Correlation of astrocyte Ca2+ microdomain activity with motor learning and neuronal function
Correlation of astrocyte Ca2+ microdomain activity with motor learning and neuronal function
批准号:
9816573
负责人:
Jennifer Shih
金额:
$6.12万
依托单位国家:
美国
项目类别:
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-10-01 至 2021-09-30
关键词:
AffectAnimal BehaviorAnimalsAstrocytesBehaviorBehavioral ParadigmBrainCalciumCalcium SignalingCellsCharacteristicsChronicCoupledDataDevelopmentEpilepsyFunctional disorderGoalsHalorhodopsinsImageInjectionsKnowledgeLearningLightMediatingMembraneMental DepressionMorphologyMotorMotor CortexMovementMusNeurogliaNeurologicNeuronsNeurotransmittersPatternPerformancePopulationPositioning AttributeProcessResearchResolutionSchizophreniaShapesSignal TransductionStereotypingStructureSynapsesSynaptic TransmissionSystemTechniquesTestingTrainingTransgenic MiceViralVirusWorkcalcium indicatorclassical conditioningdesigner receptors exclusively activated by designer drugsexcitatory neuronexperimental studyin vivoinsightlearned behaviormotor learningnervous system disorderneuronal circuitryneuropsychiatric disorderneurotransmissionnovel therapeuticsoptogeneticspromoterreceptorresponsespatiotemporalsynaptic functiontrial comparingtwo-photon
中文摘要
拟议研究的目标是了解星形胶质细胞(大脑中的一种神经胶质细胞)如何与运动皮层神经元一起介导运动学习。先前的研究表明,当动物成为刻板动作的专家时,一个稳定的神经元集合就会出现。研究还表明,星形胶质细胞钙信号,特别是在突触周围的精细过程的微区,响应并与神经元活动相关。星形胶质细胞微区被认为反映了突触活动,并反过来影响突触功能。我们假设,一个稳定的模式,运动皮层星形胶质细胞的钙离子活性的微域中的发展过程中收购的刻板的运动在小鼠中,与神经元的激活和学习,并与细胞内的钙离子,是潜在的因果关系的学习。我们将利用一系列尖端技术来测试这一假设,以及杠杆推动任务,这是一种运动学习范式,其特点是联想学习和获得刻板的运动动作。我们将利用在星形胶质细胞中表达膜结合遗传编码钙指标的转基因小鼠,结合高分辨率双光子成像,随着动物学习执行任务,对钙微区活性进行长期成像。这些实验将确定运动学习是否会出现独特的微区激活模式。然后,我们提出了光遗传学破坏神经元信号在运动皮层中使用光激活的盐视紫红质或通道视紫红质的兴奋性神经元的表达,以抑制或激活神经元的活动,分别,以确定是否图案的星形胶质细胞钙的活动在微域中被破坏沿着与运动学习。最后,我们将使用专门由设计药物激活的设计受体(DREADDs)来破坏星形胶质细胞中的细胞内钙信号,以确定当星形胶质细胞钙信号(包括微结构域)被破坏时,是否对运动学习有影响。 总之,这些研究将不仅确定与运动学习相关的微结构域编码的星形胶质细胞“签名”,而且还提供了对这种活动结构如何受神经元激活调节的机制见解,以及如何与细胞内Ca 2+信号一起影响运动学习。鉴于星形胶质细胞功能障碍与许多涉及异常神经元回路功能的神经系统疾病有关,包括精神分裂症,抑郁症和癫痫,推进我们对星形胶质细胞-神经元相互作用的理解将填补知识的关键空白,并可能有助于新的治疗方法。
英文摘要
The goal of the proposed research is to understand how astrocytes, a type of glial cell in the brain, work together with motor cortex neurons to mediate motor learning. Previous studies have shown that a stable ensemble of neurons emerges as an animal becomes expert at a stereotyped movement. It has also been shown that astrocyte calcium signaling, particularly in microdomains of the fine processes surrounding synapses, responds to and correlates with neuronal activity. Astrocyte microdomains are considered to reflect synaptic activity and in turn, influence synaptic function. We hypothesize that a stable pattern of motor cortex astrocyte Ca2+ activity in microdomains develops during acquisition of a stereotyped motor movement in mice, is correlated with neuronal activation and learning, and together with intracellular Ca2+, is potentially causal for learning. We will utilize a range of cutting edge techniques to test this hypothesis, as well as a lever push task, which is a motor learning paradigm that features both associative learning and acquisition of a stereotyped motor movement. We will utilize transgenic mice expressing membrane-bound genetically encoded calcium indicators in astrocytes, combined with high-resolution two-photon imaging, to chronically image calcium microdomain activity as the animal learns to perform the task. These experiments will determine whether unique microdomain activation patterns emerge with motor learning. We then propose to optogenetically disrupt neuronal signaling in the motor cortex using expression of light-activated halorhodopsin or channelrhodopsin in excitatory neurons to inactivate or activate neuronal activity, respectively, in order to determine if patterns of astrocyte calcium activity in microdomains are disrupted along with motor learning. Finally, we will disrupt intracellular calcium signaling in astrocytes using designer receptors exclusively activated by designer drugs (DREADDs) to determine whether there is an effect on motor learning when astrocyte calcium signals, including microdomains, are disrupted. Together, these studies will not only identify an astrocyte “signature” encoded by microdomains which is associated with motor learning, but also provide mechanistic insight into how this activity structure is regulated by neuronal activation, and how, alongside intracellular Ca2+ signaling, it influences motor learning. Given that astrocyte dysfunction has been implicated in a number of neurological conditions that involve aberrant neuronal circuit function, including schizophrenia, depression, and epilepsy, advancing our understanding of astrocyte-neuron interactions will fill critical gaps in knowledge and potentially contribute to novel therapeutics.
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