The mammalian target of rapamycin (mTOR) kinase mediates haloperidol-induced cataleptic behavior
Uri Nimrod Ramírez-Jarquín1, Neelam Shahani1, William Pryor1
1Department of Neuroscience, The Scripps Research Institute, Florida, Jupiter, Florida, 33458, USA.
Abstract:
The mammalian target of rapamycin (mTOR) is a ubiquitously expressed serine/threonine kinase protein complex (mTORC1 or mTORC2) that orchestrates diverse functions ranging from embryonic development to aging. However, its brain tissue-specific roles remain less explored. Here, we have identified that the depletion of the mTOR gene in the mice striatum completely prevented the extrapyramidal motor side effects (catalepsy) induced by the dopamine 2 receptor (D2R) antagonist haloperidol, which is the most widely used typical antipsychotic drug. Conversely, a lack of striatal mTOR in mice did not affect catalepsy triggered by the dopamine 1 receptor (D1R) antagonist SCH23390. Along with the lack of cataleptic effects, the administration of haloperidol in mTOR mutants failed to increase striatal phosphorylation levels of ribosomal protein pS6 (S235/236) as seen in control animals. To confirm the observations of the genetic approach, we used a pharmacological method and determined that the mTORC1 inhibitor rapamycin has a profound influence upon post-synaptic D2R-dependent functions. We consistently found that pretreatment with rapamycin entirely prevented (in a time-dependent manner) the haloperidol-induced catalepsy, and pS6K (T389) and pS6 (S235/236) signaling upregulation, in wild-type mice. Collectively, our data indicate that striatal mTORC1 blockade may offer therapeutic benefits with regard to the prevention of D2R-dependent extrapyramidal motor side effects of haloperidol in psychiatric illness.
Insights
Striatal mTORC1 inhibition prevents haloperidol-induced catalepsy, a common side effect of antipsychotics. Blocking mTORC1 signaling may offer a therapeutic strategy for managing extrapyramidal motor symptoms.
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- The mammalian target of rapamycin (mTOR) pathway regulates critical cellular functions.
- Brain-specific roles of mTOR, particularly in motor control, are not fully understood.
- Extrapyramidal motor side effects, like catalepsy, are common with antipsychotic drugs targeting dopamine receptors.
Purpose of the Study:
- To investigate the role of striatal mTOR in mediating haloperidol-induced catalepsy.
- To explore the therapeutic potential of targeting mTORC1 for antipsychotic side effects.
Main Methods:
- Genetic depletion of mTOR in mouse striatum.
- Pharmacological inhibition of mTORC1 using rapamycin.
- Assessment of haloperidol-induced catalepsy and downstream signaling (pS6 phosphorylation).
Main Results:
- Striatal mTOR depletion abolished haloperidol-induced catalepsy but not catalepsy induced by a D1R antagonist.
- Haloperidol failed to increase pS6 phosphorylation in mTOR-deficient mice.
- Rapamycin pretreatment prevented haloperidol-induced catalepsy and associated signaling in wild-type mice.
Conclusions:
- Striatal mTORC1 signaling is critical for D2R-dependent extrapyramidal motor side effects.
- Targeting striatal mTORC1 may be a viable strategy to mitigate antipsychotic-induced motor dysfunction.
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