CaV3.2 T-type calcium channels contribute to CGRP- induced allodynia in a rodent model of experimental migraine

被引:0
|
作者
Baggio, Darciane F. [1 ]
Gambeta, Eder [2 ,3 ]
Souza, Ivana A. [2 ,3 ]
Huang, Sun [2 ,3 ]
Zamponi, Gerald W. [2 ,3 ]
Chichorro, Juliana G. [1 ]
机构
[1] Univ Fed Parana, Dept Pharmacol, Biol Sci Sect, Curitiba, PR, Brazil
[2] Univ Calgary, Dept Clin Neurosci, Cumming Sch Med, Hotchkiss Brain Inst, Calgary, AB, Canada
[3] Univ Calgary, Alberta Childrens Hosp Res Inst, Cumming Sch Med, Calgary, AB, Canada
关键词
Voltage-gated calcium channels; Calcitonin gene-related peptide; RAMP-1; Periorbital mechanical allodynia; Mice; Trigeminal ganglion; Electrophysiology; TRIGEMINOVASCULAR SYSTEM; TRIGEMINAL GANGLION; GENE; ACTIVATION; RECEPTOR; NEURONS; SENSITIZATION; PEPTIDES; RELEASE; HUMANS;
D O I
10.1186/s10194-024-01921-0
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Background Migraine is a painful neurological syndrome characterized by attacks of throbbing headache, of moderate to severe intensity, which is associated with photo- and phono- sensitivity as well as nausea and vomiting. It affects about 15% of the world's population being 2-3 times more prevalent in females. The calcitonin gene-related peptide (CGRP) is a key mediator in the pathophysiology of migraine, and a significant advance in the field has been the development of anti-CGRP therapies. The trigeminal ganglion (TG) is thought to be an important site of action for these drugs. Moreover, experimental migraine can be induced by CGRP injection in the TG. The signaling pathway induced by CGRP in the TG is not fully understood, but studies suggest that voltage-gated calcium channels contribute to CGRP effects relevant to migraine. Objective We hypothesised that CGRP injection in the TG enhances Ca(V)3.2 T-type calcium channel currents to contribute to the development of periorbital mechanical allodynia. Results A Co-Immunoprecipitation assay in tsA-201 cells revealed that Ca(V)3.2 channels form a complex with RAMP-1, a component of the CGRP receptor. Constitutive CGRPR activity was able to inhibit Ca(V)3.2 channels and induce a depolarizing shift in both activation and inactivation curves. Incubation of TG neurons with CGRP increased T-type current density by similar to 3.6 fold, an effect that was not observed in TG neurons from Ca(V)3.2 knockout mice. Incubation of TG neurons with Z944, a pan T-type channel blocker, resulted in an approximately 80% inhibition of T-type currents. In vivo, this treatment abolished the development of periorbital mechanical allodynia induced by CGRP in male and female mice. Likewise, Ca(V)3.2 knockout mice did not develop periorbital mechanical allodynia after intraganglionic CGRP injection. Finally, we demonstrated that the CGRP effect depends on the activation of its canonical GPCR, followed by protein kinase A activation. Conclusion The present study suggests that CGRP modulates Ca(V)3.2 in the TG, an effect possibly mediated by the canonical CGRP receptor and PKA activation. The increase in T-type currents in the TG may represent a contributing factor for the initiation and maintenance of the headache pain during migraine.
引用
收藏
页数:11
相关论文
共 50 条
  • [1] Cav3.2 T-type calcium channels control acute itch in mice
    Gadotti, Vinicius M.
    Kreitinger, Joanna M.
    Wageling, Nicholas B.
    Budke, Dylan
    Diaz, Philippe
    Zamponi, Gerald W.
    MOLECULAR BRAIN, 2020, 13 (01)
  • [2] Cav3.2 T-Type Calcium Channels Are Physiologically Mandatory for the Auditory System
    Lundt, Andreas
    Seidel, Robin
    Soos, Julien
    Henseler, Christina
    Mueller, Ralf
    Bakki, Maheshwar
    Arshaad, Muhammad Imran
    Ehninger, Dan
    Hescheler, Juergen
    Sachinidis, Agapios
    Broich, Karl
    Wormuth, Carola
    Papazoglou, Anna
    Weiergraeber, Marco
    NEUROSCIENCE, 2019, 409 : 81 - 100
  • [3] CaV3.2 calcium channels contribute to trigeminal neuralgia
    Gambeta, Eder
    Gandini, Maria A.
    Souza, Ivana A.
    Zamponi, Gerald W.
    PAIN, 2022, 163 (12) : 2315 - 2325
  • [4] Redox Mechanism of S-Nitrosothiol Modulation of Neuronal CaV3.2 T-Type Calcium Channels
    Lee, Jeonghan
    Nelson, Michael T.
    Rose, Kirstin E.
    Todorovic, Slobodan M.
    MOLECULAR NEUROBIOLOGY, 2013, 48 (02) : 274 - 280
  • [5] Reversal of Neuropathic Pain in Diabetes by Targeting Glycosylation of Cav3.2 T-Type Calcium Channels
    Orestes, Peihan
    Osuru, Hari Prasad
    McIntire, William E.
    Jacus, Megan O.
    Salajegheh, Reza
    Jagodic, Miljen M.
    Choe, WonJoo
    Lee, JeongHan
    Lee, Sang-Soo
    Rose, Kirstin E.
    Poiro, Nathan
    DiGruccio, Michael R.
    Krishnan, Katiresan
    Covey, Douglas F.
    Lee, Jung-Ha
    Barrett, Paula Q.
    Jevtovic-Todorovic, Vesna
    Todorovic, Slobodan M.
    DIABETES, 2013, 62 (11) : 3828 - 3838
  • [6] Inhibition of Cav3.2 T-type Calcium Channels by Its Intracellular I-II Loop
    Monteil, Arnaud
    Chausson, Patrick
    Boutourlinsky, Katia
    Mezghrani, Alexandre
    Huc-Brandt, Sylvaine
    Blesneac, Iulia
    Bidaud, Isabelle
    Lemmers, Celine
    Leresche, Nathalie
    Lambert, Regis C.
    Lory, Philippe
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2015, 290 (26) : 16168 - 16176
  • [7] G Protein-Mediated Inhibition of Cav3.2 T-Type Channels Revisited
    Perez-Reyes, Edward
    MOLECULAR PHARMACOLOGY, 2010, 77 (02) : 136 - 138
  • [8] Targeting of CaV3.2 T-type calcium channels in peripheral sensory neurons for the treatment of painful diabetic neuropathy
    Todorovic, Slobodan M.
    Jevtovic-Todorovic, Vesna
    PFLUGERS ARCHIV-EUROPEAN JOURNAL OF PHYSIOLOGY, 2014, 466 (04): : 701 - 706
  • [9] The T-type calcium channel CaV3.2 regulates insulin secretion in the pancreatic ?-cell
    Barghouth, Mohammad
    Ye, Yingying
    Karagiannopoulos, Alexandros
    Ma, Yunhan
    Cowan, Elaine
    Wu, Rui
    Eliasson, Lena
    Renstrom, Erik
    Luan, Cheng
    Zhang, Enming
    CELL CALCIUM, 2022, 108
  • [10] Hydrogen sulfide-induced itch requires activation of Cav3.2 T-type calcium channel in mice
    Wang, Xue-Long
    Tian, Bin
    Huang, Ya
    Peng, Xiao-Yan
    Chen, Li-Hua
    Li, Jun-Cheng
    Liu, Tong
    SCIENTIFIC REPORTS, 2015, 5