1.Metronidazole-Induced Craniocervical Myoclonus with Reversible Bilateral Dentate Nucleus Lesions.
Hyun Chang LEE ; Young Eun KIM ; Hyeo Il MA
Journal of Movement Disorders 2017;10(1):67-68
No abstract available.
Cerebellar Nuclei*
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Myoclonus*
2.Three-Dimensional Heterogeneity of Cerebellar Interposed Nucleus-Recipient Zones in the Thalamic Nuclei.
Kuang-Yi MA ; Xin-Yu CAI ; Xin-Tai WANG ; Zhao-Xiang WANG ; Wan-Meng HUANG ; Zhi-Ying WU ; Zhou-Yan FENG ; Ying SHEN
Neuroscience Bulletin 2021;37(11):1529-1541
The cerebellum is conceptualized as a processor of complex movements and is also endowed with roles in cognitive and emotional behaviors. Although the axons of deep cerebellar nuclei are known to project to primary thalamic nuclei, macroscopic investigation of the characteristics of these projections, such as the spatial distribution of recipient zones, is lacking. Here, we studied the output of the cerebellar interposed nucleus (IpN) to the ventrolateral (VL) and centrolateral (CL) thalamic nuclei using electrophysiological recording in vivo and trans-synaptic viral tracing. We found that IpN stimulation induced mono-synaptic evoked potentials (EPs) in the VL but not the CL region. Furthermore, both the EPs induced by the IpN and the innervation of IpN projections displayed substantial heterogeneity across the VL region in three-dimensional space. These findings indicate that the recipient zones of IpN inputs vary between and within thalamic nuclei and may differentially control thalamo-cortical networks.
Axons
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Cerebellar Nuclei
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Cerebellum
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Thalamic Nuclei
3.Ventromedial Thalamus-Projecting DCN Neurons Modulate Associative Sensorimotor Responses in Mice.
Jie ZHANG ; Hao CHEN ; Li-Bin ZHANG ; Rong-Rong LI ; Bin WANG ; Qian-Hui ZHANG ; Liu-Xia TONG ; Wei-Wei ZHANG ; Zhong-Xiang YAO ; Bo HU
Neuroscience Bulletin 2022;38(5):459-473
The deep cerebellar nuclei (DCN) integrate various inputs to the cerebellum and form the final cerebellar outputs critical for associative sensorimotor learning. However, the functional relevance of distinct neuronal subpopulations within the DCN remains poorly understood. Here, we examined a subpopulation of mouse DCN neurons whose axons specifically project to the ventromedial (Vm) thalamus (DCNVm neurons), and found that these neurons represent a specific subset of DCN units whose activity varies with trace eyeblink conditioning (tEBC), a classical associative sensorimotor learning task. Upon conditioning, the activity of DCNVm neurons signaled the performance of conditioned eyeblink responses (CRs). Optogenetic activation and inhibition of the DCNVm neurons in well-trained mice amplified and diminished the CRs, respectively. Chemogenetic manipulation of the DCNVm neurons had no effects on non-associative motor coordination. Furthermore, optogenetic activation of the DCNVm neurons caused rapid elevated firing activity in the cingulate cortex, a brain area critical for bridging the time gap between sensory stimuli and motor execution during tEBC. Together, our data highlights DCNVm neurons' function and delineates their kinematic parameters that modulate the strength of associative sensorimotor responses.
Animals
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Blinking
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Cerebellar Nuclei/physiology*
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Cerebellum
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Mice
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Neurons/physiology*
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Thalamus
4.Characterization of Membrane Excitability of Purkinje Cells in Vestibulocerebellum Using Patch Clamp Techniques.
Korean Journal of Otolaryngology - Head and Neck Surgery 2013;56(4):185-190
Cerebellum is known as a center for sensory/motor coordination and memory storage in motor learning. The vestibular nuclei have extensive afferent and efferent connections with posterior cerebellum which can be referred to as vestibulocerebellum. While secondary vestibular afferents are distributed bilaterally in the vestibulocerebellum, primary afferents may directly project to ipsilateral vestibulocerebellum. The Purkinje cells which are the only output neurons from the cerebellar cortex receive vestibular information via parallel and climbing fibers. That information is integrated and encoded in the Purkinje cells and then conveyed into the vestibular nucleus or deep cerebellar nucleus, which permits adaptive guidance of vestibular function by the vestibulocerebellum.
Cerebellar Cortex
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Cerebellar Nuclei
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Cerebellum
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Electrophysiology
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Learning
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Membranes
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Memory
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Neurons
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Patch-Clamp Techniques
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Purkinje Cells
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Vestibular Nuclei
5.Transient Cerebellar Mutism after Total Removal of Medulloblastoma in a Child: Case Report.
Chang Bong KONG ; Kyung Bo CHOI ; Hyung Dong KIM
Journal of Korean Neurosurgical Society 2002;32(4):384-386
Transient mutism resolving to cerebellar speech after posterior fossa surgery is a well recognized phenomenon, particularly in pediatric patients. The anatomic basis for this postoperative functional change is unclear, but may reside in the dominant superior cerebellar hemisphere or the medial deep cerebellar nuclei. We report a case of a 9-year-old boy who presented for surgical resection of a medulloblastoma. Preoperatively, his complaint consisted of headache, nausea, vomiting and cerebellar ataxia. He had normal speech. At one day after operation, suddenly he was unable to speech, however, communication through a variety of verbal cues, including sign language was possible. His mutism lasted 12 days and cerebellar dysarthria was slowly resolved.
Cerebellar Ataxia
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Cerebellar Nuclei
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Child*
;
Cues
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Dysarthria
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Headache
;
Humans
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Male
;
Medulloblastoma*
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Mutism*
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Nausea
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Sign Language
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Vomiting
6.The Emerging Concept of Intrinsic Plasticity: Activity-dependent Modulation of Intrinsic Excitability in Cerebellar Purkinje Cells and Motor Learning.
Hyun Geun SHIM ; Yong Seok LEE ; Sang Jeong KIM
Experimental Neurobiology 2018;27(3):139-154
What is memory? How does the brain process the sensory information and modify an organism's behavior? Many neuroscientists have focused on the activity- and experience-dependent modifications of synaptic functions in order to solve these fundamental questions in neuroscience. Recently, the plasticity of intrinsic excitability (called intrinsic plasticity) has emerged as an important element for information processing and storage in the brain. As the cerebellar Purkinje cells are the sole output neurons in the cerebellar cortex and the information is conveyed from a neuron to its relay neurons by forms of action potential firing, the modulation of the intrinsic firing activity may play a critical role in the cerebellar learning. Many voltage-gated and/or Ca²⁺-activated ion channels are involved in shaping the spiking output as well as integrating synaptic inputs to finely tune the cerebellar output. Recent studies suggested that the modulation of the intrinsic excitability and its plasticity in the cerebellar Purkinje cells might function as an integrator for information processing and memory formation. Moreover, the intrinsic plasticity might also determine the strength of connectivity to the sub-cortical areas such as deep cerebellar nuclei and vestibular nuclei to trigger the consolidation of the cerebellar-dependent memory by transferring the information.
Action Potentials
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Automatic Data Processing
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Brain
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Cerebellar Cortex
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Cerebellar Nuclei
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Cerebellum
;
Fires
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Ion Channels
;
Learning*
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Memory
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Neuronal Plasticity
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Neurons
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Neurosciences
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Plastics*
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Purkinje Cells*
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Vestibular Nuclei
7.Effect of acupuncture at different acupoints on electric activities of rat cerebellar fastigial nuclear.
Chao LIANG ; Yuan WANG ; Bin XU ; Zhi YU
Chinese Journal of Integrated Traditional and Western Medicine 2015;35(4):476-480
OJECTIVETo explore whether different acupuncture signals were afferent to the cerebellar fastigial nucleus (FN) neuron and to find out their corresponding effect features through observing the effect of spontaneous discharge of cerebellar FN neuron by needling at different acupoints.
METHODSTotally 120 male SD rats were anesthetized by 20% urethane and their right cerebellar FN were positioned (AP 11. 6 mm, RL 1. 0 mm, H 5. 6 mm). Extracelluar discharge was recorded by glass microelectrode (AP: -11. 6 mm, R: 1. 0 mm, H: 5.7 -7. 0 mm), using extracellular microelectrode recording method, recording the spontaneous discharge of cerebellar FN neurons as a baseline. Random order of needling at zusanli (ST36), quchi (Lil1), weishu (BL21), and zhongwan (CV12) were compared with the baseline before each acupuncture. Their effects on the discharge of cerebellar FN neurons were observed and compared with baselines.
RESULTSThe frequency of FN neuronal discharge could be elevated by needling at zusanli (ST36), quchi (LiI), weishu (BL21), and zhongwan (CV12) (P <0. 01, P <0. 05). The response rate of needling at Zhongwan (CV12, 56. 00%) was higher than that of needling at Zusanli (ST36), Quchi (Ll1), and Weishu (BL21) (35. 00%, 34. 62%, 36. 63%, respectively) with statistical difference (P <0. 05). The response rate of needling at zhongwan (CV12) was obviously higher than that of needing at other points (F = 2. 101, P < 0. 05).
CONCLUSIONSNeedling at zusanli (ST36 ), quchi (Lil), weishu (BL21), and zhongwan (CV12) could elevate the spontaneous discharge frequency of cerebellar FN neurons. Needling at Zhongwan (CV12) had advantageous roles in regulating cerebellar FN.
Acupuncture Points ; Acupuncture Therapy ; Animals ; Cerebellar Nuclei ; physiology ; Male ; Microelectrodes ; Neurons ; Rats ; Rats, Sprague-Dawley
8.Effects of fastigial nucleus stimulation on crucial cardiovascular physiological parameters.
Jin WANG ; Xue-Long TIAN ; Xin ZHANG ; Min WANG
Chinese Journal of Applied Physiology 2010;26(4):507-509
OBJECTIVEIn order to study the effect of fastigial nucleus stimulation (FNS) on human cardiovascular system, the photo plethysmogram (PPG) affected by FNS were recorded and analyzed.
METHODSThirty volunteers' pulse signals were recorded before, during and after the FNS, and 5 PPG characteristics, such as H, Slope, and K were extracted. Changes of each characteristic in three stages were analyzed contrastive and based on which physiological changes caused by FNS were described.
RESULTSThe pulse wave showed sensitive on-going short-term changes during the FNS.
CONCLUSIONChanges of characteristics indicates that FNS results in ongoing short-term changes of some physiological parameters such as peripheral blood flow and peripheral resistance.
Adult ; Cardiovascular Physiological Phenomena ; Cerebellar Nuclei ; physiology ; Electric Stimulation ; Female ; Heart Rate ; Humans ; Male
9.Case of Atypical Wernicke's Encephalopathy in a GB Cancer Patient.
Yun Hwa JUNG ; Hyun Ah YU ; Gun Jung YOUN ; Ja In LEE ; In Sook WOO ; Chi Wha HAN
Korean Journal of Medicine 2013;84(4):602-607
Wernicke's encephalopathy (WE) is an acute neuropsychiatric syndrome resulting from thiamine deficiency. Traditionally, diagnosis of WE rests on a clinical symptom triad consisting of ocular signs, altered consciousness, and ataxia. However, the complete triad is only present in a fraction of cases, which means that WE tends to be under-diagnosed, especially in nonalcoholic patients. Brain MRI of WE patients usually shows symmetrical signal intensity alterations in the thalami, mammillary bodies, and periaqueductal area, because of cytotoxic edema in the same region. These typical findings are useful diagnostic leads in WE patients with atypical symptoms. However, atypical findings can occasionally be seen in the vermis of cerebellum and cerebellar nuclei. Notably, alterations of signal intensity in the cerebellar dentate nuclei, which is a typical finding of metronidazole-induced encephalopathy (MIE), need to be distinguished according to medication history and response to thiamine.
Ataxia
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Brain
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Cerebellar Nuclei
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Cerebellum
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Consciousness
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Edema
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Humans
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Mamillary Bodies
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Metronidazole
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Thiamine
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Thiamine Deficiency
;
Wernicke Encephalopathy
10.Electromyographical Changes of Anterior Tibial Muscle after Stimulation of Cerebella Dentate Nucleus in Cats.
Jae Hoon SUNG ; Moon Chan KIM ; Joon Ki KANG ; Chang Rak CHOI
Journal of Korean Neurosurgical Society 1994;23(7):768-774
Through the use of stereotactic neurosurgical operation, some authors have employed chronic electrical stimulation of the dentate nucleus spasticity and each trial on spastic patients has show marked clinical improvement. We investigated the electrophysiological changes of cats after stereotactic electrical stimulation of the dentate nucleus to elucidate the possibility of clinical application and to evaluate the clinical results. The M-wave is an initial response and the F-wave is a late response in the electromyography of a muscle, which is stimulated by its original controlling nerve itself. There is evidence that the size of the F-wave is dependent on motor neuron excitability and its amplitude is increased significantly at spastic condition. If such a relationship exists, procedures which are carried out to relieve spasticity might be exerted to change the F-wave size and thus it might be possible to use the F-wave as an objective monitor during electrical stimulation of the dentate nucleus. We investigated this possibility in experiments on 10cats weighing between 2.7 Kg and 4.4 Kg. We studied the changes of M and F waves, recorded in EMG, after stereotactic stimulation to cerebellar dentate nucleus in cats. The results were as follows : 1) The change of mean value of M-wave amplitude was not significant(control group, 3591+/-1029 microV : stimulation group, 3424+/-927 microV, P>0.05). 2) The mean value of F-wave amplitude was significantly reduced about 56.7% after the dentate stimulation(control group, 443.2+/-119 microV : stimulation group, 251.3+/-99.4 microV, P<0.05). 3) The F/M ratio also significantly reduced, about 56.8% after the dentate stimulation(control group, 12.5+/-1.9%, stimulation group, 7.1+/-1.2%, P<0.05). Our experimental results demonstrated that the dentate stimulation markedly decreased the size of F-wave amplitude and F/M ration in the experimental cats and we concluded that these electrophysiological changes can be applied as a parameter of clinical evaluation of electrical dentate stimulation for the spasticity.
Animals
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Cats*
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Cerebellar Nuclei*
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Cerebellum
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Electric Stimulation
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Electromyography
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Humans
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Motor Neurons
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Muscle Spasticity
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Muscle, Skeletal*