1.Distinct recruitment dynamics of chandelier cells and basket cells by thalamocortical inputs.
Kai ZHANG ; Bai-Hui REN ; Yi-Lin TAI ; Jiang-Teng LYU
Acta Physiologica Sinica 2022;74(5):697-704
Diverse types of GABAergic interneurons tend to specialize in their inhibitory control of various aspects of cortical circuit operations. Among the most distinctive interneuron types, chandelier cells (i.e., axo-axonic cells) are a bona fide cell type that specifically innervates pyramidal cells at the axon initial segment, the site of action potential initiation. Chandelier cells have been speculated to exert ultimate inhibitory control over pyramidal cell spiking. Thus, chandelier cells appear to share multiple similarities with basket cells, not only in firing pattern (fast spiking) and molecular components, but also in potentially perisomatic inhibitory control. Unlike basket cells, however, synaptic recruitment of chandelier cells is little known yet. Here, we examined the mediodorsal thalamocortical input to both chandelier cells and basket cells in medial prefrontal cortex, through combining mouse genetic, optogenetic and electrophysiological approaches. We demonstrated that this thalamocortical input produced initially weak, but facilitated synaptic responses at chandelier cells, which enabled chandelier cells to spike persistently. In contrast, this thalamocortical input evoked initially strong, but rapidly depressed synaptic responses at basket cells, and basket cells only fired at the initiation of input. Overall, the distinct synaptic recruitment dynamics further underscores the differences between chandelier cells and basket cells, suggesting that these two types of fast spiking interneurons play different roles in cortical circuit processing and physiological operation.
Mice
;
Animals
;
Neurons/physiology*
;
Pyramidal Cells/physiology*
;
Interneurons
;
Action Potentials/physiology*
;
Synaptic Transmission
2.β-Sitosterol treatment attenuates cognitive deficits and prevents amyloid plaque deposition in amyloid protein precursor/presenilin 1 mice
Jian Ya YE ; Li LI ; Qing Mao HAO ; Yong QIN ; Chang Sheng MA
The Korean Journal of Physiology and Pharmacology 2020;24(1):39-46
Alzheimer's disease (AD) is the most common neurodegenerative disorder causing dementia worldwide, and is mainly characterized by aggregated β-amyloid (Aβ). Increasing evidence has shown that plant extracts have the potential to delay AD development. The plant sterol β-Sitosterol has a potential role in inhibiting the production of platelet Aβ, suggesting that it may be useful for AD prevention. In the present study, we aimed to investigate the effect and mechanism of β-Sitosterol on deficits in learning and memory in amyloid protein precursor/presenilin 1 (APP/PS1) double transgenic mice. APP/PS1 mice were treated with β-Sitosterol for four weeks, from the age of seven months. Brain Aβ metabolism was evaluated using ELISA and Western blotting. We found that β-Sitosterol treatment can improve spatial learning and recognition memory ability, and reduce plaque load in APP/PS1 mice. β-Sitosterol treatment helped reverse dendritic spine loss in APP/PS1 mice and reversed the decreased hippocampal neuron miniature excitatory postsynaptic current frequency. Our research helps to explain and support the neuroprotective effect of β-Sitosterol, which may offer a novel pharmaceutical agent for the treatment of AD. Taken together, these findings suggest that β-Sitosterol ameliorates memory and learning impairment in APP/PS1 mice and possibly decreases Aβ deposition.
