Optical Tools to Dissect Synaptic Changes Underlying Epilepsy
Optical Tools to Dissect Synaptic Changes Underlying Epilepsy
批准号:
8640216
负责人:
RICHARD W TSIEN
金额:
$33.46万
依托单位国家:
美国
项目类别:
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-04-15 至 2016-03-31
关键词:
Action PotentialsAnimal ModelAnimalsBiological Neural NetworksBrainCellsColorCommunitiesComplementDefectDevelopmentDiseaseElectrophysiology (science)EnzymesEpilepsyEpileptogenesisExcitatory SynapseExperimental ModelsFutureGenerationsGeneticGlutamatesGreen Fluorescent ProteinsHalorhodopsinsHealthHumanImageIndividualInhibitory SynapseInterventionLightLightingMethodsModelingMolecularMonitorMusNeuronsOpticsOutputParvalbuminsPositioning AttributePresynaptic TerminalsProteinsReagentReporterReportingResearch PersonnelRoleSeizuresSideSignal TransductionSliceSomatostatinSynapsesSynaptic TransmissionSynaptic VesiclesSynaptophysinSystemTestingTimeVesiclebasecell typedesigninhibitory neuronneural circuitneurotransmissionneurotransmitter releasenovelnovel strategiesrecombinaseresearch studyresponsesensortooltransmission process
中文摘要
描述(由申请人提供):解剖癫痫潜在突触变化的光学工具关于癫痫的流行假说认为,神经回路变得过度兴奋,因为突触兴奋和抑制之间的病理性不平衡。然而,关于这是否是癫痫样活动的主导原则,以及这种不平衡是否是因为兴奋性突触得到支持,因为抑制性突触被削弱,或者两者兼而有之,仍然存在许多问题。这些问题是具有挑战性的方法,部分原因是因为传统的网络活动记录不允许单独类型的突触输入的强度被容易地解决或解剖。为了克服这些困难,我们致力于开发新的方法,使用遗传编码的光学指示器来跟踪不同种类的突触前末梢的贡献。我们已经构建了一种新的用于囊泡融合的光学探针,称为sypHTomato,当突触囊泡融合并释放神经递质时,它发出红色荧光。我们目前正在产生一种小鼠,它将在遗传靶向酶Cre重组酶的控制下在特定类型的神经元内表达sypHTomato。SypHTomato可与现有的绿色探针如synaptopHluorin或GCaMP 3结合使用。这将使得能够独立和同时监测多种类型的突触,无论它们是兴奋性、一般抑制性还是特定子类的抑制性神经元;它还将允许沿着动作电位放电来跟踪突触活动。我们将使用越来越复杂和与癫痫相关的神经网络来验证和优化这个双色系统。光学记录将与实验室内目前使用的电记录先进方法结合使用。用于监测突触活动的探针将与光敏蛋白如视紫红质-2和Halorhodopsin共同表达,以允许在监测输出的同时操纵到电路的选定突触输入。通过这种方式,可以在脑切片中发作间期和发作活动的发展过程中评估特定突触的活动,并且可以通过适当的照明来进一步增强或关闭该活动,作为其致病作用的测试。作为原理的证明,我们将阐明突触输入的变化,有利于或抑制癫痫发作的发生在选择实验模型的癫痫。我们的分子试剂,动物和技术方法将免费提供给癫痫研究人员和整个科学界。报告策略可以很容易地与作为人类癫痫动物模型的现有小鼠系整合。因此,强大的光学方法来阐明癫痫样活动的基础,可以很容易地投入使用,在广泛的突变和实验设置,从而利用癫痫遗传学的最新进展。
英文摘要
DESCRIPTION (provided by applicant): Optical tools to dissect synaptic changes underlying epilepsy A prevailing hypothesis about epilepsy contends that neural circuits become overexcitable because of a pathological imbalance between synaptic excitation and inhibition. However, many questions remain about whether this is the dominant principle of epileptiform activity, and whether the imbalance comes about because excitatory synapses are bolstered, because inhibitory synapses are weakened, or both. These issues are challenging to approach, in part because conventional recordings of network activity do not allow the strength of individual types of synaptic input to be readily resolved or dissected. To overcome such difficulties, we are engaged in developing new approaches that use genetically encoded optical indicators to track the contributions of different kinds of presynaptic terminal. We have constructed a new optical probe for vesicle fusion, called sypHTomato, which fluoresces in the red when synaptic vesicles fuse and release neurotransmitter. We are currently generating a mouse that will express sypHTomato within specific types of neurons under control of genetically targetable enzyme, Cre recombinase. SypHTomato can be used in conjunction with existing green probes such as synaptopHluorin or GCaMP3. This will enable independent and simultaneous monitoring at multiple types of synapses, be they excitatory, generically inhibitory, or inhibitory neurons of a particular subclass; it will also allow synaptic activity to be tracked along with action potential firing. We will validate and optimize this two-color system, using neural networks of increasing complexity and relevance to epilepsy. Optical recordings will be performed in conjunction with advanced methods for electrical recording currently in use within the lab. Probes for monitoring synaptic activity will be co-expressed in conjunction with light-sensitive proteins such as Channelrhodopsin-2 and Halorhodopsin to allow manipulation of selected synaptic inputs to a circuit while monitoring the output. In this way, the activity of specific synapses can be assessed during the development of interictal and ictal activity in brain slices and that activity can be further enhanced or turned off by appropriate illumination as tests of their causative role. As proof-of-principle, we will clarify the changes in synaptic input that favor or restrain the genesis of epileptiform bursts in select experimental models of epilepsy. Our molecular reagents, animals and technical approaches will be freely available to epilepsy investigators and to the scientific community at large. The reporter strategy can be easily integrated with existing lines of mice that serve as animal models of human epilepsy. Thus, powerful optical approaches to elucidate the underpinnings of epileptiform activity can be readily put to use in a wide range of mutational and experimental settings, thereby leveraging recent advances in the genetics of epilepsy.
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