神经血管信号在状血管界面:从流量调节到认知能量合
Stefan Oprea1,2,3, Cosmin Pantu1,2,3, Daniel Costea3,4
1Faculty of General Medicine, "Carol Davila" University of Medicine and Pharmacy, 050474 Bucharest, Romania.
International journal of molecular sciences
|January 10, 2026
概括
思考是一个协调的大脑能量过程,将神经活动和新陈代谢联系在一起. 这种热力学观点揭示了能量流如何支持认知,感知和记忆.
科学领域:
- 神经科学是一个神经科学.
- 热力学是一种热力学.
- 血管生理学 血管生理学
背景情况:
- 大脑功能依赖于持续的能量修饰.
- 现有的研究跨越了分子神经学,血管生理学和热力学.
研究的目的:
- 整合多元化的研究,以全面地看待思维作为能源过程.
- 在所有生物尺度上探索信息处理和代谢之间的关系.
主要方法:
- 对分子神经学发现的审查.
- 对血管生理学数据的分析.
- 应用非平衡热力学原理.
主要成果:
- 信息处理和新陈代谢与线粒体与微血管系统有关.
- 细胞机制 (线粒体网络,天体细胞信号,毛细血管控制) 保持功能平衡和灵活性.
- 长期调节 (redox可塑性,表观遗传学,器官重塑) 创造了生理记忆.
- 皮层网络在临界系统附近运行,以实现响应能力,而无需能量不稳定.
结论:
- 认知来自于协调能量供应与神经活动,跨越时间和空间.
- 将神经功能视为热力学过程提供了一个预测框架.
- 凝聚力被认为是能量流,感知,记忆和认知之间的关键联系.
关键词:
适应性的连贯性 适应性的连贯性大脑能量学大脑能量学能源与信息的合.减少的最小化.质血管合器的合器代谢学习是指代谢学习.线粒体网络是线粒体网络.预测编码的预测编码.氧化还原可塑性 氧化还原可塑性热力学关键性的热力学关键性更多相关视频
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