Alzheimer Disease
;
Amyloid
;
Animals
;
Blood Platelets
;
Blotting, Western
;
Brain
;
Cognition Disorders
;
Dementia
;
Dendritic Spines
;
Enzyme-Linked Immunosorbent Assay
;
Excitatory Postsynaptic Potentials
;
Learning
;
Memory
;
Metabolism
;
Mice
;
Mice, Transgenic
;
Neurodegenerative Diseases
;
Neurons
;
Neuroprotective Agents
;
Plant Extracts
;
Plants
;
Plaque, Amyloid
;
Spatial Learning
3.Pharmacological Dissection of Intrinsic Optical Signal Reveals a Functional Coupling between Synaptic Activity and Astrocytic Volume Transient
Junsung WOO ; Young Eun HAN ; Wuhyun KOH ; Joungha WON ; Min Gu PARK ; Heeyoung AN ; C Justin LEE
Experimental Neurobiology 2019;28(1):30-42
The neuronal activity-dependent change in the manner in which light is absorbed or scattered in brain tissue is called the intrinsic optical signal (IOS), and provides label-free, minimally invasive, and high spatial (~100 µm) resolution imaging for visualizing neuronal activity patterns. IOS imaging in isolated brain slices measured at an infrared wavelength (>700 nm) has recently been attributed to the changes in light scattering and transmittance due to aquaporin-4 (AQP4)-dependent astrocytic swelling. The complexity of functional interactions between neurons and astrocytes, however, has prevented the elucidation of the series of molecular mechanisms leading to the generation of IOS. Here, we pharmacologically dissected the IOS in the acutely prepared brain slices of the stratum radiatum of the hippocampus, induced by 1 s/20 Hz electrical stimulation of Schaffer-collateral pathway with simultaneous measurement of the activity of the neuronal population by field potential recordings. We found that 55% of IOSs peak upon stimulation and originate from postsynaptic AMPA and NMDA receptors. The remaining originated from presynaptic action potentials and vesicle fusion. Mechanistically, the elevated extracellular glutamate and K⁺ during synaptic transmission were taken up by astrocytes via a glutamate transporter and quinine-sensitive K2P channel, followed by an influx of water via AQP-4. We also found that the decay of IOS is mediated by the DCPIB- and NPPB-sensitive anion channels in astrocytes. Altogether, our results demonstrate that the functional coupling between synaptic activity and astrocytic transient volume change during excitatory synaptic transmission is the major source of IOS.
Action Potentials
;
alpha-Amino-3-hydroxy-5-methyl-4-isoxazolepropionic Acid
;
Amino Acid Transport System X-AG
;
Astrocytes
;
Brain
;
Electric Stimulation
;
Glutamic Acid
;
Hippocampus
;
Jupiter
;
Neurons
;
Receptors, N-Methyl-D-Aspartate
;
Synaptic Transmission
;
Water
4.Layer-specific cholinergic modulation of synaptic transmission in layer 2/3 pyramidal neurons of rat visual cortex
Kwang Hyun CHO ; Seul Yi LEE ; Kayoung JOO ; Duck Joo RHIE
The Korean Journal of Physiology and Pharmacology 2019;23(5):317-328
It is known that top-down associative inputs terminate on distal apical dendrites in layer 1 while bottom-up sensory inputs terminate on perisomatic dendrites of layer 2/3 pyramidal neurons (L2/3 PyNs) in primary sensory cortex. Since studies on synaptic transmission in layer 1 are sparse, we investigated the basic properties and cholinergic modulation of synaptic transmission in layer 1 and compared them to those in perisomatic dendrites of L2/3 PyNs of rat primary visual cortex. Using extracellular stimulations of layer 1 and layer 4, we evoked excitatory postsynaptic current/potential in synapses in distal apical dendrites (L1-EPSC/L1-EPSP) and those in perisomatic dendrites (L4-EPSC/L4-EPSP), respectively. Kinetics of L1-EPSC was slower than that of L4-EPSC. L1-EPSC showed presynaptic depression while L4-EPSC was facilitating. In contrast, inhibitory postsynaptic currents showed similar paired-pulse ratio between layer 1 and layer 4 stimulations with depression only at 100 Hz. Cholinergic stimulation induced presynaptic depression by activating muscarinic receptors in excitatory and inhibitory synapses to similar extents in both inputs. However, nicotinic stimulation enhanced excitatory synaptic transmission by ~20% in L4-EPSC. Rectification index of AMPA receptors and AMPA/NMDA ratio were similar between synapses in distal apical and perisomatic dendrites. These results provide basic properties and cholinergic modulation of synaptic transmission between distal apical and perisomatic dendrites in L2/3 PyNs of the visual cortex, which might be important for controlling information processing balance depending on attentional state.
