1.Anti-epileptic/pro-epileptic effects of sodium channel modulators from Buthus martensii Karsch.
Qian XIAO ; Zhi-Ping ZHANG ; Yang-Bo HOU ; Dong-Xiao QU ; Le-Le TANG ; Li-Ji CHEN ; Guo-Yi LI ; Yong-Hua JI ; Jie TAO ; Yu-Dan ZHU
Acta Physiologica Sinica 2022;74(4):621-632
The East Asian scorpion Buthus martensii Karsch (BmK) is one of the classical traditional Chinese medicines for treating epilepsy for over a thousand years. Neurotoxins purified from BmK venom are considered as the main active ingredients, acting on membrane ion channels. Voltage-gated sodium channels (VGSCs) play a crucial role in the occurrence of epilepsy, which make them become important drug targets for epilepsy. Long chain toxins of BmK, composed of 60-70 amino acid residues, could specifically recognize VGSCs. Among them, α-like neurotoxins, binding to the receptor site-3 of VGSC, induce epilepsy in rodents and can be used to establish seizure models. The β or β-like neurotoxins, binding to the receptor site-4 of VGSC, have significant anticonvulsant effects in epileptic models. This review aims to illuminate the anticonvulsant/convulsant effects of BmK polypeptides by acting on VGSCs, and provide potential frameworks for the anti-epileptic drug-design.
Animals
;
Anticonvulsants/therapeutic use*
;
Neurotoxins/pharmacology*
;
Scorpion Venoms/pharmacology*
;
Scorpions/chemistry*
;
Voltage-Gated Sodium Channels
2.Growth Differentiation Factor-15 Produces Analgesia by Inhibiting Tetrodotoxin-Resistant Nav1.8 Sodium Channel Activity in Rat Primary Sensory Neurons.
Wei LIN ; Wen-Wen ZHANG ; Ning LYU ; Hong CAO ; Wen-Dong XU ; Yu-Qiu ZHANG
Neuroscience Bulletin 2021;37(9):1289-1302
Growth differentiation factor 15 (GDF-15) is a member of the transforming growth factor-β superfamily. It is widely distributed in the central and peripheral nervous systems. Whether and how GDF-15 modulates nociceptive signaling remains unclear. Behaviorally, we found that peripheral GDF-15 significantly elevated nociceptive response thresholds to mechanical and thermal stimuli in naïve and arthritic rats. Electrophysiologically, we demonstrated that GDF-15 decreased the excitability of small-diameter dorsal root ganglia (DRG) neurons. Furthermore, GDF-15 concentration-dependently suppressed tetrodotoxin-resistant sodium channel Nav1.8 currents, and shifted the steady-state inactivation curves of Nav1.8 in a hyperpolarizing direction. GDF-15 also reduced window currents and slowed down the recovery rate of Nav1.8 channels, suggesting that GDF-15 accelerated inactivation and slowed recovery of the channel. Immunohistochemistry results showed that activin receptor-like kinase-2 (ALK2) was widely expressed in DRG medium- and small-diameter neurons, and some of them were Nav1.8-positive. Blockade of ALK2 prevented the GDF-15-induced inhibition of Nav1.8 currents and nociceptive behaviors. Inhibition of PKA and ERK, but not PKC, blocked the inhibitory effect of GDF-15 on Nav1.8 currents. These results suggest a functional link between GDF-15 and Nav1.8 in DRG neurons via ALK2 receptors and PKA associated with MEK/ERK, which mediate the peripheral analgesia of GDF-15.
Analgesia
;
Animals
;
Ganglia, Spinal
;
Growth Differentiation Factor 15
;
NAV1.8 Voltage-Gated Sodium Channel
;
Rats
;
Sensory Receptor Cells
;
Sodium Channels
;
Tetrodotoxin/pharmacology*
3.Progress on structural biology of voltage-gated ion channels.
