Mechanisms Of Synaptic Plasticity In The Adult And Developing Nervous System
Mechanisms Of Synaptic Plasticity In The Adult And Developing Nervous System
批准号:
7734511
负责人:
Serena M Dudek
金额:
$194.12万
依托单位国家:
美国
项目类别:
财政年份:
--
资助国家:
美国
项目状态:
未结题
起止时间:
至
关键词:
Action PotentialsAddressAdultAgeAlzheimer&aposs DiseaseAntibodiesAreaAutistic DisorderBiochemicalBrainBrain regionCalcium SignalingCell NucleusCellsCerebral cortexCessation of lifeChromosome PairingCognitionCognitiveCollectionComplexConditionCultured CellsDevelopmentDiseaseDisease ResistanceDisruptionDown-RegulationElectric StimulationEnvironmentEnvironmental ExposureEnvironmental HealthExposure toExtracellular Signal Regulated KinasesFrequenciesGenerationsGenesGenetic TranscriptionGoalsHandHippocampus (Brain)HumanImageImaging TechniquesIn VitroInhibitory SynapseIschemiaLaboratoriesLeadLearningLifeLong-Term DepressionLong-Term PotentiationMAPK3 geneMeasuresMediatingMemoryMethodsMicroscopyMitogen-Activated Protein KinasesModelingModificationMolecularMorphologyMusN-Methyl-D-Aspartate ReceptorsNatureNeonatalNervous system structureNeuronsNuclearOrganismPathway interactionsPatternPhosphotransferasesPhysiologicalPhysiologyPlasticsPlayPopulationPotassium ChannelPredispositionPreparationProcessProteinsRNARattusRegulationResistanceRoleSchizophreniaSensorySignal PathwaySignal TransductionSliceStaining methodStainsStrokeStructureSynapsesSynaptic plasticityTechniquesTestingTissuesToxic Environmental SubstancesTranslatingTraumaVisual CortexWorkbasecritical developmental periodextracellularinhibitor/antagonistinsightinterestjuvenile animalneonatepatch clamppostnatalpotassium channel protein TREK-1research studyresponsetranscription factortwo-photonway finding
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英文摘要
A longstanding issue in environmental health is the need to understand the role the environment plays in human brain development. The brain of the neonate is particularly susceptible to disruption of the sensory environment, which can have profound effects on its physiology and morphology. Such susceptibility of the developing brain to environmental influence by sensory manipulation or to environmental toxicants is particularly pronounced during defined critical periods of postnatal life. On the one hand, this susceptibility makes the developing brain particularly vulnerable to toxic insults. On the other hand, the plasticity of the connections between neurons, or synapses, is critical for refining brain circuitry during postnatal development. Similar mechanisms for changing synapses are likely to serve the basis for learning in the adult. Our primary interest, therefore, has been to determine the molecular basis of long-lasting synaptic plasticity. Toward our goal of learning how neuronal activity can induce lasting modifications in neurons, we use a diverse collection of molecular, biochemical, electrophysiological, and imaging techniques. We primarily use the hippocampal slice preparation using neonate and adult rats and mice. The relatively simple laminar structure of the hippocampus, which itself plays an important role in learning and memory, allows electrophysiological studies to be performed easily. To measure synaptic responses, we use techniques that include whole-cell patch clamp recordings from slices maintained in vitro and field potential recordings from acutely prepared hippocampal slices. Slice-cultures grown on multielectrode arrays allow for extracellular stimulating and recording during two-photon confocal fluorescent microscopy. To determine how transcription is regulated by neuronal activity, we combine molecular and biochemical methods with electrical stimulation of hippocampal slices. Acutely dissociated hippocampal and cortical neuronal cell cultures, which can be stimulated pharmacologically to mimic LTP and LTD, are also used for both biochemical studies and fluorescent imaging experiments. ??To understand how synaptic changes persist for up to a lifetime, we study how neuronal activity regulates gene transcription to consolidate synaptic changes. Evidence suggests that the long-term changes in synaptic efficacy require expression of new RNA and toward that end, we have focused on the regulation of gene transcription by neuronal action potentials. Previously, we have shown that action potentials generated with certain frequencies of synaptic stimulation (5 and 100 Hz) are more sensitive to NMDA receptor blockers than those induced with a theta-burst pattern of stimulation. This difference in sensitivity explained how kinase activation, as assessed by staining for an antibody against the phosphorylated and therefore activated extracellular signal-regulated kinase (ERK), is blocked in the 5 and 100 Hz cases, but not the theta-burst stimulation, by the same concentrations of NMDA receptor inhibitors that block the action potentials. The staining could be rescued if action potentials are restored with a blocker of inhibitory synapses. We have now found similar results with the activation of several transcription factors and transcription of an activity-regulated gene, arc/arg3.1 (induction was NMDA receptor independent, provided that action potentials were preserved). These findings have important implications for the interpretation of experiments using NMDA receptor inhibitors to conclude that signals to the nucleus come from the synapse. These results support our idea that action potentials are critical to the transcription of some genes under physiological conditions and will lead to a better understanding of how genes required for the consolidation of synaptic plasticity are regulated. ?In a related study, we found that a protein complex of ERK1 found in neuronal nuclei can respond differentially to physiological and pathological stimulation in that ERK in it is either phosphorylated, and activated, or dephosphorylated, and inactivated, respectively. This work provides a potential mechanism by which neuronal nuclei can distinguish between two very similar calcium signals to regulate transcription.
