Dvali Sophie, Seguin Caio, Betzel Richard, Leifer Andrew M
Princeton University, Department of Physics, Princeton, NJ, United States of America.
University of Melbourne and Melbourne Health, Melbourne Neuropsychiatry Centre, Melbourne, Victoria, Australia.
ArXiv. 2024 Dec 19:arXiv:2412.14498v1.
The connectome describes the complete set of synaptic contacts through which neurons communicate. While the architecture of the connectome has been extensively characterized, much less is known about the organization of causal signaling networks arising from functional interactions between neurons. Understanding how effective communication pathways relate to or diverge from the underlying structure is a central question in neuroscience. Here, we analyze the modular architecture of the signal propagation network, measured via calcium imaging and optogenetics, and compare it to the underlying anatomical wiring measured by electron microscopy. Compared to the connectome, we find that signaling modules are not aligned with the modular boundaries of the anatomical network, highlighting an instance where function deviates from structure. An exception to this is the pharynx which is delineated into a separate community in both anatomy and signaling. We analyze the cellular compositions of the signaling architecture and find that its modules are enriched for specific cell types and functions, suggesting that the network modules are neurobiologically relevant. Lastly, we identify a "rich club" of hub neurons in the signaling network. The membership of the signaling rich club differs from the rich club detected in the anatomical network, challenging the view that structural hubs occupy positions of influence in functional (signaling) networks. Our results provide new insight into the interplay between brain structure, in the form of a complete synaptic-level connectome, and brain function, in the form of a system-wide causal signal propagation atlas.
连接体描述了神经元进行通信所通过的完整突触连接集。虽然连接体的架构已得到广泛表征,但对于由神经元之间的功能相互作用产生的因果信号网络的组织却知之甚少。理解有效通信通路如何与潜在结构相关或背离潜在结构是神经科学中的一个核心问题。在这里,我们分析了通过钙成像和光遗传学测量的信号传播网络的模块化架构,并将其与通过电子显微镜测量的潜在解剖布线进行比较。与连接体相比,我们发现信号模块与解剖网络的模块化边界不一致,这突出了功能偏离结构的一个实例。咽是一个例外,它在解剖学和信号传导方面都被划分到一个单独的群落中。我们分析了信号架构的细胞组成,发现其模块富含特定的细胞类型和功能,这表明网络模块在神经生物学上是相关的。最后,我们在信号网络中识别出一个枢纽神经元的“富俱乐部”。信号富俱乐部的成员与在解剖网络中检测到的富俱乐部不同,这对结构枢纽在功能(信号)网络中占据有影响力位置的观点提出了挑战。我们的结果为以完整突触水平连接体形式存在的脑结构与以全系统因果信号传播图谱形式存在的脑功能之间的相互作用提供了新的见解。