氧气与人类大脑进化的火花:新陈代谢与皮质扩展在发育和进化过程中的复杂互动。

IF 3.5 3区 医学 Q1 CLINICAL NEUROLOGY Neuroscientist Pub Date : 2024-04-01 Epub Date: 2022-12-08 DOI:10.1177/10738584221138032
Andrea I Luppi, Fernando E Rosas, MaryAnn P Noonan, Pedro A M Mediano, Morten L Kringelbach, Robin L Carhart-Harris, Emmanuel A Stamatakis, Anthony C Vernon, Federico E Turkheimer
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引用次数: 0

摘要

关于人脑功能和失调的科学理论需要了解人脑的发育--从出生前到出生后,从成熟到成年--及其进化过程。在这里,我们通过关注氧气和大脑新陈代谢的核心作用,汇集了关于人脑进化的几种说法。我们认为,人类跨模态关联皮层的进化扩张超过了血管系统的供氧能力,这导致这些脑组织依赖非氧化糖酵解来提供额外能量。我们将由此导致的较低氧张力及其对细胞结构的影响联系起来,并认为这是人类大脑遗传发育程序的一个关键驱动因素--它有利于降低皮层内的髓鞘化程度,并有利于突触周转所需的生物合成材料的存在。在整个生物和时间尺度上,这种神经可塑性的长期能力为认知灵活性和持续学习创造了条件,支持复杂的群体动力学和代际学习,而代际学习反过来又使营养得到改善,从而为皮质进一步扩张的代谢成本提供燃料。我们提出的模型在新陈代谢、分子和细胞大脑异质性以及行为之间建立了明确的机理联系,这可能有助于人们更清楚地了解大脑发育及其疾病。
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Oxygen and the Spark of Human Brain Evolution: Complex Interactions of Metabolism and Cortical Expansion across Development and Evolution.

Scientific theories on the functioning and dysfunction of the human brain require an understanding of its development-before and after birth and through maturation to adulthood-and its evolution. Here we bring together several accounts of human brain evolution by focusing on the central role of oxygen and brain metabolism. We argue that evolutionary expansion of human transmodal association cortices exceeded the capacity of oxygen delivery by the vascular system, which led these brain tissues to rely on nonoxidative glycolysis for additional energy supply. We draw a link between the resulting lower oxygen tension and its effect on cytoarchitecture, which we posit as a key driver of genetic developmental programs for the human brain-favoring lower intracortical myelination and the presence of biosynthetic materials for synapse turnover. Across biological and temporal scales, this protracted capacity for neural plasticity sets the conditions for cognitive flexibility and ongoing learning, supporting complex group dynamics and intergenerational learning that in turn enabled improved nutrition to fuel the metabolic costs of further cortical expansion. Our proposed model delineates explicit mechanistic links among metabolism, molecular and cellular brain heterogeneity, and behavior, which may lead toward a clearer understanding of brain development and its disorders.

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来源期刊
Neuroscientist
Neuroscientist 医学-临床神经学
CiteScore
11.50
自引率
0.00%
发文量
68
期刊介绍: Edited by Stephen G. Waxman, The Neuroscientist (NRO) reviews and evaluates the noteworthy advances and key trends in molecular, cellular, developmental, behavioral systems, and cognitive neuroscience in a unique disease-relevant format. Aimed at basic neuroscientists, neurologists, neurosurgeons, and psychiatrists in research, academic, and clinical settings, The Neuroscientist reviews and updates the most important new and emerging basic and clinical neuroscience research.
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