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Updated energy budgets for neural computation in the neocortex and cerebellum

机译:更新了新皮质和小脑神经计算的能量预算

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摘要

The brain's energy supply determines its information processing power, and generates functional imaging signals. The energy use on the different subcellular processes underlying neural information processing has been estimated previously for the grey matter of the cerebral and cerebellar cortex. However, these estimates need reevaluating following recent work demonstrating that action potentials in mammalian neurons are much more energy efficient than was previously thought. Using this new knowledge, this paper provides revised estimates for the energy expenditure on neural computation in a simple model for the cerebral cortex and a detailed model of the cerebellar cortex. In cerebral cortex, most signaling energy (50%) is used on postsynaptic glutamate receptors, 21% is used on action potentials, 20% on resting potentials, 5% on presynaptic transmitter release, and 4% on transmitter recycling. In the cerebellar cortex, excitatory neurons use 75% and inhibitory neurons 25% of the signaling energy, and most energy is used on information processing by non-principal neurons: Purkinje cells use only 15% of the signaling energy. The majority of cerebellar signaling energy use is on the maintenance of resting potentials (54%) and postsynaptic receptors (22%), while action potentials account for only 17% of the signaling energy use.
机译:大脑的能量供应决定其信息处理能力,并生成功能性成像信号。先前已经针对大脑和小脑皮质的灰质估计了神经信息处理所依据的不同亚细胞过程的能量消耗。但是,这些估计值需要根据最近的工作进行重新评估,这些工作表明哺乳动物神经元中的动作电位比以前认为的能效高得多。利用这一新知识,本文提供了一个简单的大脑皮层模型和小脑皮层模型的神经计算能量消耗的修正估计值。在大脑皮层中,大多数信号传导能量(50%)用于突触后谷氨酸受体,21%用于动作电位,20%用于静息电位,5%用于突触前递质释放,4%用于递质循环。在小脑皮层中,兴奋性神经元使用75%的信号能量,而抑制性神经元使用25%的信号能量,大多数能量用于非主神经元的信息处理:浦肯野细胞仅使用15%的信号能量。小脑的信号能量消耗大部分是维持静息电位(54%)和突触后受体(22%),而动作电位仅占信号能量消耗的17%。

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