1.Effects of Ringer's solution with different concentrations of alcohol on biphasic compound action potentials of frog sciatic nerve trunk.
Zhi-Hua HUANG ; Pei-Jian WEI ; Ling JIANG ; Sui CHEN ; Bi-Hong CHENG ; Ying LIN ; Lin-Geng WU ; Qiu-Xiong XU ; Shao-Wei WU ; Hai-Yan WANG ; Jian-Xin SHEN
Chinese Journal of Applied Physiology 2019;35(3):232-238
OBJECTIVE:
To quantitatively investigate the effects of Ringer's solution with different concentrations of alcohol (1%~80%) on biphasic compound action potentials (AP) from frog sciatic nerve trunk, and their recoveries from alcohol effects.
METHODS:
Individual segments of frog sciatic nerve trunk with a length of 6 to 8 cm were prepared. Ringer's solution with different concentrations of alcohol (0%, 1%, 2%, 4%, 8%, 16%, 32%, 48%, 64% and 80%) was applied onto the segment of the trunk between the stimulus and ground electrodes via an agent reservoir which was newly armed in a nerve trunk shielded chamber for 5 minutes. The nerve trunk was respectively electro-stimulated to generate the biphasic compound AP which was recorded using the experimental system of BL-420F. This was followed by 5 times washout plus 5 min administration with Ringer's solution before recovery recording of AP.
RESULTS:
Compared to normal Ringer's solution, Ringer's solution with alcohol at ≤4% did not have dramatic impacts on the AP amplitude and conduction velocity, while Ringer's solution with alcohol at ≥8% there was significant decrease in these two parameters. Ringer's solution with alcohol at the conentrations of 16%, 32% and ≥48% could prevent a small proportion (30%), a large proportion (90%) and all (100%) of sciatic nerve trunks, respectively, from generating AP. Washout with normal Ringer's solution after alcohol application at the concentration of ≤32%, AP could totally recover to normal status. While alcohol at the concentration of 48%, 64% and 80%, the probabilities to regenerate APs were 90%, 40% and 0%, and the AP amplitudes were decreased to 60%, 36% and 0%, respectively. After washout, AP conduction velocity showed no difference with alcohol at the concentration of ≤8% when compared with that before washout, while it could not be recovered to normal under alcohol at ≥16%.
CONCLUSION
Ringer's solution with different concentrations of alcohol exerts different effects on biphasic compound AP amplitude and conduction velocity. Hopefully, our findings could be helpful for the alcoholic usage and its recovery from alcoholic damage.
Action Potentials
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Animals
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Anura
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Ethanol
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pharmacology
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Ringer's Solution
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pharmacology
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Sciatic Nerve
;
drug effects
2.A Context-Based Analgesia Model in Rats: Involvement of Prefrontal Cortex.
Lingchi XU ; Yalan WAN ; Longyu MA ; Jie ZHENG ; Bingxuan HAN ; Feng-Yu LIU ; Ming YI ; You WAN
Neuroscience Bulletin 2018;34(6):1047-1057
Cognition and pain share common neural substrates and interact reciprocally: chronic pain compromises cognitive performance, whereas cognitive processes modulate pain perception. In the present study, we established a non-drug-dependent rat model of context-based analgesia, where two different contexts (dark and bright) were matched with a high (52°C) or low (48°C) temperature in the hot-plate test during training. Before and after training, we set the temperature to the high level in both contexts. Rats showed longer paw licking latencies in trials with the context originally matched to a low temperature than those to a high temperature, indicating successful establishment of a context-based analgesic effect in rats. This effect was blocked by intraperitoneal injection of naloxone (an opioid receptor antagonist) before the probe. The context-based analgesic effect also disappeared after optogenetic activation or inhibition of the bilateral infralimbic or prelimbic sub-region of the prefrontal cortex. In brief, we established a context-based, non-drug dependent, placebo-like analgesia model in the rat. This model provides a new and useful tool for investigating the cognitive modulation of pain.
