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首页> 外文期刊>ACS nano >Spatially Selective Dissection of Signal Transduction in Neurons Grown on Netrin-1 Printed Nanoarrays via Segmented Fluorescence Fluctuation Analysis
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Spatially Selective Dissection of Signal Transduction in Neurons Grown on Netrin-1 Printed Nanoarrays via Segmented Fluorescence Fluctuation Analysis

机译:通过分段荧光波动分析在Netrin-1印刷纳米阵列上生长的神经元信号转导的空间选择性解剖

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Axonal growth cones extend during neural development in response to precise distributions of extracellular cues. Deleted in colorectal cancer (DCC), a receptor for the chemotropic guidance cue netrin-1, directs F-actin reorganization, and is essential for mammalian neural development. To elucidate how the extracellular distribution of netrin-1 influences the distribution of DCC and F-actin within axonal, growth cones, we patterned nanoarrays of substrate bound netrin-1 using lift-off nanocontact printing. The distribution of DCC and F-actin in embryonic rat cortical neuron growth cones was then imaged using total internal reflection fluorescence (TIRE) microscopy. Fluorescence fluctuation analysis via image cross-correlation spectroscopy (ICCS) was applied to extract the molecular density and aggregation state of DCC and F-actin, identifying the fraction of DCC and F-actin colocalizing with the patterned netrin-1 substrate. ICCS measurement of spatially segmented images based on the substrate nanodot patterns revealed the molecular distributions of F-actin and DCC in regions directly overlying the nanodots compared to over the reference surface surrounding the nanodots. Quantifiable variations between the populations of DCC and F-actin on and off the "nanodots reveal specific responses to the printed protein substrate. We report that nanodots of substrate-bound netrin-1 locally recruit and aggregate DCC and direct F-actin organization. These effects were blocked by tetanus toxin, consistent with netrin-1 locally recruiting DCC to the plasma membrane via a VAMP2-dependent mechanism. Our findings demonstrate the utility of segmented ICCS image analysis, combined with precisely patterned immobilized ligands, to reveal local receptor distribution and signaling within specialized subcellular compartments.
机译:轴突生长锥在神经发育期间延伸,以应对细胞外提示的精确分布。删除结直肠癌(DCC),趋化性引导Cue Netrin-1的受体,指导F-肌动蛋白重组,对哺乳动物神经发育至关重要。为了阐明Netrin-1的细胞外分布如何影响轴突,生长锥内的DCC和F-肌动蛋白的分布,我们使用升空纳米接触印刷在衬底结合的Netrin-1中图案化纳米阵列。然后使用全内反射荧光(轮胎)显微镜对胚胎大鼠皮质神经元生长锥中的DCC和F-Actin的分布进行成像。施加通过图像互相关光谱(ICCS)的荧​​光波动分析以提取DCC和F-Actin的分子密度和聚集状态,鉴定与图案化的Netrin-1基材分开的DCC和F-肌动蛋白的分数。基于衬底纳米型图案的空间分段图像的ICC在与纳米纸周围的参考表面相比,在直接覆盖纳米蛋白的区域中的分子分布显示了F-actin和DCC的分子分布。 DCC和F-肌动蛋白的群体之间的量化变化“纳米蛋白揭示了对印刷蛋白质基质的特定反应。我们报告了基质结合的Netrin-1局部募集和聚集DCC和直接F-Actin组织的纳米蛋白。这些Tetanus Toxin阻断了诱导的效果,通过Vamp2依赖性机制将Netrin-1局部募集到血浆膜局部募集到血浆膜。我们的研究结果证明了分段的ICCS图像分析的效用,与精确图案化的固定配体组合,揭示局部受体分布和在专用亚细胞隔间内的信号传导。

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