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N-Glycosylation of Cav3.2 Channel in Myelinated A-Fibre Dorsal Root Ganglion Neurons Contributes to Mechanical
Chenlong Liao1, Shuo Li1, Wenchuan Zhang1
1Department of Neurosurgery, Shanghai Ninth People's Hospital, Affiliated to Shanghai JiaoTong University School of Medicine, Shanghai, China.
Objective:
To investigate the role of Cav3.2 channel N-glycosylation in myelinated A-fibre dorsal root ganglion (DRG) neurons in the development of diabetic mechanical allodynia (MA).
Methods:
Type 1 diabetes was induced in rats via a single intraperitoneal injection of streptozotocin. Pain behaviour, including MA and thermal hyperalgesia (TH), was assessed weekly. Diabetic rats with TH were further divided into 2 subgroups according to the presence of MA by the third week. The impact of N-glycosylation on Cav3.2 expression and pain behaviours was investigated through sequential intraplantar administration of neuraminidase (NEU) and TTA-P2, a selective blocker of T-type calcium channels. The Cav3.2 N-glycosylation levels were compared between diabetic rats with and without MA by analyzing the N-terminal fragment after enzymatic deglycosylation.
Results:
Cav3.2 expression in myelinated A-fibre DRG neurons was significantly higher in diabetic rats with MA than in those without (p<0.001). NEU-induced deglycosylation reduced Cav3.2 expression in all groups, although diabetic rats with MA still had higher expression than those without (p<0.05). Resiniferatoxin eliminated TH but not MA, whereas NEU alleviated both, similar to TTA-P2. Diabetic rats with MA exhibited increased expression of Cav3.2 N-terminal fragments compared with those without (p<0.001).
Conclusion:
N-glycosylation of the Cav3.2 channel in DRG neurons of myelinated A-fibres contributes to diabetic MA.
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