Action Potentials
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drug effects
;
physiology
;
Analgesics
;
pharmacology
;
therapeutic use
;
Animals
;
Disease Models, Animal
;
Electric Stimulation
;
Female
;
In Vitro Techniques
;
Naloxone
;
pharmacology
;
Narcotic Antagonists
;
pharmacology
;
Optogenetics
;
Pain
;
drug therapy
;
pathology
;
physiopathology
;
Pain Measurement
;
drug effects
;
Pain Threshold
;
drug effects
;
physiology
;
Patch-Clamp Techniques
;
Physical Stimulation
;
Prefrontal Cortex
;
drug effects
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metabolism
;
pathology
;
Pyramidal Cells
;
drug effects
;
physiology
;
Rats
;
Rats, Sprague-Dawley
;
Time Factors
3.Altered Neuronal Activity in the Central Nucleus of the Amygdala Induced by Restraint Water-Immersion Stress in Rats.
Feng HE ; Hongbin AI ; Min WANG ; Xiusong WANG ; Xiwen GENG
Neuroscience Bulletin 2018;34(6):1067-1076
Restraint water-immersion stress (RWIS), a compound stress model, has been widely used to induce acute gastric ulceration in rats. A wealth of evidence suggests that the central nucleus of the amygdala (CEA) is a focal region for mediating the biological response to stress. Different stressors induce distinct alterations of neuronal activity in the CEA; however, few studies have reported the characteristics of CEA neuronal activity induced by RWIS. Therefore, we explored this issue using immunohistochemistry and in vivo extracellular single-unit recording. Our results showed that RWIS and restraint stress (RS) differentially changed the c-Fos expression and firing properties of neurons in the medial CEA. In addition, RWIS, but not RS, induced the activation of corticotropin-releasing hormone neurons in the CEA. These findings suggested that specific neuronal activation in the CEA is involved in the formation of RWIS-induced gastric ulcers. This study also provides a possible theoretical explanation for the different gastric dysfunctions induced by different stressors.
Action Potentials
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drug effects
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physiology
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Analysis of Variance
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Animals
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Central Amygdaloid Nucleus
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pathology
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Corticotropin-Releasing Hormone
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metabolism
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Disease Models, Animal
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Gastric Mucosa
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pathology
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Gene Expression Regulation
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physiology
;
Neurons
;
physiology
;
Patch-Clamp Techniques
;
Proto-Oncogene Proteins c-fos
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metabolism
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Rats
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Rats, Wistar
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Stress, Physiological
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physiology
;
Stress, Psychological
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etiology
;
physiopathology
4.Histamine Excites Rat GABAergic Ventral Pallidum Neurons via Co-activation of H1 and H2 Receptors.
Miao-Jin JI ; Xiao-Yang ZHANG ; Xiao-Chun PENG ; Yang-Xun ZHANG ; Zi CHEN ; Lei YU ; Jian-Jun WANG ; Jing-Ning ZHU
Neuroscience Bulletin 2018;34(6):1029-1036
The ventral pallidum (VP) is a crucial component of the limbic loop of the basal ganglia and participates in the regulation of reward, motivation, and emotion. Although the VP receives afferent inputs from the central histaminergic system, little is known about the effect of histamine on the VP and the underlying receptor mechanism. Here, we showed that histamine, a hypothalamic-derived neuromodulator, directly depolarized and excited the GABAergic VP neurons which comprise a major cell type in the VP and are responsible for encoding cues of incentive salience and reward hedonics. Both postsynaptic histamine H1 and H2 receptors were found to be expressed in the GABAergic VP neurons and co-mediate the excitatory effect of histamine. These results suggested that the central histaminergic system may actively participate in VP-mediated motivational and emotional behaviors via direct modulation of the GABAergic VP neurons. Our findings also have implications for the role of histamine and the central histaminergic system in psychiatric disorders.
Action Potentials
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drug effects
;
Animals
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Basal Forebrain
;
cytology
;
Dimaprit
;
pharmacology
;
Dose-Response Relationship, Drug
;
Electric Stimulation
;
Female
;
GABAergic Neurons
;
drug effects
;
Histamine
;
pharmacology
;
Histamine Agonists
;
pharmacology
;
Lysine
;
analogs & derivatives
;
metabolism
;
Male
;
Patch-Clamp Techniques
;
Pyridines
;
pharmacology
;
Rats
;
Rats, Sprague-Dawley
;
Receptors, Histamine H1
;
metabolism
;
Receptors, Histamine H2
;
metabolism
;
Sodium Channel Blockers
;
pharmacology
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Tetrodotoxin
;
pharmacology
;
gamma-Aminobutyric Acid
;
metabolism
5.Expression and Role of Voltage-Gated Sodium Channels in Human Dorsal Root Ganglion Neurons with Special Focus on Nav1.7, Species Differences, and Regulation by Paclitaxel.
