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1.
PLoS One ; 3(4): e1961, 2008 Apr 09.
Article in English | MEDLINE | ID: mdl-18398477

ABSTRACT

Recent studies have demonstrated the importance of local protein synthesis for neuronal plasticity. In particular, local mRNA translation through the mammalian target of rapamycin (mTOR) has been shown to play a key role in regulating dendrite excitability and modulating long-term synaptic plasticity associated with learning and memory. There is also increased evidence to suggest that intact adult mammalian axons have a functional requirement for local protein synthesis in vivo. Here we show that the translational machinery is present in some myelinated sensory fibers and that active mTOR-dependent pathways participate in maintaining the sensitivity of a subpopulation of fast-conducting nociceptors in vivo. Phosphorylated mTOR together with other downstream components of the translational machinery were localized to a subset of myelinated sensory fibers in rat cutaneous tissue. We then showed with electromyographic studies that the mTOR inhibitor rapamycin reduced the sensitivity of a population of myelinated nociceptors known to be important for the increased mechanical sensitivity that follows injury. Behavioural studies confirmed that local treatment with rapamycin significantly attenuated persistent pain that follows tissue injury, but not acute pain. Specifically, we found that rapamycin blunted the heightened response to mechanical stimulation that develops around a site of injury and reduced the long-term mechanical hypersensitivity that follows partial peripheral nerve damage--a widely used model of chronic pain. Our results show that the sensitivity of a subset of sensory fibers is maintained by ongoing mTOR-mediated local protein synthesis and uncover a novel target for the control of long-term pain states.


Subject(s)
Electromyography/methods , Neurons, Afferent/physiology , Nociceptors/metabolism , Animals , Electrophysiology/methods , Male , Neuronal Plasticity , Pain Management , Pain Measurement , Phosphorylation , Protein Kinases/metabolism , RNA, Messenger/metabolism , Rats , Rats, Sprague-Dawley , Sensitivity and Specificity , TOR Serine-Threonine Kinases
2.
Eur J Neurosci ; 18(7): 1828-36, 2003 Oct.
Article in English | MEDLINE | ID: mdl-14622216

ABSTRACT

It has previously been shown that chronic treatment with antidepressant drugs increases neurogenesis and levels of brain-derived neurotrophic factor in the hippocampus. These changes have been correlated with changes in learning and long-term potentiation and may contribute to the therapeutic efficacy of antidepressant drug treatment. Recently, antagonists at the neurokinin-1 receptor, the preferred receptor for the neuropeptide substance P, have been shown to have antidepressant activity. Mice with disruption of the neurokinin-1 receptor gene are remarkably similar both behaviourally and neurochemically to mice maintained chronically on antidepressant drugs. We demonstrate here that there is a significant elevation of neurogenesis but not cell survival in the hippocampus of neurokinin-1 receptor knockout mice. Neurogenesis can be increased in wild-type but not neurokinin-1 receptor knockout mice by chronic treatment with antidepressant drugs which preferentially target noradrenergic and serotonergic pathways. Hippocampal levels of brain-derived neurotrophic factor are also two-fold higher in neurokinin-1 receptor knockout mice, whereas cortical levels are similar. Finally, we examined hippocampus-dependent learning and memory but found no clear enhancement in neurokinin-1 receptor knockout mice. These data argue against a simple correlation between increased levels of neurogenesis or brain-derived neurotrophic factor and mnemonic processes in the absence of increased cell survival. They support the hypothesis that increased neurogenesis, perhaps accompanied by higher levels of brain-derived neurotrophic factor, may contribute to the efficacy of antidepressant drug therapy.


Subject(s)
Brain-Derived Neurotrophic Factor/metabolism , Cell Division/physiology , Mice, Knockout/metabolism , Receptors, Neurokinin-1/metabolism , Animals , Animals, Newborn , Antidepressive Agents/administration & dosage , Behavior, Animal/drug effects , Blotting, Western , Bromodeoxyuridine/pharmacokinetics , Cell Count , Cell Division/drug effects , Cell Survival/drug effects , Cerebral Cortex/drug effects , Cerebral Cortex/metabolism , Conditioning, Psychological , Fear/drug effects , Genotype , Hippocampus , Immobilization , Immunohistochemistry , Male , Maze Learning/drug effects , Mice , Mice, Inbred C57BL , Phosphorus Isotopes/metabolism , Radiation-Sensitizing Agents/pharmacokinetics , Reaction Time/drug effects , Receptors, Neurokinin-1/deficiency , Receptors, Neurokinin-1/genetics , Thymidine/metabolism , Time Factors , Tritium/metabolism
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