Center for Neuroscience Research, Children's National Research Institute, Washington, DC, United States; Institute for Biomedical Sciences, The George Washington University School of Medicine, Washington, DC, United States.
Center for Neuroscience Research, Children's National Research Institute, Washington, DC, United States; Department of Pediatrics, The George Washington University School of Medicine, Washington, DC, United States.
Curr Top Dev Biol. 2021;142:283-317. doi: 10.1016/bs.ctdb.2020.10.004. Epub 2020 Nov 16.
Efficient sensory processing is a complex and important function for species survival. As such, sensory circuits are highly organized to facilitate rapid detection of salient stimuli and initiate motor responses. For decades, the retina's projections to image-forming centers have served as useful models to elucidate the mechanisms by which such exquisite circuitry is wired. In this chapter, we review the roles of molecular cues, neuronal activity, and axon-axon competition in the development of topographically ordered retinal ganglion cell (RGC) projections to the superior colliculus (SC) and dorsal lateral geniculate nucleus (dLGN). Further, we discuss our current state of understanding regarding the laminar-specific targeting of subclasses of RGCs in the SC and its homolog, the optic tectum (OT). Finally, we cover recent studies examining the alignment of projections from primary visual cortex with RGCs that monitor the same region of space in the SC.
高效的感觉处理是物种生存的一项复杂而重要的功能。因此,感觉回路被高度组织化,以促进对显著刺激的快速检测并引发运动反应。几十年来,视网膜向成像中心的投射一直是有用的模型,可以阐明如此精致的电路是如何布线的。在本章中,我们回顾了分子线索、神经元活动和轴突-轴突竞争在视网膜神经节细胞 (RGC) 到上丘 (SC) 和背外侧膝状体核 (dLGN) 的拓扑有序投射发育中的作用。此外,我们讨论了我们目前对 SC 中 RGC 亚类的层特异性靶向及其同源结构,即视顶盖 (OT) 的理解状态。最后,我们介绍了最近研究检查来自初级视觉皮层的投射与监测 SC 中同一空间区域的 RGC 的对齐情况。