Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
6279703 | Neuroscience Letters | 2016 | 23 Pages |
Abstract
The mammalian target of rapamycin (mTOR) is a key regulator of mRNA translation and protein synthesis, and it is specifically inhibited by rapamycin. In chronic pain conditions, mTOR-mediated local protein synthesis is crucial for neuronal hyperexcitability and synaptic plasticity. The tetrodotoxin-resistant (TTX-R) sodium channel Nav1.8 plays a major role in action potential initiation and propagation and cellular excitability in DRG (dorsal root ganglion) neurons. In this study, we investigated if mTOR modulates the phosphorylation of Nav1.8 that is associated with neuronal hyperexcitability and behavioral hypersensitivity in STZ-induced diabetic rats. Painful diabetic neuropathy (PDN) was induced in Sprague-Dawley rats by intraperitoneal injection with streptozotocin (STZ) at 60 mg/kg. After the onset of PDN, the rats received daily intrathecal administrations of rapamycin (1 μg, 3 μg, or 10 μg/day) for 7 days; other diabetic rats received the same volumes of dimethyl sulfoxide (DMSO). Herein, we demonstrate a marked increase in protein expression of total mTOR and phospho-mTOR (p-mTOR) together with the up-regulation of phosphor-Nav1.8 (p-Nav1.8) prior to the mechanical withdrawal threshold reaching a significant reduction in dorsal root ganglions (DRGs). Furthermore, the intrathecal administration of rapamycin, inhibiting the activity of mTOR, suppressed the phosphorylation of DRG Nav1.8, reduced the TTX-R current density, heightened the voltage threshold for activation and lowered the voltage threshold for inactivation and relieved mechanical hypersensitivity in diabetic rats. An intrathecal injection (i.t.) of rapamycin inhibited the phosphorylation and enhanced the functional availability of DRG Nav1.8 attenuated STZ-induced hyperalgesia. These results suggest that rapamycin is a potential therapeutic intervention for clinical PDN.
Keywords
PDNmTORERKDRGMWTSTZ4E-BPS6KNav1.8IRS-1Mechanical Withdrawal Thresholddorsal root ganglioni.t.streptozotocininsulin receptor substrate-1Intrathecal administrationIntrathecal injectionRapamycinpainful diabetic neuropathymammalian target of rapamycinribosomal protein S6 kinaseextracellular regulated protein kinasesinsulin receptor
Related Topics
Life Sciences
Neuroscience
Neuroscience (General)
Authors
Wan-you He, Bin Zhang, Qing-ming Xiong, Cheng-xiang Yang, Wei-cheng Zhao, Jian He, Jun Zhou, Han-bing Wang,