Mechanisms of direction selectivity in starburst amacrine cells
Mechanisms of direction selectivity in starburst amacrine cells
批准号:
10063526
负责人:
Alon Poleg-Polsky
金额:
$36.63万
依托单位国家:
美国
项目类别:
财政年份:
2019
资助国家:
美国
项目状态:
已结题
起止时间:
2019-12-01 至 2024-11-30
关键词:
AddressBehaviorBiological ModelsBiophysicsBrainCalciumCalcium SignalingCell physiologyCellsComplexConflict (Psychology)ConsciousDataDendritesDetectionDiscriminationDistalElectrophysiology (science)FormulationGenerationsGlutamatesGoalsGuidelinesImageIndividualInvestigationLiteratureMeasurementMeasuresMediatingMethodologyMissionModelingMorphologyMotionNeuronsOutputPerceptionPharmacologyPhotic StimulationPhotoreceptorsPhysiologicalPopulationPotassium ChannelProcessPropertyReflex actionResearchRetinaRoleShapesSignal TransductionSiteStimulusSynapsesSystemTestingTimeVisualVisual PerceptionVisual system structureWorkbaseexperimental studyganglion cellimaging approachimprovedinformation processinginnovationneuronal cell bodynovelnovel strategiespostsynapticpredictive testpreferencepresynapticreceptive fieldrelating to nervous systemresponsesignal processingsimulationstarburst amacrine cellvisual informationvisual processingvoltage gated channel
中文摘要
为了让大脑检测到与外界相关的信号,神经元必须能够收集、操纵
并传递信息。运动检测是视觉系统的一项基本任务,也是专门的研究方向
选择性(DS)细胞已经存在于视网膜。由于其试验性的可访问性,
哺乳动物视网膜是大脑中复杂信息处理的经典模型系统。
视网膜DS神经节细胞最大限度地被它们的首选方向的运动激活,并且它们的输出引导
反身性行为,可能还有有意识的感知。
现在已经证实,神经节细胞的定向调谐反映了来自星爆无长突细胞的DS输入
细胞(SAC),在这里进行运动检测的第一个基本步骤。SAC树突将双极细胞的非DS输入转换为DS输出,表现为向外运动的更强输出
方向。丰富的文献表明,单个囊泡中的DS取决于错综复杂的因素组合,
包括树突形态、突触输入的动力学和电压门控通道的分布。
虽然已经提出了许多不同的机制来解释视觉的转换
信息从非选择性输入进入方向选择性输出,这些过程的相对贡献
对该细胞的功能仍存在争议。此外,详细的数值模拟结合了
在SACS中的主要DS模型低估了实验记录的运动识别能力
这些细胞,表明存在额外的不明原因的DS机制(S)。
这项提案的目标是解决在单个囊泡中调节DS的机制。我们将采取一项
结合生物物理模拟、电生理学和谷氨酸的创新方法
和钙成像,以提供DS中视觉信息表示的详细描述
回路,特别关注SAC树枝晶。拟议的实验和理论治疗将
研究视觉信号如何转化为支配囊的突触输入,并测试一种新的机制
这依赖于突触后电压门控通道来锐化SAC树突中的DS信号。
这项拟议的研究将大大促进我们对视觉系统中DS机制的理解。它
也将为活跃通道在树突计算中的参与提供一个概念上的新角色。
英文摘要
For the brain to detect relevant signals about the outside world, neurons must be able to collect, manipulate
and transmit information. Detecting motion is a fundamental task of the visual system, and specialized direction
selective (DS) cells are present already at the retina. Due to its experimental accessibility, the DS circuit in the
mammalian retina emerged as a classical model system of a sophisticated information processing in the brain.
Retinal DS ganglion cells are maximally activated by motion in their preferred direction, and their output guides
reflexive behavior and possibly conscious perception.
It is now well established that directional tuning of the ganglion cells reflects DS input from starburst amacrine
cells (SAC), where the first fundamental step of motion detection takes place. SAC dendrites transform a non-DS input from bipolar cells into DS output that is manifested as a stronger output for motion in the outward
direction. A rich literature indicates that DS in individual SACs depends on an intricate combination of factors,
including dendritic morphology, dynamics of the synaptic inputs and the distribution of voltage-gated channels.
While a number of different mechanisms have been proposed to explain the transformation of visual
information from unselective inputs into direction selective output, the relative contribution of these processes
to the function of the cell remains controversial. In addition, detailed numerical simulations that incorporate the
leading models of DS in SACs underestimate the experimentally recorded motion discrimination abilities in
these cells, indicating the presence of additional unidentified DS mechanism(s).
The goal of this proposal is to address the mechanisms that mediate DS in individual SACs. We will take an
innovative approach that combines biophysically realistic modeling, electrophysiology, as well as glutamate
and calcium imaging to provide a detailed description of the of the visual information representation in the DS
circuit, with a particular focus on SAC dendrites. The proposed experimental and theoretical treatment will
study how visual signals are transformed to synaptic inputs that innervate SACs and test a novel mechanism
that depends on postsynaptic voltage-gated channels to sharpen DS signals in SAC dendrites.
The proposed research will substantially advance our understanding of DS mechanisms in the visual system. It
will also provide a conceptually novel role for the participation of active channels in dendritic computations.
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