[HTML][HTML] Inhibition of mTOR by rapamycin abolishes cognitive deficits and reduces amyloid-β levels in a mouse model of Alzheimer's disease

P Spilman, N Podlutskaya, MJ Hart, J Debnath… - PloS one, 2010 - journals.plos.org
P Spilman, N Podlutskaya, MJ Hart, J Debnath, O Gorostiza, D Bredesen, A Richardson
PloS one, 2010journals.plos.org
Background Reduced TOR signaling has been shown to significantly increase lifespan in a
variety of organisms,,,. It was recently demonstrated that long-term treatment with rapamycin,
an inhibitor of the mTOR pathway, or ablation of the mTOR target p70S6K extends lifespan
in mice, possibly by delaying aging. Whether inhibition of the mTOR pathway would delay or
prevent age-associated disease such as AD remained to be determined.
Methodology/Principal Findings We used rapamycin administration and behavioral tools in a …
Background
Reduced TOR signaling has been shown to significantly increase lifespan in a variety of organisms , , , . It was recently demonstrated that long-term treatment with rapamycin, an inhibitor of the mTOR pathway, or ablation of the mTOR target p70S6K extends lifespan in mice, possibly by delaying aging. Whether inhibition of the mTOR pathway would delay or prevent age-associated disease such as AD remained to be determined.
Methodology/Principal Findings
We used rapamycin administration and behavioral tools in a mouse model of AD as well as standard biochemical and immunohistochemical measures in brain tissue to provide answers for this question. Here we show that long-term inhibition of mTOR by rapamycin prevented AD-like cognitive deficits and lowered levels of Aβ42, a major toxic species in AD, in the PDAPP transgenic mouse model. These data indicate that inhibition of the mTOR pathway can reduce Aβ42 levels in vivo and block or delay AD in mice. As expected from the inhibition of mTOR, autophagy was increased in neurons of rapamycin-treated transgenic, but not in non-transgenic, PDAPP mice, suggesting that the reduction in Aβ and the improvement in cognitive function are due in part to increased autophagy, possibly as a response to high levels of Aβ.
Conclusions/Significance
Our data suggest that inhibition of mTOR by rapamycin, an intervention that extends lifespan in mice, can slow or block AD progression in a transgenic mouse model of the disease. Rapamycin, already used in clinical settings, may be a potentially effective therapeutic agent for the treatment of AD.
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