Open access · CC-BY
via OpenAlex
Naturally Secreted Amyloid-β Increases Mammalian Target of Rapamycin (mTOR) Activity via a PRAS40-mediated Mechanism
Antonella Caccamo, Mónica A. Maldonado, Smita Majumder, David X. Medina, Walter W. Holbein, Andrea Magrì, Salvatore Oddo
Journal of Biological Chemistry · 2011 · ▲ 171 citations
Deregulated nutrient-sensing
Altered intercellular communication
Rapamycin / mTOR inhibition
Cell culture / in vitro
Mouse
Abstract
Reducing the mammalian target of mTOR(definition)-inhibiting drug studied for extending healthspan and lifespan." style="text-decoration:underline dotted; text-underline-offset:2px; cursor:help;">rapamycin(definition) (mTOR) activity increases lifespan and health span in a variety of organisms. Alterations in protein homeostasis and mTOR activity and signaling have been reported in several neurodegenerative disorders, including Alzheimer disease (AD); however, the causes of such deregulations remain elusive. Here, we show that mTOR activity and signaling are increased in cell lines stably transfected with mutant amyloid precursor protein (APP) and in brains of 3xTg-AD mice, an animal model of AD. In addition, we show that in the 3xTg-AD mice, mTOR activity can be reduced to wild type levels by genetically preventing Aβ accumulation. Similarly, intrahippocampal injections of an anti-Aβ antibody reduced Aβ levels and normalized mTOR activity, indicating that high Aβ levels are necessary for mTOR hyperactivity in 3xTg-AD mice. We also show that the intrahippocampal injection of naturally secreted Aβ is sufficient to increase mTOR signaling in the brains of wild type mice. The mechanism behind the Aβ-induced mTOR hyperactivity is mediated by the proline-rich Akt substrate 40 (PRAS40) as we show that the activation of PRAS40 plays a key role in the Aβ-induced mTOR hyperactivity. Taken together, our data show that Aβ accumulation, which has been suggested to be the culprit of AD pathogenesis, causes mTOR hyperactivity by regulating PRAS40 phosphorylation. These data further indicate that the mTOR pathway is one of the pathways by which Aβ exerts its toxicity and further support the idea that reducing mTOR signaling in AD may be a valid therapeutic approach.
◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:
Provenance
- Source
- OpenAlex
- DOI
- 10.1074/jbc.m110.180638
- Canonical
- link ↗
- Fetched
- 2026-06-13 MST
Cite this
APA
Caccamo, A., Maldonado, M.A., Majumder, S., Medina, D.X., Holbein, W.W., Magrì, A., & Oddo, S. (2011). Naturally Secreted Amyloid-β Increases Mammalian Target of Rapamycin (mTOR) Activity via a PRAS40-mediated Mechanism. <em>Journal of Biological Chemistry</em>. https://doi.org/10.1074/jbc.m110.180638
Vancouver
Caccamo A, Maldonado MA, Majumder S, Medina DX, Holbein WW, Magrì A, et al. Naturally Secreted Amyloid-β Increases Mammalian Target of Rapamycin (mTOR) Activity via a PRAS40-mediated Mechanism. Journal of Biological Chemistry. 2011. doi:10.1074/jbc.m110.180638.
BibTeX
@article{antonella2011Natura,
title = {Naturally Secreted Amyloid-β Increases Mammalian Target of Rapamycin (mTOR) Activity via a PRAS40-mediated Mechanism},
author = {Antonella Caccamo and Mónica A. Maldonado and Smita Majumder and David X. Medina and Walter W. Holbein and Andrea Magrì and Salvatore Oddo},
journal = {Journal of Biological Chemistry},
year = {2011},
doi = {10.1074/jbc.m110.180638},
}
Research neighborhood
References, citing works, and semantically nearest findings. Click a node to open it.
Related findings
PLoS ONE 2010
Open access · CC-BY
Inhibition of mTOR by Rapamycin Abolishes Cognitive Deficits and Reduces Amyloid-β Levels in a Mouse Model of Alzheimer's Disease
PLoS ONE 2010
Open access · CC-BY
Dysregulation of the mTOR Pathway Mediates Impairment of Synaptic Plasticity in a Mouse Model of Alzheimer's Disease
Scientific Reports 2018
Open access · CC-BY
Premature recruitment of oocyte pool and increased mTOR activity in Fmr1 knockout mice and reversal of phenotype with rapamycin
PLoS ONE 2011
Open access · CC-BY
Autophagy Impairment Induces Premature Senescence in Primary Human Fibroblasts
Aging 2009
Open access · CC-BY
Inhibition of mammalian S6 kinase by resveratrol suppresses autophagy
Drug Design Development and Therapy 2023
Open access · CC-BY