Examining the integration of inputs by the subiculum during virtual navigation
Examining the integration of inputs by the subiculum during virtual navigation
批准号:
8616281
负责人:
Jeffrey Lee Gauthier
金额:
$5.77万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2012
资助国家:
美国
项目状态:
已结题
起止时间:
2012-09-24 至 2015-09-23
关键词:
AddressAlzheimer&aposs DiseaseAnimalsAreaBehaviorBiological AssayBrainBrain regionCalciumCellsCephalicCognitionCollectionComplexControlled EnvironmentDimensionsDiseaseDrug AddictionEnvironmentEpilepsyEquilibriumEquipmentExhibitsFiberGlycoproteinsHeadHealthHippocampal FormationHippocampus (Brain)ImageImplantIndividualLabelLearningLightMapsMeasuresMemoryMethodologyMethodsMonitorMono-SMotionMotivationMusNeuronsOpticsOutputPatternPhysiologicalPhysiologyPlayPopulationProcessPropertyRabiesRabies virusRecurrenceRodentRoleRunningSamplingSchizophreniaSignal TransductionStructureSumSynapsesTechniquesTechnologyTimeTrainingVirionWhole-Cell Recordingsawakecalcium indicatorentorhinal cortexexperienceimprovedneuronal cell bodynew technologynoveloptical imagingpublic health relevancerelating to nervous systemresearch studyresponsestemvirtualvirtual realityway finding
中文摘要
描述(由申请人提供):啮齿动物的空间导航是一种广泛用于研究哺乳动物大脑认知、学习和记忆的范例。下托是导航回路的重要输出结构,但很少有研究在行为动物中研究其生理学。该建议旨在确定单个下托神经元如何在海马CA 1区的突触前输入中整合导航过程中的信息。CA 1神经元形成对微小变化敏感的环境空间图;例如,从圆形室移动到方形室可以彻底改变CA 1中的表示。下托,另一方面,似乎形成稳定的地图,不经历实质性的变化,在不同的环境中,尽管收到一个主要的输入CA 1。下托如何保持稳定的代表性仍然是一个悬而未决的问题。 为了在导航的背景下研究这些机制,Tank实验室最近开发了一种新技术,用于在虚拟环境中导航期间在清醒小鼠的大脑中进行钙成像和电生理记录。这项技术包括一个球形跑步机,允许在两个维度上的运动,一个虚拟现实环境控制的动物在球形跑步机上的运动,以及可互换的设备,允许电生理记录或光学成像。与传统的导航研究方法相比,这种实验装置的一个主要优点是,动物的头部是固定的,但允许在虚拟环境中导航,为钙成像或全细胞记录提供稳定性。这也是有利的,因为虚拟环境可以在导航任务期间动态地改变,从而提供对动物体验的完全控制。 这项提议利用这些新技术来了解下托是如何形成环境地图的。在目标1中,钙活动的光学成像将用于表征哪些类型的环境变化会改变CA 1的表示,但会保留下托中的地图。目标2将通过追踪单个下托神经元的单突触输入来解决下托电路的解剖组织。这些神经元包括来自CA 1的输入和下托内的递归连接。在目标3中,这些技术将在一只动物中组合。将单个下托神经元中的空间表示与CA 1和下托中的单突触输入的表示进行比较。这种比较将揭示下托神经元如何整合传入信号以形成稳定的表示。解开这个计算将有助于更普遍地理解海马结构的作用。
英文摘要
DESCRIPTION (provided by applicant): Spatial navigation in rodents is a widely used paradigm for studies of cognition, learning, and memory in the mammalian brain. The subiculum is an important output structure for circuits that underlie navigation, yet few studies have examined its physiology in behaving animals. This proposal aims to identify how an individual subiculum neuron integrates information during navigation from its pre-synaptic inputs in the CA1 region of the hippocampus. CA1 neurons form a spatial map of the environment that is sensitive to small changes; for example, moving from a circular chamber to a square chamber can drastically alter the representation in CA1. The subiculum, on the other hand, seems to form stable maps that do not undergo substantial changes in different environments, despite receiving a major input from CA1. How the subiculum maintains a stable representation remains an open question. To investigate these mechanisms in the context of navigation, the Tank lab has recently developed new technology for calcium imaging and electrophysiological recordings to be performed in the brain of awake mice during navigation in a virtual environment. This technology consists of a spherical treadmill that allows for motion in two dimensions, a virtual reality environment controlled by the motion of the animal on the spherical treadmill, and interchangeable equipment allowing for either electrophysiological recordings or optical imaging. A major advantage of this experimental setup over conventional methods for studying navigation is that the animal is head-fixed, yet allowed to navigate within a virtual environment, providing stability for calcium imaging or whole cell recordings. It is also advantageous because the virtual environment can be dynamically altered during navigation tasks, providing complete control over the animal's experience. This proposal takes advantage of these new technologies in order to understand how the subiculum forms a map of the environment. In aim 1, optical imaging of calcium activity will be used to characterize what kinds of environmental alterations change the CA1 representation but preserve the map in the subiculum. Aim 2 will address the anatomical organization of subiculum circuitry by tracing mono-synaptic inputs to a single subiculum neuron. These neurons include inputs from CA1 and recurrent connections within the subiculum. In aim 3, these techniques will be combined in a single animal. The spatial representation in individual subiculum neurons will be compared to the representation of mono-synaptic inputs in CA1 and subiculum. This comparison will shed light on how subiculum neurons integrate incoming signals to form a stable representation. Unraveling this computation will help to understand the role of the hippocampal formation more generally.
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Examining the integration of inputs by the subiculum during virtual navigation
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批准号:8456312
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项目类别:
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资助金额:$5.57万
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财政年份:2012
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负责人:Jeffrey Lee Gauthier
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依托单位:
Examining the integration of inputs by the subiculum during virtual navigation
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批准号:8725750
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项目类别:
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资助金额:$6.1万
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财政年份:2012
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负责人:Jeffrey Lee Gauthier
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依托单位: