• 제목/요약/키워드: Neuronal synapse

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노화된 흰쥐 뇌 삼차신경주감각핵에 관한 전자현미경적 연구 (An Electron Microscopic Study on the Main Sensory Trigeminal Nucleus in the Aging Rat Brain)

  • 김명국
    • Applied Microscopy
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    • 제25권1호
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    • pp.1-14
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    • 1995
  • The purpose of this study was to investigate the main sensory trigeminal nucleus in the aging rat brain by means of electron microscope. Male Sprague-Dawley rats, two (control group) and thirty six (aging group) months of age, were used. These animals were sacrificed by perfusion fixation with 2.5% glutaraldehyde-2.0% paraformaldehyde (0.1M phosphate buffer, pH 7.4) under sodium pentobarbital. The objective area was punched out with a sharp-edged metal cylinder of 0.8 mm in diameter. These blocks of tissue were then washed in 0.1M phosphate buffer, postfixed in 2% osmium tetroxide, dehydrated in a graded series of ethyl alcohol, and embedded in Epon 812. Thin sections were cut with Super Nova ultramicrotome, pick up on grids and double stained with lead citrate and uranyl acetate, and observed in JEOL 100B electron microscope. The results were as follows: 1. In the control group, the neuronal cell body of the main sensory trigeminal nucleus was filled with nucleus, Golgi complex, Nissl substance, mitochondria, microfilaments and microtubules. However, few Nissl substances are seen in neuronal cell body. Axoaxonic synapse, axodendritic synapse, axosomatic synapse, axospinous synapse, myelinated and unmyelinated nerve fibers were well organized around cell bodies. Neurons with abnormal changes were not seen. 2. In the aging group, the neuronal cell body of the main sensory trigeminal nucleus contained large number of lipofuscin granules, dense body and swollen mitochondria. Terminal boutons contained glycogen, crystal-like vesicle and membranous indicating first signs of degeneration. The dendrites were found to be in synaptic contact with altered axon terminals. Frequently axons filled with dark axoplasn and splitted myelin sheath were noticed.

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인식론의 신경 생물학적 고찰 및 수학 활동과 관련된 두뇌의 활성화 (Neurobiological Aspects of Epistemology and Brain Areas related to Mathematical Activities)

  • 김연미
    • 대한수학교육학회지:수학교육학연구
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    • 제20권1호
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    • pp.21-43
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    • 2010
  • 본고에서는 인식론의 여러 분야인 선천주의(nativism), 경험주의(empiricism), 구성주의(constructivism) 등이 신경생물학적으로 어떻게 대응되어 나타나는가를 고찰하고, 그들 주장의 장단점을 살펴본다. 두 번째로 위의 이론들을 통해 수학교육의 기본이 되는 수인지(numerical/mathematical cognitipn) 분야를 소개하고 현재 연구 동향과 수학교육에의 적용을 모색한다. 이어서 fMRI 등의 뇌영상 촬영기법 등을 통해 현재까지 알려진 기초 대수적 활동과 관련된 두뇌 영역을 확정해보고자 한다.

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Oleanolic Acid Promotes Neuronal Differentiation and Histone Deacetylase 5 Phosphorylation in Rat Hippocampal Neurons

  • Jo, Hye-Ryeong;Wang, Sung Eun;Kim, Yong-Seok;Lee, Chang Ho;Son, Hyeon
    • Molecules and Cells
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    • 제40권7호
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    • pp.485-494
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    • 2017
  • Oleanolic acid (OA) has neurotrophic effects on neurons, although its use as a neurological drug requires further research. In the present study, we investigated the effects of OA and OA derivatives on the neuronal differentiation of rat hippocampal neural progenitor cells. In addition, we investigated whether the class II histone deacetylase (HDAC) 5 mediates the gene expression induced by OA. We found that OA and OA derivatives induced the formation of neurite spines and the expression of synapse-related molecules. OA and OA derivatives stimulated HDAC5 phosphorylation, and concurrently the nuclear export of HDCA5 and the expression of HDAC5 target genes, indicating that OA and OA derivatives induce neural differentiation and synapse formation via a pathway that involves HDAC5 phosphorylation.

Neuronal Activity-Dependent Regulation of MicroRNAs

  • Sim, Su-Eon;Bakes, Joseph;Kaang, Bong-Kiun
    • Molecules and Cells
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    • 제37권7호
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    • pp.511-517
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    • 2014
  • MicroRNAs are non-coding short (~23 nucleotides) RNAs that mediate post-transcriptional regulation through sequence-specific gene silencing. The role of miRNAs in neuronal development, synapse formation and synaptic plasticity has been highlighted. However, the role of neuronal activity on miRNA regulation has been less focused. Neuronal activity-dependent regulation of miRNA may finetune gene expression in response to synaptic plasticity and memory formation. Here, we provide an overview of miRNA regulation by neuronal activity including high-throughput screening studies. We also discuss the possible molecular mechanisms of activity-dependent induction and turnover of miRNAs.

