Department of Neuroscience, Columbia University, New York, NY 10027, USA; Zuckerman Mind Brain Behavior Institute, Columbia University, New York, NY 10027, USA.
Department of Neuroscience, Columbia University, New York, NY 10027, USA; Zuckerman Mind Brain Behavior Institute, Columbia University, New York, NY 10027, USA; Kavli Institute for Brain Science, Columbia University, New York, NY 10027, USA.
Curr Opin Neurobiol. 2021 Feb;66:205-211. doi: 10.1016/j.conb.2020.12.013. Epub 2021 Jan 6.
Synaptic connectivity within neural circuits is characterized by high degrees of cellular and subcellular specificity. This precision arises from the combined action of several classes of molecular cues, transmembrane receptors, secreted cues and extracellular matrix components, coordinating transitions between axon guidance, dendrite patterning, axon branching and synapse specificity. We focus this review on recent insights into some of the molecular and cellular mechanisms controlling these transitions and present the results of large-scale efforts and technological developments aimed at mapping neural connectivity at single cell resolution in the mouse cortex as a mammalian model organism. Finally, we outline some of the technical and conceptual challenges lying ahead as the field is starting to explore one of the most challenging problems in neuroscience: the molecular and cellular logic underlying the emergence of the connectome characterizing specific circuits within the central nervous system of mammals.
神经回路中的突触连接具有高度的细胞和亚细胞特异性。这种精确性源于几类分子线索、跨膜受体、分泌线索和细胞外基质成分的共同作用,协调着轴突导向、树突模式、轴突分支和突触特异性之间的转变。我们将重点放在最近对一些控制这些转变的分子和细胞机制的深入了解上,并介绍了旨在以哺乳动物模式生物小鼠皮层中单细胞分辨率绘制神经连接图谱的大规模努力和技术发展的结果。最后,我们概述了该领域在开始探索神经科学中最具挑战性的问题之一时所面临的一些技术和概念上的挑战:即哺乳动物中枢神经系统中特定回路的连接组学背后的分子和细胞逻辑。