Phosphoinositides: Nanoscale Effects on Neuronal Membranes.

IF 3.5 3区 医学 Q1 CLINICAL NEUROLOGY
Kohgaku Eguchi
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引用次数: 0

Abstract

Phosphoinositides (PIs) are essential regulators of neuronal function, playing pivotal roles in processes such as synaptic transmission, membrane excitability, and long-term synaptic plasticity. The seven PI isoforms, including PI(4)P, PI(4,5)P2, and PI(3,4,5)P2, exhibit distinct subcellular distributions that are tightly regulated by specific kinases and phosphatases. These isoforms contribute to key neuronal processes by modulating protein interactions and signaling pathways. Recent advances in visualization techniques, such as biosensor-based live imaging and SDS-digested freeze-fracture replica labeling, have provided new insights into the spatial distributions and dynamic behaviors of PI isoforms in neurons, particularly at synapses.However, significant questions remain, such as how specific PI isoforms coordinate signaling events in distinct subcellular compartments and how these lipids influence critical neuronal processes like vesicular trafficking and synaptic plasticity. Addressing these challenges will require the continued development of advanced imaging technologies, which are essential for mapping nanoscale distributions of PIs and their dynamic roles in neuronal processes. Here, I will review current findings, advancements in visualization methodologies, and key research directions. This review will be helpful for understanding the roles of PIs in neuronal physiology, their broad impacts on neuronal signaling, and the technological breakthroughs needed to uncover these complex processes.

磷酸肌苷:对神经元膜的纳米效应。
磷酸肌苷(phosphoinosidtides, pi)是神经元功能的重要调节因子,在突触传递、膜兴奋性和长期突触可塑性等过程中发挥关键作用。PI(4)P、PI(4,5)P2和PI(3,4,5)P2等7种PI异构体表现出不同的亚细胞分布,受特定激酶和磷酸酶的严格调控。这些异构体通过调节蛋白质相互作用和信号通路参与关键的神经元过程。可视化技术的最新进展,如基于生物传感器的实时成像和sds消化的冷冻断裂复制标记,为神经元(特别是突触)中PI同工异构体的空间分布和动态行为提供了新的见解。然而,重要的问题仍然存在,例如特定的PI异构体如何协调不同亚细胞区室中的信号事件,以及这些脂质如何影响关键的神经元过程,如囊泡运输和突触可塑性。解决这些挑战需要先进成像技术的持续发展,这对于绘制pi的纳米级分布及其在神经元过程中的动态作用至关重要。在这里,我将回顾当前的发现,可视化方法的进展,以及主要的研究方向。这一综述将有助于理解pi在神经元生理学中的作用,它们对神经元信号传导的广泛影响,以及揭示这些复杂过程所需的技术突破。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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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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