Journal of Zhejiang University. Medical sciences 2019;48(1):25-33
Ion channels mediate ion transport across membranes, and play vital roles in processes of matter exchange, energy transfer and signal transduction in living organisms. Recently, structural studies of ion channels have greatly advanced our understanding of their ion selectivity and gating mechanisms. Structural studies of voltage-gated potassium channels elucidate the structural basis for potassium selectivity and voltage-gating mechanism; structural studies of voltage-gated sodium channels reveal their slow and fast inactivation mechanisms; and structural studies of transient receptor potential (TRP) channels provide complex and diverse structures of TRP channels, and their ligand gating mechanisms. In the article we summarize recent progress on ion channel structural biology, and outlook the prospect of ion channel structural biology in the future.
Ion Channel Gating
;
physiology
;
Ion Channels
;
Voltage-Gated Sodium Channels
;
chemistry
;
metabolism
4.3'-Methoxydaidzein exerts analgesic activity by inhibiting voltage-gated sodium channels.
Run-Jia XU ; Shuo-Han FEI ; Lin-Yan CHEN ; Gan WANG ; Ming LIU ; Wen-Sheng ZHANG ; Xiu-Wen YAN ; Ren LAI ; Chuan-Bin SHEN
Chinese Journal of Natural Medicines (English Ed.) 2019;17(6):413-423
Isoflavones are widely consumed by people around the world in the form of soy products, dietary supplements and drugs. Many isoflavones or related crude extracts have been reported to exert pain-relief activities, but the mechanism remains unclear. Voltage-gated sodium channels (VGSCs) play important roles in excitability of pain sensing neurons and many of them are important nociceptors. Here, we report that several isoflavones including 3'-methoxydaidzein (3MOD), genistein (GEN) and daidzein (DAI) show abilities to block VGSCs and thus to attenuate chemicals and heat induced acute pain or chronic constriction injury (CCI) induced pain hypersensitivity in mice. Especially, 3MOD shows strong analgesic potential without inducing addiction through inhibiting subtypes Na1.7, Na1.8 and Na1.3 with the IC of 181 ± 14, 397 ± 26, and 505 ± 46 nmol·L, respectively, providing a promising compound or parent structure for the treatment of pain pathologies. This study reveals a pain-alleviating mechanism of dietary isoflavones and may provide a convenient avenue to alleviate pain.
Analgesics
;
administration & dosage
;
chemistry
;
Animals
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Humans
;
Isoflavones
;
administration & dosage
;
chemistry
;
Male
;
Mice
;
Mice, Inbred C57BL
;
Pain
;
drug therapy
;
genetics
;
metabolism
;
Voltage-Gated Sodium Channel Blockers
;
administration & dosage
;
Voltage-Gated Sodium Channels
;
genetics
;
metabolism
5.Glial Cell Line-derived Neurotrophic Factor-overexpressing Human Neural Stem/Progenitor Cells Enhance Therapeutic Efficiency in Rat with Traumatic Spinal Cord Injury
Kyujin HWANG ; Kwangsoo JUNG ; Il Sun KIM ; Miri KIM ; Jungho HAN ; Joohee LIM ; Jeong Eun SHIN ; Jae Hyung JANG ; Kook In PARK
Experimental Neurobiology 2019;28(6):679-696
Spinal cord injury (SCI) causes axonal damage and demyelination, neural cell death, and comprehensive tissue loss, resulting in devastating neurological dysfunction. Neural stem/progenitor cell (NSPCs) transplantation provides therapeutic benefits for neural repair in SCI, and glial cell line-derived neurotrophic factor (GDNF) has been uncovered to have capability of stimulating axonal regeneration and remyelination after SCI. In this study, to evaluate whether GDNF would augment therapeutic effects of NSPCs for SCI, GDNF-encoding or mock adenoviral vector-transduced human NSPCs (GDNF-or Mock-hNSPCs) were transplanted into the injured thoracic spinal cords of rats at 7 days after SCI. Grafted GDNF-hNSPCs showed robust engraftment, long-term survival, an extensive distribution, and increased differentiation into neurons and oligodendroglial cells. Compared with Mock-hNSPC- and vehicle-injected groups, transplantation of GDNF-hNSPCs significantly reduced lesion volume and glial scar formation, promoted neurite outgrowth, axonal regeneration and myelination, increased Schwann cell migration that contributed to the myelin repair, and improved locomotor recovery. In addition, tract tracing demonstrated that transplantation of GDNF-hNSPCs reduced significantly axonal dieback of the dorsal corticospinal tract (dCST), and increased the levels of dCST collaterals, propriospinal neurons (PSNs), and contacts between dCST collaterals and PSNs in the cervical enlargement over that of the controls. Finally grafted GDNF-hNSPCs substantially reversed the increased expression of voltage-gated sodium channels and neuropeptide Y, and elevated expression of GABA in the injured spinal cord, which are involved in the attenuation of neuropathic pain after SCI. These findings suggest that implantation of GDNF-hNSPCs enhances therapeutic efficiency of hNSPCs-based cell therapy for SCI.