Animals
;
Automatic Data Processing
;
Dendrites
;
Depression
;
Inhibitory Postsynaptic Potentials
;
Kinetics
;
Pyramidal Cells
;
Rats
;
Receptors, AMPA
;
Receptors, Muscarinic
;
Synapses
;
Synaptic Transmission
;
Visual Cortex
5.Impaired Hypothalamic Regulation of Sympathetic Outflow in Primary Hypertension.
Jing-Jing ZHOU ; Hui-Jie MA ; Jian-Ying SHAO ; Hui-Lin PAN ; De-Pei LI
Neuroscience Bulletin 2019;35(1):124-132
The hypothalamic paraventricular nucleus (PVN) is a crucial region involved in maintaining homeostasis through the regulation of cardiovascular, neuroendocrine, and other functions. The PVN provides a dominant source of excitatory drive to the sympathetic outflow through innervation of the brainstem and spinal cord in hypertension. We discuss current findings on the role of the PVN in the regulation of sympathetic output in both normotensive and hypertensive conditions. The PVN seems to play a major role in generating the elevated sympathetic vasomotor activity that is characteristic of multiple forms of hypertension, including primary hypertension in humans. Recent studies in the spontaneously hypertensive rat model have revealed an imbalance of inhibitory and excitatory synaptic inputs to PVN pre-sympathetic neurons as indicated by impaired inhibitory and enhanced excitatory synaptic inputs in hypertension. This imbalance of inhibitory and excitatory synaptic inputs in the PVN forms the basis for elevated sympathetic outflow in hypertension. In this review, we discuss the disruption of balance between glutamatergic and GABAergic inputs and the associated cellular and molecular alterations as mechanisms underlying the hyperactivity of PVN pre-sympathetic neurons in hypertension.
Animals
;
Blood Pressure
;
physiology
;
Excitatory Postsynaptic Potentials
;
physiology
;
Humans
;
Hypertension
;
physiopathology
;
Hypothalamus
;
physiology
;
Neurons
;
physiology
;
Paraventricular Hypothalamic Nucleus
;
physiology
6.Kir2.1 Channel Regulation of Glycinergic Transmission Selectively Contributes to Dynamic Mechanical Allodynia in a Mouse Model of Spared Nerve Injury.
Yiqian SHI ; Yangyang CHEN ; Yun WANG
Neuroscience Bulletin 2019;35(2):301-314
Neuropathic pain is a chronic debilitating symptom characterized by spontaneous pain and mechanical allodynia. It occurs in distinct forms, including brush-evoked dynamic and filament-evoked punctate mechanical allodynia. Potassium channel 2.1 (Kir2.1), which exhibits strong inward rectification, is and regulates the activity of lamina I projection neurons. However, the relationship between Kir2.1 channels and mechanical allodynia is still unclear. In this study, we first found that pretreatment with ML133, a selective Kir2.1 inhibitor, by intrathecal administration, preferentially inhibited dynamic, but not punctate, allodynia in mice with spared nerve injury (SNI). Intrathecal injection of low doses of strychnine, a glycine receptor inhibitor, selectively induced dynamic, but not punctate allodynia, not only in naïve but also in ML133-pretreated mice. In contrast, bicuculline, a GABA receptor antagonist, induced only punctate, but not dynamic, allodynia. These results indicated the involvement of glycinergic transmission in the development of dynamic allodynia. We further found that SNI significantly suppressed the frequency, but not the amplitude, of the glycinergic spontaneous inhibitory postsynaptic currents (gly-sIPSCs) in neurons on the lamina II-III border of the spinal dorsal horn, and pretreatment with ML133 prevented the SNI-induced gly-sIPSC reduction. Furthermore, 5 days after SNI, ML133, either by intrathecal administration or acute bath perfusion, and strychnine sensitively reversed the SNI-induced dynamic, but not punctate, allodynia and the gly-sIPSC reduction in lamina IIi neurons, respectively. In conclusion, our results suggest that blockade of Kir2.1 channels in the spinal dorsal horn selectively inhibits dynamic, but not punctate, mechanical allodynia by enhancing glycinergic inhibitory transmission.