Wonseok CHANG ; Temugin BERTA ; Yong Ho KIM ; Sanghoon LEE ; Seok-Yong LEE ; Ru-Rong JI
Neuroscience Bulletin 2018;34(1):4-12
Voltage-gated sodium channels (Navs) play an important role in human pain sensation. However, the expression and role of Nav subtypes in native human sensory neurons are unclear. To address this issue, we obtained human dorsal root ganglion (hDRG) tissues from healthy donors. PCR analysis of seven DRG-expressed Nav subtypes revealed that the hDRG has higher expression of Nav1.7 (~50% of total Nav expression) and lower expression of Nav1.8 (~12%), whereas the mouse DRG has higher expression of Nav1.8 (~45%) and lower expression of Nav1.7 (~18%). To mimic Nav regulation in chronic pain, we treated hDRG neurons in primary cultures with paclitaxel (0.1-1 μmol/L) for 24 h. Paclitaxel increased the Nav1.7 but not Nav1.8 expression and also increased the transient Na currents and action potential firing frequency in small-diameter (<50 μm) hDRG neurons. Thus, the hDRG provides a translational model in which to study "human pain in a dish" and test new pain therapeutics.
Action Potentials
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drug effects
;
Animals
;
Antineoplastic Agents, Phytogenic
;
pharmacology
;
Dose-Response Relationship, Drug
;
Electric Stimulation
;
Excitatory Postsynaptic Potentials
;
drug effects
;
Female
;
Ganglia, Spinal
;
cytology
;
Gene Expression Regulation
;
drug effects
;
Humans
;
In Vitro Techniques
;
Male
;
Mice
;
NAV1.7 Voltage-Gated Sodium Channel
;
genetics
;
metabolism
;
Neurons
;
drug effects
;
metabolism
;
Paclitaxel
;
pharmacology
;
Patch-Clamp Techniques
;
Species Specificity
6.Spinal Mechanisms of Itch Transmission.
Devin M BARRY ; Admire MUNANAIRI ; Zhou-Feng CHEN
Neuroscience Bulletin 2018;34(1):156-164
Peripheral itch stimuli are transmitted by sensory neurons to the spinal cord dorsal horn, which then transmits the information to the brain. The molecular and cellular mechanisms within the dorsal horn for itch transmission have only been investigated and identified during the past ten years. This review covers the progress that has been made in identifying the peptide families in sensory neurons and the receptor families in dorsal horn neurons as putative itch transmitters, with a focus on gastrin-releasing peptide (GRP)-GRP receptor signaling. Also discussed are the signaling mechanisms, including opioids, by which various types of itch are transmitted and modulated, as well as the many conflicting results arising from recent studies.
Action Potentials
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drug effects
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Analgesics, Opioid
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pharmacology
;
Animals
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Humans
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Pruritus
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metabolism
;
pathology
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Sensory Receptor Cells
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metabolism
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Spinal Cord
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pathology
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Synaptic Transmission
;
physiology
7.The Role of Serotonin in Ventricular Repolarization in Pregnant Mice.
Shanyu CUI ; Hyewon PARK ; Hyelim PARK ; Dasom MUN ; Seung Hyun LEE ; Hyoeun KIM ; Nuri YUN ; Hail KIM ; Michael KIM ; Hui Nam PAK ; Moon Hyoung LEE ; Boyoung JOUNG
Yonsei Medical Journal 2018;59(2):279-286
PURPOSE: The mechanisms underlying repolarization abnormalities during pregnancy are not fully understood. Although maternal serotonin (5-hydroxytryptamine, 5-HT) production is an important determinant for normal fetal development in mice, its role in mothers remains unclear. We evaluated the role of serotonin in ventricular repolarization in mice hearts via 5Htr3 receptor (Htr3a) and investigated the mechanism of QT-prolongation during pregnancy. MATERIALS AND METHODS: We measured current amplitudes and the expression levels of voltage-gated K⁺ (Kv) channels in freshly-isolated left ventricular myocytes from wild-type non-pregnant (WT-NP), late-pregnant (WT-LP), and non-pregnant Htr3a homozygous knockout mice (Htr3a(−/−)-NP). RESULTS: During pregnancy, serotonin and tryptophan hydroxylase 1, a rate-limiting enzyme for the synthesis of serotonin, were markedly increased in hearts and serum. Serotonin increased Kv current densities concomitant with the shortening of the QT interval in WT-NP mice, but not in WT-LP and Htr3a(−/−)-NP mice. Ondansetron, an Htr3 antagonist, decreased Kv currents in WT-LP mice, but not in WT-NP mice. Kv4.3 directly interacted with Htr3a, and this binding was facilitated by serotonin. Serotonin increased the trafficking of Kv4.3 channels to the cellular membrane in WT-NP. CONCLUSION: Serotonin increases repolarizing currents by augmenting Kv currents. Elevated serotonin levels during pregnancy counterbalance pregnancy-related QT prolongation by facilitating Htr3-mediated Kv currents.