Animals
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Axons
;
Cell Death
;
Cell Movement
;
Cell- and Tissue-Based Therapy
;
Cicatrix
;
Demyelinating Diseases
;
gamma-Aminobutyric Acid
;
Glial Cell Line-Derived Neurotrophic Factor
;
Humans
;
Hyperalgesia
;
Myelin Sheath
;
Neuralgia
;
Neurites
;
Neuroglia
;
Neurons
;
Neuropeptide Y
;
Paraplegia
;
Pyramidal Tracts
;
Rats
;
Regeneration
;
Spinal Cord Injuries
;
Spinal Cord
;
Therapeutic Uses
;
Transplants
;
Voltage-Gated Sodium Channels
6.Preemptive application of QX-314 attenuates trigeminal neuropathic mechanical allodynia in rats.
Jeong Ho YOON ; Jo Young SON ; Min Ji KIM ; Song Hee KANG ; Jin Sook JU ; Yong Chul BAE ; Dong Kuk AHN
The Korean Journal of Physiology and Pharmacology 2018;22(3):331-341
The aim of the present study was to examine the effects of preemptive analgesia on the development of trigeminal neuropathic pain. For this purpose, mechanical allodynia was evaluated in male Sprague-Dawley rats using chronic constriction injury of the infraorbital nerve (CCI-ION) and perineural application of 2% QX-314 to the infraorbital nerve. CCI-ION produced severe mechanical allodynia, which was maintained until postoperative day (POD) 30. An immediate single application of 2% QX-314 to the infraorbital nerve following CCI-ION significantly reduced neuropathic mechanical allodynia. Immediate double application of QX-314 produced a greater attenuation of mechanical allodynia than a single application of QX-314. Immediate double application of 2% QX-314 reduced the CCI-ION-induced upregulation of GFAP and p-p38 expression in the trigeminal ganglion. The upregulated p-p38 expression was co-localized with NeuN, a neuronal cell marker. We also investigated the role of voltage-gated sodium channels (Navs) in the antinociception produced by preemptive application of QX-314 through analysis of the changes in Nav expression in the trigeminal ganglion following CCI-ION. Preemptive application of QX-314 significantly reduced the upregulation of Nav1.3, 1.7, and 1.9 produced by CCI-ION. These results suggest that long-lasting blockade of the transmission of pain signaling inhibits the development of neuropathic pain through the regulation of Nav isoform expression in the trigeminal ganglion. Importantly, these results provide a potential preemptive therapeutic strategy for the treatment of neuropathic pain after nerve injury.
Analgesia
;
Animals
;
Constriction
;
Humans
;
Hyperalgesia*
;
Male
;
Neuralgia
;
Neurons
;
Rats*
;
Rats, Sprague-Dawley
;
Sodium Channels
;
Trigeminal Ganglion
;
Up-Regulation
;
Voltage-Gated Sodium Channels
9.Structure-based assessment of disease-related mutations in human voltage-gated sodium channels.
