta) plaque deposition in the brain.
Purpose of the Study:
- To investigate the effect of rapamycin on Abeta generation and related molecular pathways in Alzheimer disease models.
- To determine if rapamycin's potential lifespan-extending properties translate to a reduced risk for neurodegenerative disorders like AD.
Main Methods:
- Murine neuron-like cells (N2a) expressing the Swedish mutant amyloid precursor protein (APP) were treated with rapamycin.
- In vivo studies involved intraperitoneal injection of rapamycin into Tg2576 Abeta-overproducing transgenic mice.
- Abeta levels, soluble APP-alpha (sAPP-alpha), beta-carboxyl-terminal fragment of APP (beta-CTF), and ADAM-10 activity were measured.
Main Results:
- Rapamycin significantly increased Abeta generation in vitro and in vivo.
- Rapamycin decreased the production of neuroprotective sAPP-alpha and increased beta-CTF.
- A decrease in the activation of ADAM-10, an alpha-secretase, was observed, correlating with increased Abeta.
Conclusions:
- Rapamycin treatment increases Abeta generation and alters APP processing pathways, suggesting a potential increase in AD risk.
- Despite potential lifespan benefits in some models, rapamycin may not be beneficial for preventing age-associated neurodegenerative diseases like Alzheimer disease.
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