*Action Potentials/drug effects
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Animals
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Cell Membrane/drug effects/metabolism
;
Disease Models, Animal
;
Electrocardiography
;
Female
;
HSC70 Heat-Shock Proteins/metabolism
;
HSP90 Heat-Shock Proteins/metabolism
;
Heart Ventricles/drug effects/*metabolism
;
Mice, Inbred C57BL
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Mice, Knockout
;
Myocytes, Cardiac/drug effects/metabolism
;
Potassium Channels/metabolism
;
Pregnancy
;
Rabbits
;
Rats, Sprague-Dawley
;
Receptors, Serotonin, 5-HT3/metabolism
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Serotonin/*metabolism
;
Serotonin 5-HT3 Receptor Agonists/pharmacology
8.Effects of Fluvastatin on Characteristics of Stellate Ganglion Neurons in a Rabbit Model of Myocardial Ischemia.
Li-Jun CHENG ; Guang-Ping LI ; Jian LI ; Yan CHEN ; Xing-Hua WANG
Chinese Medical Journal 2016;129(5):549-556
BACKGROUNDStellate ganglion (SG) plays an important role in cardiovascular diseases. The electrical activity of SG neurons is involved in the regulation of the autonomic nervous system. The aim of this research was to evaluate the effects of fluvastatin on the electrophysiological characteristics of SG neurons in a rabbit model of myocardial ischemia (MI).
METHODSThe MI model was induced by abdominal subcutaneous injections of isoproterenol in rabbits. Using whole-cell patch clamp technique, we studied the characteristic changes of ion channels and action potentials (APs) in isolated SG neurons in control group (n = 20), MI group (n = 20) and fluvastatin pretreated group (fluvastatin group, n = 20), respectively. The protein expression of sodium channel in SG was determined by immunohistochemical analysis.
RESULTSMI and the intervention of fluvastatin did not have significantly influence on the characteristics of delayed rectifier potassium channel currents. The maximal peak current density of sodium channel currents in SG neurons along with the characteristics of activation curves, inactivation curves, and recovery curves after inactivation were changed in the MI group. The peak current densities of control group, MI group, and fluvastatin group (n = 10 in each group) were -71.77 ± 23.22 pA/pF, -126.75 ± 18.90 pA/pF, and -86.42 ± 28.30 pA/pF, respectively (F = 4.862, P = 0.008). Fluvastatin can decrease the current amplitude which has been increased by MI. Moreover, fluvastatin induced the inactivation curves and post-inactive recovery curves moving to the position of the control group. But the expression of sodium channel-associated protein (Nav1.7) had no significantly statistical difference among the three groups. The percentages of Nav1.7 protein in control group, MI group, and fluvastatin group (n = 5 in each group) were 21.49 ± 7.33%, 28.53 ± 8.26%, and 21.64 ± 2.78%, respectively (F = 1.495, P = 0.275). Moreover, MI reduced the electrical activity of AP and increased amplitude of AP, fluvastatin pretreatment could recover amplitude and electrical activity of AP. The probability of neurons induced continuous APs were 44.44%, 14.29%, and 28.57% in control group, MI group, and fluvastatin group, respectively.
CONCLUSIONSFluvastatin pretreatment can recover electrophysiology characteristics of ion channel and AP in SG neurons in a rabbit model of MI. It could be considered as potential method for treating coronary heart diseases.
Action Potentials ; drug effects ; Animals ; Fatty Acids, Monounsaturated ; pharmacology ; Indoles ; pharmacology ; Myocardial Ischemia ; drug therapy ; Rabbits ; Sodium Channels ; drug effects ; Stellate Ganglion ; drug effects ; physiology
9.Effect of 5-HT7 receptor agonist on pyramidal neurons in the medial frontal cortex in a rat model of Parkinson's disease.