Weiyun HUANG ; Minhao LIU ; S Frank YAN ; Nieng YAN
Protein & Cell 2017;8(6):401-438
Voltage-gated sodium (Na) channels are essential for the rapid upstroke of action potentials and the propagation of electrical signals in nerves and muscles. Defects of Na channels are associated with a variety of channelopathies. More than 1000 disease-related mutations have been identified in Na channels, with Na1.1 and Na1.5 each harboring more than 400 mutations. Na channels represent major targets for a wide array of neurotoxins and drugs. Atomic structures of Na channels are required to understand their function and disease mechanisms. The recently determined atomic structure of the rabbit voltage-gated calcium (Ca) channel Ca1.1 provides a template for homology-based structural modeling of the evolutionarily related Na channels. In this Resource article, we summarized all the reported disease-related mutations in human Na channels, generated a homologous model of human Na1.7, and structurally mapped disease-associated mutations. Before the determination of structures of human Na channels, the analysis presented here serves as the base framework for mechanistic investigation of Na channelopathies and for potential structure-based drug discovery.
Animals
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Calcium Channels, L-Type
;
chemistry
;
genetics
;
metabolism
;
Channelopathies
;
genetics
;
metabolism
;
Humans
;
Mutation
;
NAV1.1 Voltage-Gated Sodium Channel
;
chemistry
;
genetics
;
metabolism
;
NAV1.5 Voltage-Gated Sodium Channel
;
chemistry
;
genetics
;
metabolism
;
NAV1.7 Voltage-Gated Sodium Channel
;
chemistry
;
genetics
;
metabolism
;
Protein Domains
;
Rabbits
;
Structure-Activity Relationship
10.Colonic Hypersensitivity and Sensitization of Voltage-gated Sodium Channels in Primary Sensory Neurons in Rats with Diabetes.
Ji HU ; Zhen Yuan SONG ; Hong Hong ZHANG ; Xin QIN ; Shufen HU ; Xinghong JIANG ; Guang Yin XU
Journal of Neurogastroenterology and Motility 2016;22(1):129-140
BACKGROUND/AIMS: Patients with long-standing diabetes often demonstrate intestinal dysfunction and abdominal pain. However, the pathophysiology of abdominal pain in diabetic patients remains elusive. The purpose of study was to determine roles of voltage-gated sodium channels in dorsal root ganglion (DRG) in colonic hypersensitivity of rats with diabetes. METHODS: Diabetic models were induced by a single intraperitoneal injection of streptozotocin (STZ; 65 mg/kg) in adult female rats, while the control rats received citrate buffer only. Behavioral responses to colorectal distention were used to determine colonic sensitivity in rats. Colon projection DRG neurons labeled with DiI were acutely dissociated for measuring excitability and sodium channel currents by whole-cell patch clamp recordings. Western blot analysis was employed to measure the expression of NaV1.7 and NaV1.8 of colon DRGs. RESULTS: STZ injection produced a significantly lower distention threshold than control rats in responding to colorectal distention. STZ injection also depolarized the resting membrane potentials, hyperpolarized action potential threshold, decreased rheobase and increased frequency of action potentials evoked by 2 and 3 times rheobase and ramp current stimulation. Furthermore, STZ injection enhanced neuronal sodium current densities of DRG neurons innervating the colon. STZ injection also led to a significant upregulation of NaV1.7 and NaV1.8 expression in colon DRGs compared with age and sex-matched control rats. CONCLUSIONS: Our results suggest that enhanced neuronal excitability following STZ injection, which may be mediated by upregulation of NaV1.7 and NaV1.8 expression in DRGs, may play an important role in colonic hypersensitivity in rats with diabetes.
Abdominal Pain
;
Action Potentials
;
Adult
;
Animals
;
Architectural Accessibility
;
Blotting, Western
;
Citric Acid
;
Colon*
;
Diagnosis-Related Groups
;
Female
;
Ganglia, Spinal
;
Humans
;
Hypersensitivity*
;
Injections, Intraperitoneal
;
Membrane Potentials
;
Neurons
;
Rats*
;
Sensory Receptor Cells*
;
Sodium
;
Sodium Channels
;
Streptozocin
;
Up-Regulation
;
Voltage-Gated Sodium Channels*

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