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单量子点追踪揭示神经元胞体中脑源性神经营养因子复合物的异质性细胞内运输动力学

Heterogeneous intracellular trafficking dynamics of brain-derived neurotrophic factor complexes in the neuronal soma revealed by single quantum dot tracking.

作者信息

Vermehren-Schmaedick Anke, Krueger Wesley, Jacob Thomas, Ramunno-Johnson Damien, Balkowiec Agnieszka, Lidke Keith A, Vu Tania Q

机构信息

Department of Biomedical Engineering and Center for Spatial Systems Biomedicine, Oregon Health & Science University, Portland, Oregon, United States of America.

Department of Physics & Astronomy, University of New Mexico, Albuquerque, New Mexico, United States of America.

出版信息

PLoS One. 2014 Apr 14;9(4):e95113. doi: 10.1371/journal.pone.0095113. eCollection 2014.

Abstract

Accumulating evidence underscores the importance of ligand-receptor dynamics in shaping cellular signaling. In the nervous system, growth factor-activated Trk receptor trafficking serves to convey biochemical signaling that underlies fundamental neural functions. Focus has been placed on axonal trafficking but little is known about growth factor-activated Trk dynamics in the neuronal soma, particularly at the molecular scale, due in large part to technical hurdles in observing individual growth factor-Trk complexes for long periods of time inside live cells. Quantum dots (QDs) are intensely fluorescent nanoparticles that have been used to study the dynamics of ligand-receptor complexes at the plasma membrane but the value of QDs for investigating ligand-receptor intracellular dynamics has not been well exploited. The current study establishes that QD conjugated brain-derived neurotrophic factor (QD-BDNF) binds to TrkB receptors with high specificity, activates TrkB downstream signaling, and allows single QD tracking capability for long recording durations deep within the soma of live neurons. QD-BDNF complexes undergo internalization, recycling, and intracellular trafficking in the neuronal soma. These trafficking events exhibit little time-synchrony and diverse heterogeneity in underlying dynamics that include phases of sustained rapid motor transport without pause as well as immobility of surprisingly long-lasting duration (several minutes). Moreover, the trajectories formed by dynamic individual BDNF complexes show no apparent end destination; BDNF complexes can be found meandering over long distances of several microns throughout the expanse of the neuronal soma in a circuitous fashion. The complex, heterogeneous nature of neuronal soma trafficking dynamics contrasts the reported linear nature of axonal transport data and calls for models that surpass our generally limited notions of nuclear-directed transport in the soma. QD-ligand probes are poised to provide understanding of how the molecular mechanisms underlying intracellular ligand-receptor trafficking shape cell signaling under conditions of both healthy and dysfunctional neurological disease models.

摘要

越来越多的证据强调了配体 - 受体动力学在塑造细胞信号传导中的重要性。在神经系统中,生长因子激活的Trk受体运输用于传递作为基本神经功能基础的生化信号。人们一直关注轴突运输,但对于神经元胞体中生长因子激活的Trk动力学知之甚少,尤其是在分子水平上,这在很大程度上是由于在活细胞内长时间观察单个生长因子 - Trk复合物存在技术障碍。量子点(QD)是强荧光纳米颗粒,已被用于研究质膜上配体 - 受体复合物的动力学,但量子点在研究配体 - 受体内在动力学方面的价值尚未得到充分利用。当前的研究表明,量子点偶联的脑源性神经营养因子(QD - BDNF)以高特异性结合TrkB受体,激活TrkB下游信号,并允许在活神经元胞体深处进行长时间记录的单量子点跟踪能力。QD - BDNF复合物在神经元胞体中经历内化、再循环和细胞内运输。这些运输事件在潜在动力学中几乎没有时间同步性和多样的异质性,包括持续快速运动运输且无停顿的阶段以及持续时间惊人地长(几分钟)的静止阶段。此外,动态单个BDNF复合物形成的轨迹没有明显的终点;BDNF复合物可以在神经元胞体的整个范围内以迂回的方式在几微米的长距离上蜿蜒。神经元胞体运输动力学的复杂、异质性与报道的轴突运输数据的线性性质形成对比,并需要超越我们对胞体中核定向运输的普遍有限概念的模型。量子点 - 配体探针有望提供对细胞内配体 - 受体运输背后的分子机制如何在健康和功能失调的神经疾病模型条件下塑造细胞信号传导的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ba7b/3986401/656dcc73ec28/pone.0095113.g001.jpg

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