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Neurod6 expression defines new retinal amacrine cell subtypes and regulates their fate.Neurod6 表达定义了新的视网膜无长突细胞亚型,并调节其命运。
Nat Neurosci. 2011 Jul 10;14(8):965-72. doi: 10.1038/nn.2859.
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Stereotyped axonal arbors of retinal ganglion cell subsets in the mouse superior colliculus.小鼠上丘中视网膜神经节细胞亚群的刻板轴突树突。
J Comp Neurol. 2011 Jun 15;519(9):1691-711. doi: 10.1002/cne.22595.
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Role of ACh-GABA cotransmission in detecting image motion and motion direction.乙酰胆碱-γ-氨基丁酸共传递在检测图像运动和运动方向中的作用。
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Design principles of insect and vertebrate visual systems.昆虫和脊椎动物视觉系统的设计原理。
Neuron. 2010 Apr 15;66(1):15-36. doi: 10.1016/j.neuron.2010.01.018.
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Laminar restriction of retinal ganglion cell dendrites and axons: subtype-specific developmental patterns revealed with transgenic markers.层粘连限制视网膜神经节细胞树突和轴突:转基因标记揭示的亚型特异性发育模式。
J Neurosci. 2010 Jan 27;30(4):1452-62. doi: 10.1523/JNEUROSCI.4779-09.2010.
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A robust and high-throughput Cre reporting and characterization system for the whole mouse brain.一种用于整个小鼠大脑的强大且高通量的 Cre 报告和表征系统。
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Linking genetically defined neurons to behavior through a broadly applicable silencing allele.通过一个广泛适用的沉默等位基因将基因定义的神经元与行为联系起来。
Neuron. 2009 Aug 13;63(3):305-15. doi: 10.1016/j.neuron.2009.07.010.
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Genetic address book for retinal cell types.视网膜细胞类型的基因通讯录。
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Comparative neurobiology of the optokinetic reflex.视动反射的比较神经生物学
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Genetic identification of an On-Off direction-selective retinal ganglion cell subtype reveals a layer-specific subcortical map of posterior motion.一种开-关方向选择性视网膜神经节细胞亚型的基因鉴定揭示了后向运动的层特异性皮质下图谱。
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具有不同方向偏好的视网膜神经节细胞在分子特征、结构和中枢投射上存在差异。

Retinal ganglion cells with distinct directional preferences differ in molecular identity, structure, and central projections.

机构信息

Center for Brain Science and Department of Molecular and Cellular Biology, Harvard University, Cambridge, Massachusetts 02138, USA.

出版信息

J Neurosci. 2011 May 25;31(21):7753-62. doi: 10.1523/JNEUROSCI.0907-11.2011.

DOI:10.1523/JNEUROSCI.0907-11.2011
PMID:21613488
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3108146/
Abstract

The retina contains ganglion cells (RGCs) that respond selectively to objects moving in particular directions. Individual members of a group of ON-OFF direction-selective RGCs (ooDSGCs) detect stimuli moving in one of four directions: ventral, dorsal, nasal, or temporal. Despite this physiological diversity, little is known about subtype-specific differences in structure, molecular identity, and projections. To seek such differences, we characterized mouse transgenic lines that selectively mark ooDSGCs preferring ventral or nasal motion as well as a line that marks both ventral- and dorsal-preferring subsets. We then used the lines to identify cell surface molecules, including Cadherin 6, CollagenXXVα1, and Matrix metalloprotease 17, that are selectively expressed by distinct subsets of ooDSGCs. We also identify a neuropeptide, CART (cocaine- and amphetamine-regulated transcript), that distinguishes all ooDSGCs from other RGCs. Together, this panel of endogenous and transgenic markers distinguishes the four ooDSGC subsets. Patterns of molecular diversification occur before eye opening and are therefore experience independent. They may help to explain how the four subsets obtain distinct inputs. We also demonstrate differences among subsets in their dendritic patterns within the retina and their axonal projections to the brain. Differences in projections indicate that information about motion in different directions is sent to different destinations.

摘要

视网膜包含对特定方向运动的物体有选择性反应的神经节细胞(RGCs)。一组 ON-OFF 方向选择性 RGC(ooDSGC)中的个体成员检测到以四个方向之一移动的刺激:腹侧、背侧、鼻侧或颞侧。尽管存在这种生理多样性,但对结构、分子特征和投射的亚型特异性差异知之甚少。为了寻找这些差异,我们对选择性标记偏爱腹侧或鼻侧运动的小鼠转基因系以及标记偏爱腹侧和背侧亚群的系进行了特征描述。然后,我们使用这些系来鉴定细胞表面分子,包括 Cadherin 6、CollagenXXVα1 和 Matrix metalloprotease 17,这些分子被不同的 ooDSGC 亚群选择性表达。我们还鉴定了一种神经肽,可卡因和安非他命调节转录物(CART),它将所有 ooDSGC 与其他 RGC 区分开来。这组内源性和转基因标记共同区分了四个 ooDSGC 亚群。分子多样化的模式发生在睁眼之前,因此与经验无关。它们可能有助于解释四个亚群如何获得不同的输入。我们还证明了亚群之间在视网膜内的树突模式和向大脑的轴突投射之间存在差异。投射的差异表明,关于不同方向运动的信息被发送到不同的目的地。