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结合荧光共振能量转移和光镊技术研究局部刺激下RhoGTP酶的时空动力学。

Combining FRET and optical tweezers to study RhoGTPases spatio-temporal dynamics upon local stimulation.

作者信息

Iseppon Federico, Napolitano Luisa Mr, Torre Vincent, Cojoc Dan

机构信息

Neuroscience Area, International School for Advanced Studies, Trieste, Italy.

Optical Manipulation Lab, CNR-IOM, the National Research Council of Italy - Institute of Materials, Trieste, Italy.

出版信息

J Biol Methods. 2017 Mar 7;4(1):e65. doi: 10.14440/jbm.2017.159. eCollection 2017.

Abstract

Local stimulation with optical tweezers has been used to mimic natural stimuli that occur in biological processes such as cell migration or differentiation. Carriers (beads and lipid vesicles) with sizes down to 30 nm can be manipulated with a high spatial and temporal resolution: they are positioned with a sub-micrometric precision on a specific cell compartment and the beginning of the stimulation can be triggered with millisecond precision. RhoGTPases are a Ras-related family of proteins that regulate many different functions including cell polarity, microtubule dynamics and membrane transport pathways. Here we combine local stimulation with FRET microscopy to study RhoGTPases spatial and temporal activation following guidance cue local stimulation. We used two different vectors for local delivery: silica micro-beads and micro-sized lipid vesicles. The experimental methods associated with neuronal growth cone local stimulation are discussed in detail, as well as the analysis methods. Here we present a protocol that enables to study neuronal growth cone cytoskeleton rearrangements in response to a gradient of molecules in a way that better mimics physiological conditions, and it can be similarly applied to each secreted molecule involved in cell signaling.

摘要

利用光镊进行局部刺激已被用于模拟生物过程(如细胞迁移或分化)中出现的自然刺激。尺寸小至30纳米的载体(珠子和脂质囊泡)能够以高空间和时间分辨率进行操控:它们可以以亚微米精度定位在特定的细胞区室上,并且刺激的开始可以以毫秒精度触发。RhoGTPases是一类与Ras相关的蛋白质家族,其调节许多不同的功能,包括细胞极性、微管动力学和膜运输途径。在这里,我们将局部刺激与荧光共振能量转移显微镜相结合,以研究在引导线索局部刺激后RhoGTPases的空间和时间激活情况。我们使用了两种不同的局部递送载体:二氧化硅微珠和微米级脂质囊泡。详细讨论了与神经元生长锥局部刺激相关的实验方法以及分析方法。在这里,我们提出了一种方案,该方案能够以更好地模拟生理条件的方式研究神经元生长锥细胞骨架对分子梯度的重排反应,并且它可以类似地应用于参与细胞信号传导的每个分泌分子。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d7e5/6708921/31a10814827d/jbm-4-1-e65-g001.jpg

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