Animals
;
Bicuculline
;
pharmacology
;
Disease Models, Animal
;
Glycine
;
metabolism
;
Hyperalgesia
;
drug therapy
;
etiology
;
metabolism
;
Imidazoles
;
pharmacology
;
Inhibitory Postsynaptic Potentials
;
drug effects
;
physiology
;
Male
;
Mice, Inbred C57BL
;
Neurons
;
drug effects
;
metabolism
;
Neurotransmitter Agents
;
pharmacology
;
Peripheral Nerve Injuries
;
drug therapy
;
metabolism
;
Phenanthrolines
;
pharmacology
;
Potassium Channels, Inwardly Rectifying
;
antagonists & inhibitors
;
metabolism
;
Receptors, GABA-A
;
metabolism
;
Receptors, Glycine
;
metabolism
;
Strychnine
;
pharmacology
;
Synaptic Transmission
;
drug effects
;
physiology
;
Tissue Culture Techniques
;
Touch
7.Characterization on Responsiveness of Excitatory Synaptic Transmissions to α1-Adrenoceptor Blockers in Substantia Gelatinosa Neurons Isolated From Lumbo-Sacral Level in Rat Spinal Cords
Daisuke UTA ; Tsuyoshi HATTORI ; Megumu YOSHIMURA
International Neurourology Journal 2019;23(1):13-21
PURPOSE: The aim of this study was to characterize the responsiveness of miniature excitatory postsynaptic currents (mEPSCs) to α1-adrenoceptor blockers in substantia gelatinosa (SG) neurons from the spinal cord to develop an explanation for the efficacy of α1-adrenoceptor blockers in micturition dysfunction. METHODS: Male adult Sprague-Dawley rats were used. Blind whole-cell patch-clamp recordings were performed using SG neurons in spinal cord slices. Naftopidil (100μM), tamsulosin (100μM), or silodosin (30μM), α1-adrenoceptor blockers, was perfused. The frequency of mEPSCs was recorded in an SG neuron to which the 3 blockers were applied sequentially with wash-out periods. Individual frequencies in a pair before naftopidil and tamsulosin perfusion were plotted as baseline, and the correlation between them was confirmed by Spearman correlation coefficient; linear regression was then performed. The same procedure was performed before naftopidil and silodosin perfusion. Frequencies of pairs after naftopidil and tamsulosin perfusion and after naftopidil and silodosin perfusion were similarly analyzed. The ratios of the frequencies after treatment to before were then calculated. RESULTS: After the treatments, Spearman ρ and the slope were decreased to 0.682 from 0.899 at baseline and 0.469 from 1.004 at baseline, respectively, in the tamsulosin group relative to the naftopidil group. In the silodosin group, Spearman ρ and the slope were also decreased to 0.659 from 0.889 at baseline and 0.305 from 0.989 at baseline, respectively, relative to the naftopidil group. Naftopidil significantly increased the ratio of the frequency of mEPSCs compared to tamsulosin and silodosin (P=0.015 and P=0.004, respectively). CONCLUSIONS: There was a difference in responsiveness in the frequency of mEPSCs to α1-adrenoceptor blockers, with the response to naftopidil being the greatest among the α1-adrenoceptor blockers. These data are helpful to understand the action mechanisms of α1-adrenoceptor blockers for male lower urinary tract symptoms in clinical usage.
Adrenergic alpha-1 Receptor Antagonists
;
Adult
;
Animals
;
Excitatory Postsynaptic Potentials
;
Humans
;
Linear Models
;
Lower Urinary Tract Symptoms
;
Male
;
Neurons
;
Perfusion
;
Rats
;
Rats, Sprague-Dawley
;
Spinal Cord
;
Substantia Gelatinosa
;
Urination
8.The effect of µ-opioid receptor activation on GABAergic neurons in the spinal dorsal horn.