서순응형 치근막 일차구심성 신경섬유 종말부의 Subnucleus oralis에서의 시냅스 양상에 관한 전자현미경적 연구 (ELECTRON MICROSCOPIC STUDY OF SLOWLY ADAPTING PERIODONTAL MECHANORECEPTIVE PRIMARY AFFERENT FIBERS WITHIN THE SUBNUCLEUS ORALIS OF THE CAT)

  • 김무중;배용철;김진수
    • Maxillofacial Plastic and Reconstructive Surgery
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    • 제15권4호
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    • pp.281-301
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    • 1993
  • 단일축삭내 HRP 주입기법에 의해 서순응형 치근막 기계적자극수용기에서 오는 일차구심성 신경섬유증 무수축삭에 의해 연결되어 있는 종말지의 시냅양상 및 미세구조에 대한 연구결과는 다음과 같았다. 1. 표식된 stem collateral은 첫 bouton을 형성할 때까지는 수질을 함유하고 있었으며, 그 직경은 약 $0.81-1.38{\mu}m$이었고, 각 terminal bouton은 특징적으로 모두가 무수축삭에 의해 연결되어 있었다. 2. 대부분의 표식 bouton은 dome형태를 나타내었으며, 때때로 길쭉한 모양 혹은 둥근모양의 bouton도 다소 관찰되었으나 scalloped 형태 혹은 glomerulus 형태의 bouton은 전혀 나타나지 않았으며 각 표식 bouton은 균일한 형태 및 크기(직경 $47.60{\pm}3.58{\mu}m$)를 가진 밝은 타원 및 원형의 소포들을 함유하고 있었다. 3. 표식 bouton은 평균직경 $1.15{\pm}0.24{\mu}m$로서 비교적 작았고 평균 $1.11{\pm}0.31$개의 다른 neuronal propile과 시냅스를 이루었는데 그중 단 1개의 neuronal propile과 시냅스를 이루는 것이 89.4%, 2개의 neuronal propile과 시냅스를 이루는 것이 10.6%로서 대단히 단순한 형태의 시냅스를 이루는 것이 특징적으로 나타났으며, 그중 대부분(80.03%)이 dendritic shaft 혹은 spine과만 시냅스를 이루었으며 p-ending과 시냅스를 이루는 것은 6.1%였고 synaptic triad는 전혀 관찰되지 않았다.

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Protein tyrosine phosphatase PTPRT as a regulator of synaptic formation and neuronal development

  • Lee, Jae-Ran
    • BMB Reports
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    • 제48권5호
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    • pp.249-255
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    • 2015
  • PTPRT/RPTPρ is the most recently isolated member of the type IIB receptor-type protein tyrosine phosphatase family and its expression is restricted to the nervous system. PTPRT plays a critical role in regulation of synaptic formation and neuronal development. When PTPRT was overexpressed in hippocampal neurons, synaptic formation and dendritic arborization were induced. On the other hand, knockdown of PTPRT decreased neuronal transmission and attenuated neuronal development. PTPRT strengthened neuronal synapses by forming homophilic trans dimers with each other and heterophilic cis complexes with neuronal adhesion molecules. Fyn tyrosine kinase regulated PTPRT activity through phosphorylation of tyrosine 912 within the membrane-proximal catalytic domain of PTPRT. Phosphorylation induced homophilic cis dimerization of PTPRT and resulted in the inhibition of phosphatase activity. BCR-Rac1 GAP and Syntaxin-binding protein were found as new endogenous substrates of PTPRT in rat brain. PTPRT induced polymerization of actin cytoskeleton that determined the morphologies of dendrites and spines by inhibiting BCR-Rac1 GAP activity. Additionally, PTPRT appeared to regulate neurotransmitter release through reinforcement of interactions between Syntaxin-binding protein and Syntaxin, a SNARE protein. In conclusion, PTPRT regulates synaptic function and neuronal development through interactions with neuronal adhesion molecules and the dephosphorylation of synaptic molecules. [BMB Reports 2015; 48(5): 249-255]

Neuronal function and dysfunction of CYFIP2: from actin dynamics to early infantile epileptic encephalopathy

  • Zhang, Yinhua;Lee, Yeunkum;Han, Kihoon
    • BMB Reports
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    • 제52권5호
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    • pp.304-311
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    • 2019
  • The cytoplasmic FMR1-interacting protein family (CYFIP1 and CYFIP2) are evolutionarily conserved proteins originally identified as binding partners of the fragile X mental retardation protein (FMRP), a messenger RNA (mRNA)-binding protein whose loss causes the fragile X syndrome. Moreover, CYFIP is a key component of the heteropentameric WAVE regulatory complex (WRC), a critical regulator of neuronal actin dynamics. Therefore, CYFIP may play key roles in regulating both mRNA translation and actin polymerization, which are critically involved in proper neuronal development and function. Nevertheless, compared to CYFIP1, neuronal function and dysfunction of CYFIP2 remain largely unknown, possibly due to the relatively less well established association between CYFIP2 and brain disorders. Despite high amino acid sequence homology between CYFIP1 and CYFIP2, several in vitro and animal model studies have suggested that CYFIP2 has some unique neuronal functions distinct from those of CYFIP1. Furthermore, recent whole-exome sequencing studies identified de novo hot spot variants of CYFIP2 in patients with early infantile epileptic encephalopathy (EIEE), clearly implicating CYFIP2 dysfunction in neurological disorders. In this review, we highlight these recent investigations into the neuronal function and dysfunction of CYFIP2, and also discuss several key questions remaining about this intriguing neuronal protein.

