首页> 美国卫生研究院文献>Frontiers in Neural Circuits >Visual Neurons in the Superior Colliculus Innervated by Islet2+ or Islet2− Retinal Ganglion Cells Display Distinct Tuning Properties
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Visual Neurons in the Superior Colliculus Innervated by Islet2+ or Islet2− Retinal Ganglion Cells Display Distinct Tuning Properties

机译:Islet2 +或Islet2-视网膜神经节细胞受神经支配的上丘毛囊中的视觉神经元显示出明显的调整特性

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摘要

Throughout the visual system, different subtypes of neurons are tuned to distinct aspects of the visual scene, establishing parallel circuits. Defining the mechanisms by which such tuning arises has been a long-standing challenge for neuroscience. To investigate this, we have focused on the retina’s projection to the superior colliculus (SC), where multiple visual neuron subtypes have been described. The SC receives inputs from a variety of retinal ganglion cell (RGC) subtypes; however, which RGCs drive the tuning of different SC neurons remains unclear. Here, we pursued a genetic approach that allowed us to determine the tuning properties of neurons innervated by molecularly defined subpopulations of RGCs. In homozygous Islet2-EphA3 knock-in (Isl2EA3/EA3) mice, Isl2+ and Isl2 RGCs project to non-overlapping sub-regions of the SC. Based on molecular and anatomic data, we show that significantly more Isl2 RGCs are direction-selective (DS) in comparison with Isl2+ RGCs. Targeted recordings of visual responses from each SC sub-region in Isl2EA3/EA3 mice revealed that Isl2 RGC-innervated neurons were significantly more DS than those innervated by Isl2+ RGCs. Axis-selective (AS) neurons were found in both sub-regions, though AS neurons innervated by Isl2+ RGCs were more tightly tuned. Despite this segregation, DS and AS neurons innervated by Isl2+ or Isl2 RGCs did not differ in their spatial summation or spatial frequency (SF) tuning. Further, we did not observe alterations in receptive field (RF) size or structure of SC neurons innervated by Isl2+ or Isl2 RGCs. Together, these data show that innervation by Isl2+ and Isl2 RGCs results in distinct tuning in the SC and set the stage for future studies investigating the mechanisms by which these circuits are built.
机译:在整个视觉系统中,神经元的不同亚型被调整到视觉场景的不同方面,从而建立了并行回路。定义产生这种调节的机制一直是神经科学的长期挑战。为了对此进行调查,我们集中研究了视网膜向上丘(SC)的投射,其中描述了多种视觉神经元亚型。 SC从各种视网膜神经节细胞(RGC)亚型接收输入。然而,哪个RGCs驱动不同SC神经元的调节尚不清楚。在这里,我们追求了一种遗传方法,使我们能够确定由RGC的分子定义亚群支配的神经元的调节特性。在纯合的Islet2-EphA3敲入(Isl2 EA3 / EA3 )小鼠中,Isl2 + 和Isl2 - RGC投影为不重叠的亚SC的区域。根据分子和解剖数据,我们发现与Isl2 + RGC相比,Isl2 - RGC的方向选择(DS)明显多得多。有针对性地记录Isl2 EA3 / EA3 小鼠中每个SC子区域的视觉反应,发现Isl2 - RGC支配的神经元的DS明显多于Isl2 支配的神经元。 > + RGC。在两个子区域都发现了轴选择性(AS)神经元,但受Isl2 + RGC支配的AS神经元的调节更为紧密。尽管存在这种隔离,但是由Isl2 + 或Isl2 - RGC支配的DS和AS神经元在其空间总和或空间频率(SF)调整上没有差异。此外,我们没有观察到由Isl2 + 或Isl2 - RGC支配的SC神经元的感受野(RF)大小或结构的变化。总之,这些数据表明,Isl2 + 和Isl2 - RGC的神经支配导致SC的明显调整,并为进一步研究这些电路的机理奠定了基础。内置的。

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