Yoo Rim KIM ; Hyun Geun SHIM ; Chang Eop KIM ; Sang Jeong KIM
The Korean Journal of Physiology and Pharmacology 2018;22(4):419-425
The superficial dorsal horn of the spinal cord plays an important role in pain transmission and opioid activity. Several studies have demonstrated that opioids modulate pain transmission, and the activation of µ-opioid receptors (MORs) by opioids contributes to analgesic effects in the spinal cord. However, the effect of the activation of MORs on GABAergic interneurons and the contribution to the analgesic effect are much less clear. In this study, using transgenic mice, which allow the identification of GABAergic interneurons, we investigated how the activation of MORs affects the excitability of GABAergic interneurons and synaptic transmission between primary nociceptive afferent and GABAergic interneurons. We found that a selective µ-opioid agonist, [D-Ala², NMe-Phe⁴, Gly-ol]-enkephanlin (DAMGO), induced an outward current mediated by K⁺ channels in GABAergic interneurons. In addition, DAMGO reduced the amplitude of evoked excitatory postsynaptic currents (EPSCs) of GABAergic interneurons which receive monosynaptic inputs from primary nociceptive C fibers. Taken together, we found that DAMGO reduced the excitability of GABAergic interneurons and synaptic transmission between primary nociceptive C fibers and GABAergic interneurons. These results suggest one possibility that suppression of GABAergic interneurons by DMAGO may reduce the inhibition on secondary GABAergic interneurons, which increase the inhibition of the secondary GABAergic interneurons to excitatory neurons in the spinal dorsal horn. In this circumstance, the sum of excitation of the entire spinal network will control the pain transmission.
Analgesics, Opioid
;
Animals
;
Enkephalin, Ala(2)-MePhe(4)-Gly(5)-
;
Excitatory Postsynaptic Potentials
;
GABAergic Neurons*
;
Interneurons
;
Mice
;
Mice, Transgenic
;
Nerve Fibers, Unmyelinated
;
Neurons
;
Spinal Cord
;
Spinal Cord Dorsal Horn*
;
Substantia Gelatinosa
;
Synaptic Transmission
9.Botulinum toxin type A enhances the inhibitory spontaneous postsynaptic currents on the substantia gelatinosa neurons of the subnucleus caudalis in immature mice.
Seon Hui JANG ; Soo Joung PARK ; Chang Jin LEE ; Dong Kuk AHN ; Seong Kyu HAN
The Korean Journal of Physiology and Pharmacology 2018;22(5):539-546
Botulinum toxin type A (BoNT/A) has been used therapeutically for various conditions including dystonia, cerebral palsy, wrinkle, hyperhidrosis and pain control. The substantia gelatinosa (SG) neurons of the trigeminal subnucleus caudalis (Vc) receive orofacial nociceptive information from primary afferents and transmit the information to higher brain center. Although many studies have shown the analgesic effects of BoNT/A, the effects of BoNT/A at the central nervous system and the action mechanism are not well understood. Therefore, the effects of BoNT/A on the spontaneous postsynaptic currents (sPSCs) in the SG neurons were investigated. In whole cell voltage clamp mode, the frequency of sPSCs was increased in 18 (37.5%) neurons, decreased in 5 (10.4%) neurons and not affected in 25 (52.1%) of 48 neurons tested by BoNT/A (3 nM). Similar proportions of frequency variation of sPSCs were observed in 1 and 10 nM BoNT/A and no significant differences were observed in the relative mean frequencies of sPSCs among 1–10 nM BoNT/A. BoNT/A-induced frequency increase of sPSCs was not affected by pretreated tetrodotoxin (0.5 µM). In addition, the frequency of sIPSCs in the presence of CNQX (10 µM) and AP5 (20 µM) was increased in 10 (53%) neurons, decreased in 1 (5%) neuron and not affected in 8 (42%) of 19 neurons tested by BoNT/A (3 nM). These results demonstrate that BoNT/A increases the frequency of sIPSCs on SG neurons of the Vc at least partly and can provide an evidence for rapid action of BoNT/A at the central nervous system.
6-Cyano-7-nitroquinoxaline-2,3-dione
;
Animals
;
Botulinum Toxins*
;
Botulinum Toxins, Type A*
;
Brain
;
Central Nervous System
;
Cerebral Palsy
;
Dystonia
;
Hyperhidrosis
;
Mice*
;
Neurons*
;
Substantia Gelatinosa*
;
Synaptic Potentials*
;
Tetrodotoxin
10.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
;
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

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