Department of Entomology, College of Agriculture, Food, and the Environment, University of Kentucky, Lexington, Kentucky.
Institut für Neuro-und Verhaltensbiologie, University of Münster, Münster, Germany.
Glia. 2018 Jun;66(6):1160-1175. doi: 10.1002/glia.23235. Epub 2017 Sep 29.
Neuronal activity requires a vast amount of energy. Energy use in the brain is spatially and temporally dynamic, which reflects the changing activity of the neuronal circuits and might be important for modulating neuronal output. Much recent work has focused on understanding how brain glial cells take up nutrients from circulation and subsequently provide metabolic precursors to neurons. However, within the neurons, modulation of cellular metabolic pathway flux also regulates excitability and signaling. A coherent understanding of the links between energy availability and metabolism, neural signaling, and higher-level phenotypes like behavior requires a synthesis of the understanding of glial and neuronal metabolic dynamics. In the current review, we address this synthesis in the context of insect brain metabolism. Insects not only show evidence of a metabolic division of labor and plasticity in neural metabolism that closely resembles that observed in vertebrate species, there also seem to be direct links between brain metabolic dynamics and behavioral phenotypes. We summarize the current knowledge about the metabolic fuels available to the insect nervous system and how they are transported and distributed to the different neural cell types. We discuss the possibility of an ANLS-like metabolic division of labor between glial cells and neurons, and how it is regulated. We then discuss plasticity in flux through energy metabolic pathways in neurons, how flux is regulated, and how it influences neural signaling. We end by discussing how metabolic dynamics in the glia and neurons may interact to impact signaling.
神经元活动需要大量的能量。大脑中的能量利用具有时空动态性,反映了神经元回路活动的变化,可能对调节神经元输出很重要。最近的许多工作都集中在理解脑胶质细胞如何从循环中摄取营养物质,然后为神经元提供代谢前体。然而,在神经元内,细胞代谢途径通量的调节也调节兴奋性和信号转导。要全面理解能量供应和代谢、神经信号以及行为等高级表型之间的联系,需要综合理解胶质细胞和神经元代谢动力学。在当前的综述中,我们将在昆虫脑代谢的背景下探讨这种综合。昆虫不仅表现出代谢分工和神经元代谢可塑性的证据,这种可塑性与脊椎动物物种中观察到的非常相似,而且似乎大脑代谢动力学与行为表型之间存在直接联系。我们总结了昆虫神经系统可用的代谢燃料的现有知识,以及它们如何被运输和分配到不同的神经细胞类型。我们讨论了胶质细胞和神经元之间可能存在类似于 ANLS 的代谢分工,以及它是如何被调节的。然后,我们讨论了神经元中能量代谢途径通量的可塑性、通量如何被调节以及它如何影响神经信号转导。最后,我们讨论了胶质细胞和神经元中的代谢动力学如何相互作用以影响信号转导。