Birari Varun Sanjay, Rabinowitch Ithai
Department of Medical Neurobiology, Institute for Medical Research Israel-Canada, Faculty of Medicine, Hebrew University of Jerusalem, Jerusalem 9112002, Israel.
iScience. 2024 Aug 13;27(9):110713. doi: 10.1016/j.isci.2024.110713. eCollection 2024 Sep 20.
The brain is overall bilaterally symmetrical, but also exhibits considerable asymmetry. While symmetry may endow neural networks with robustness and resilience, asymmetry may enable parallel information processing and functional specialization. How is this tradeoff between symmetrical and asymmetrical brain architecture balanced? To address this, we focused on the connectome, comprising 99 classes of bilaterally symmetrical neuron pairs. We found symmetry in the number of synaptic partners between neuron class members, but pronounced asymmetry in the identity of these synapses. We applied graph theoretical metrics for evaluating Redundancy, the selective reinforcement of specific neural paths by multiple alternative synaptic connections, and Reachability, the extent and diversity of synaptic connectivity of each neuron class. We found Redundancy and Reachability to be stochastically tunable by the level of network asymmetry, driving the connectome to favor Redundancy over Reachability. These results elucidate fundamental relations between lateralized neural connectivity and function.
大脑整体上是双侧对称的,但也表现出相当大的不对称性。虽然对称性可能赋予神经网络稳健性和恢复力,但不对称性可能使并行信息处理和功能特化成为可能。这种对称与不对称脑结构之间的权衡是如何平衡的呢?为了解决这个问题,我们聚焦于由99类双侧对称神经元对组成的连接组。我们发现神经元类别成员之间突触伙伴的数量具有对称性,但这些突触的身份却存在明显的不对称性。我们应用图论指标来评估冗余性(即通过多个替代突触连接对特定神经通路的选择性强化)和可达性(即每个神经元类别的突触连接程度和多样性)。我们发现冗余性和可达性可由网络不对称水平随机调节,从而使连接组更倾向于冗余性而非可达性。这些结果阐明了偏侧化神经连接与功能之间的基本关系。