Genome-Wide Analysis Identifies NURR1-Controlled Network of New Synapse Formation and Cell Cycle Arrest in Human Neural Stem Cells

  • Kim, Soo Min;Cho, Soo Young;Kim, Min Woong;Roh, Seung Ryul;Shin, Hee Sun;Suh, Young Ho;Geum, Dongho;Lee, Myung Ae
    • Molecules and Cells
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    • 제43권6호
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    • pp.551-571
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    • 2020
  • Nuclear receptor-related 1 (Nurr1) protein has been identified as an obligatory transcription factor in midbrain dopaminergic neurogenesis, but the global set of human NURR1 target genes remains unexplored. Here, we identified direct gene targets of NURR1 by analyzing genome-wide differential expression of NURR1 together with NURR1 consensus sites in three human neural stem cell (hNSC) lines. Microarray data were validated by quantitative PCR in hNSCs and mouse embryonic brains and through comparison to published human data, including genome-wide association study hits and the BioGPS gene expression atlas. Our analysis identified ~40 NURR1 direct target genes, many of them involved in essential protein modules such as synapse formation, neuronal cell migration during brain development, and cell cycle progression and DNA replication. Specifically, expression of genes related to synapse formation and neuronal cell migration correlated tightly with NURR1 expression, whereas cell cycle progression correlated negatively with it, precisely recapitulating midbrain dopaminergic development. Overall, this systematic examination of NURR1-controlled regulatory networks provides important insights into this protein's biological functions in dopamine-based neurogenesis.

시냅스 접착 단백질과 구조 단백질의 정신과적 의의 (Psychiatric Implication of Synaptic Adhesion Molecules and Scaffold Proteins)

  • 오대영
    • 생물정신의학
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    • 제17권3호
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    • pp.119-126
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    • 2010
  • Synaptic adhesion molecules mediate synapse formation, maturation and maintenance. These proteins are localized at synaptic sites in neuronal axons and dendrites. These proteins function as a bridge of synaptic cleft via interaction with another synaptic adhesion molecules in the opposite side. They can interact with scaffold proteins via intracellular domain and recruit many synaptic proteins, signaling proteins and synaptic vesicles. Scaffold proteins function as a platform in dendritic spines or axonal terminals. Recently, many genetic studies have revealed that synaptic adhesion molecules and scaffold proteins are important in neurodevelopmental disorders, psychotic disorders, mood disorders and anxiety disorders. In this review, fundamental mechanisms of synapse formation and maturation related with synaptic adhesion molecules and scaffold proteins are introduced and their psychiatric implications addressed.

Glial Mechanisms of Neuropathic Pain and Emerging Interventions

  • Jo, Daehyun;Chapman, C. Richard;Light, Alan R.
    • The Korean Journal of Pain
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    • 제22권1호
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    • pp.1-15
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    • 2009
  • Neuropathic pain is often refractory to intervention because of the complex etiology and an incomplete understanding of the mechanisms behind this type of pain. Glial cells, specifically microglia and astrocytes, are powerful modulators of pain and new targets of drug development for neuropathic pain. Glial activation could be the driving force behind chronic pain, maintaining the noxious signal transmission even after the original injury has healed. Glia express chemokine, purinergic, toll-like, glutaminergic and other receptors that enable them to respond to neural signals, and they can modulate neuronal synaptic function and neuronal excitability. Nerve injury upregulates multiple receptors in spinal microglia and astrocytes. Microglia influence neuronal communication by producing inflammatory products at the synapse, as do astrocytes because they completely encapsulate synapses and are in close contact with neuronal somas through gap junctions. Glia are the main source of inflammatory mediators in the central nervous system. New therapeutic strategies for neuropathic pain are emerging such as targeting the glial cells, novel pharmacologic approaches and gene therapy. Drugs targeting microglia and astrocytes, cytokine production, and neural structures including dorsal root ganglion are now under study, as is gene therapy. Isoform-specific inhibition will minimize the side effects produced by blocking all glia with a general inhibitor. Enhancing the anti-inflammatory cytokines could prove more beneficial than administering proinflammatory cytokine antagonists that block glial activation systemically. Research on therapeutic gene transfer to the central nervous system is underway, although obstacles prevent immediate clinical application.