Some insights into synaptic plasticity might be gained by comparing highly plastic brain areas, such as the CA1 area of hippocampus, with less plastic areas, such as layer 4 of the cerebral cortex. The hippocampus is critical for memory and spatial navigation. One area of the hippocampus, the CA2, however, shares with layer 4 expression of several of genes (TREK-1, a potassium channel, for example), and so we predicted that it would share features of layer 4 neurons such as its resistance to synaptic plasticity. Interestingly, the CA2 has been noted for its resistance to disease and damage from trauma, ischemia, and stroke. As predicted, we discovered that CA2 is similarly resistant to forms of synaptic plasticity including synapse strengthening (long-term potentiation, LTP) and synaptic weakening (long-term depression, LTD), even though synaptic responses in CA2 were very similar to those in the neighboring CA1 and CA3 areas. Because CA2 and its surrounding regions are anatomically very similar, these findings may therefore lead to identification of critical molecular components in the pathways leading to not only synaptic plasticity, but also neuronal damage and death. Using information we learn from CA2, we aim to determine the nature of the developmental down-regulation of synaptic plasticity in the form of critical periods. Our longer term goal is to determine how neuronal activity leads to synapse elimination (pruning). We have now developed a technique by which activity-dependent synapse elimination during critical periods can be studied in live tissue. We found that electrical stimulation that results in LTD is accompanied by loss of synaptic connections and that smaller synaptic contacts were most likely to be eliminated. This method will allow us to test our ideas on the molecular mechanisms allowing LTD to lead to synaptic loss. By understanding the molecular and cellular mechanisms of synaptic plasticity during development, we may begin to understand how exposure to environmental toxicants during development can have life-long consequences on cognition and susceptibility to diseases such as autism, schizophrenia, and Alzheimers disease.
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DOI:
10.1038/nn.2962
发表时间:
2011-11-20
期刊:
Nature neuroscience
影响因子:
25
作者:
[]
通讯作者:
Action potentials: to the nucleus and beyond.
动作电位:至细胞核及细胞核以外。
DOI:
10.3181/0709-mr-241
发表时间:
2008
期刊:
Experimental biology and medicine (Maywood, N.J.)
影响因子:
--
作者:
[Saha,RamendraN, Dudek,SerenaM]
通讯作者:
Dudek,SerenaM
Pattern-dependent role of NMDA receptors in action potential generation: consequences on extracellular signal-regulated kinase activation.
NMDA 受体在动作电位生成中的模式依赖性作用:对细胞外信号调节激酶激活的影响。
DOI:
10.1523/jneurosci.1579-05.2005
发表时间:
2005
期刊:
The Journal of neuroscience : the official journal of the Society for Neuroscience
影响因子:
--
作者:
[Zhao,Meilan, Adams,JPaige, Dudek,SerenaM]
通讯作者:
Dudek,SerenaM
Splitting hares and tortoises: a classification of neuronal immediate early gene transcription based on poised RNA polymerase II.
分裂野兔和乌龟:基于平衡 RNA 聚合酶 II 的神经元立即早期基因转录的分类。
DOI:
10.1016/j.neuroscience.2013.04.064
发表时间:
2013
期刊:
Neuroscience
影响因子:
3.3
作者:
[Saha,RN, Dudek,SM]
通讯作者:
Dudek,SM
Mechanisms Of Synaptic Plasticity In The Adult And Devel
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负责人:Serena M Dudek
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Mechanisms Of Synaptic Plasticity In The Adult And Developing Nervous System
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Mechanisms Of Synaptic Plasticity In The Adult And Developing Nervous System
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Synaptic Plasticity In The Adult And Developing NS
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Mechanisms Of Synaptic Plasticity In The Adult And Developing Nervous System
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Mechanisms Of Synaptic Plasticity In The Adult And Developing Nervous System
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Mechanisms Of Synaptic Plasticity In The Adult
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Mechanisms Of Synaptic Plasticity In The Adult And Developing Nervous System
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Mechanisms Of Synaptic Plasticity In The Adult And Developing Nervous System
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Mechanisms Of Synaptic Plasticity In The Adult And Developing Nervous System
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Mechanisms Of Synaptic Plasticity In The Adult And Developing Nervous System
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Mechanisms Of Synaptic Plasticity In The Adult And Developing Nervous System
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