Ling-Ling FAN ; Bo DENG ; Jun-Bao YAN ; Zhi-Hong HU ; Ai-Hong REN ; Yong-Mei HU ; Dong-Wei YANG
Journal of Southern Medical University 2016;36(6):756-762
OBJECTIVETo investigate the activity of pyramidal neurons in the medial prefrontal cortex (mPFC) of normal and 6-OHDA-lesioned rats and the responses of the neurons to 5-hydroxytryptamine-7 (5-HT(7)) receptor stimulation.
METHODSThe changes in spontaneous firing of the pyramidal neurons in the mPFC in response to 5-HT(7) receptor stimulation were observed by extracellular recording in normal and 6-OHDA-lesioned rats.
RESULTSBoth systemic and local administration of 5-HT(7) receptor agonist AS 19 resulted in 3 response patterns (excitation, inhibition and no change) of the pyramidal neurons in the mPFC of normal and 6-OHDA-lesioned rats. In normal rats, the predominant response of the pyramidal neurons to AS 19 stimulation was excitatory, and the inhibitory effect of systemically administered AS 19 was reversed by GABAA receptor antagonist picrotoxinin. In the lesioned rats, systemic administration of AS 19 also increased the mean firing rate of the pyramidal neurons, but the cumulative dose for producing excitation was higher than that in normal rats. Systemic administration of AS 19 produced an inhibitory effect in the lesioned rats, which was partially reversed by picrotoxinin. Local administration of AS 19 at the same dose did not change the ?ring rate of the neurons in the lesioned rats.
CONCLUSIONThe activity of mPFC pyramidal neurons is directly or indirectly regulated by 5-HT7 receptor, and degeneration of the nigrostriatal pathway leads to decreased response of these neurons to AS 19.
Action Potentials ; Animals ; Oxidopamine ; Parkinson Disease ; metabolism ; Prefrontal Cortex ; cytology ; Pyramidal Cells ; drug effects ; Rats ; Receptors, Serotonin ; metabolism ; Serotonin Receptor Agonists ; pharmacology
10.Cannabinoids increase mechanosensitivity of trigeminal ganglion neurons innervating the inner walls of rat anterior chambers via activation of TRPA1.
Yun LING ; Zhuang-Li HU ; Qing-Li MENG ; Peng FANG ; Hai-Xia LIU
Journal of Huazhong University of Science and Technology (Medical Sciences) 2016;36(5):727-731
Our previous study found that some trigeminal ganglion (TG) nerve endings in the inner walls of rat anterior chambers were mechanosensitive, and transient receptor potential ankyrin 1 (TRPA1) was an essential mechanosensitive channel in the membrane. To address the effect of cannabinoids on the mechanosensitive TG nerve endings in the inner walls of anterior chambers of rat eye, we investigated the effect of the (R)-(+)-WIN55, 212-2 mesylate salt (WIN), a synthetic cannabinoid on their cell bodies in vitro. Rat TG neurons innervating the inner walls of the anterior chambers were labeled by 1,1'-dilinoleyl-3,3,3',3'-tetramethylindocarbocyanine, 4-chlorobenzenesulfona (FAST DiI). Whole cell patch clamp was performed to record the currents induced by drugs and mechanical stimulation. Mechanical stimulation was applied to the neurons by buffer ejection. WIN evoked inward currents via TRPA1 activation in FAST DiI-labeled TG neurons. WIN enhanced mechanosensitive currents via TRPA1 activation in FAST DiI-labeled TG neurons. Our results indicate that cannabinoids can enhance the mechanosensitivity of TG endings in the inner walls of anterior chambers of rat eye via TRPA1 activation.
Action Potentials
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drug effects
;
Animals
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Anterior Chamber
;
drug effects
;
innervation
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Cannabinoids
;
administration & dosage
;
Eye
;
drug effects
;
innervation
;
Neurons
;
drug effects
;
Patch-Clamp Techniques
;
Rats
;
Rats, Sprague-Dawley
;
TRPA1 Cation Channel
;
TRPC Cation Channels
;
biosynthesis
;
genetics
;
Trigeminal Ganglion
;
drug effects
;
physiology

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