Division of Biofunction, Human Health Sciences, Graduate School of Medicine, Kyoto University, Kyoto, Japan; Division of Neurophysiology, Department of Physiology, School of Medicine, Tokyo Women's Medical University, Tokyo, Japan.
Department of Pharmacology, Graduate School of Medicine, The University of Tokyo, Tokyo, Japan.
Cell Rep. 2024 Oct 22;43(10):114770. doi: 10.1016/j.celrep.2024.114770. Epub 2024 Sep 24.
Functional refinement of neural circuits is a crucial developmental process in the brain. However, how synaptic maturation and axon wiring proceed cooperatively to establish reliable signal transmission is unclear. Here, we combined nanotopography of release machinery at the active zone (AZ), nanobiophysics of neurotransmitter release, and single-neuron reconstruction of axon arbors of lemniscal fibers (LFs) in the developing mouse somatosensory thalamus. With development, the cluster of Cav2.1 enlarges and translocates closer to vesicle release sites inside the bouton, and LFs drastically shrink their arbors and form larger boutons on the perisomatic region of target neurons. Experimentally constrained simulations show that the nanotopography of mature synapses enables not only rapid vesicular release but also reliable transmission following repetitive firing. Sensory deprivation impairs the developmental shift of molecular nanotopography and axon wiring. Thus, we uncovered the cooperative nanotopographical and morphological mechanisms underlying the developmental establishment of reliable synaptic transmission.
神经回路的功能细化是大脑发育过程中的一个关键步骤。然而,突触成熟和轴突布线如何协同进行以建立可靠的信号传输尚不清楚。在这里,我们结合了发育中小鼠体感丘脑中活跃区(AZ)释放机制的纳米拓扑结构、神经递质释放的纳米生物物理学以及传入纤维轴突树突的单神经元重建。随着发育的进行,Cav2.1 簇扩大并向包含在末梢内的囊泡释放位点迁移,传入纤维则大幅缩小其树突并在靶神经元的胞体周围区域形成更大的末梢。实验约束模拟表明,成熟突触的纳米拓扑结构不仅能够实现快速囊泡释放,还能在重复放电后实现可靠的传递。感觉剥夺会损害分子纳米拓扑和轴突布线的发育转变。因此,我们揭示了可靠的突触传递发育建立的协同纳米拓扑和形态学机制。