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首页> 外文期刊>Lab on a chip >A monitoring system for axonal growth dynamics using micropatterns of permissive and Semaphorin 3F chemorepulsive signals
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A monitoring system for axonal growth dynamics using micropatterns of permissive and Semaphorin 3F chemorepulsive signals

机译:使用允许和信号素3F化学脉冲信号微图示的轴突生长动力学监测系统

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摘要

Neurons reach their correct targets by directional outgrowth of axons, which is mediated by attractive or repulsive cues. Growing axons occasionally cross a field of repulsive cues and stop at intermediate targets on the journey to their final destination. However, it is not well-understood how individual growth cones make decisions, and pass through repulsive territory to reach their permissive target regions. We developed a microcontact printing culture system that could trap individual axonal tips in a permissive dot area surrounded by the repulsive signal, semaphorin 3F (Sema3F). Axons of rat hippocampal neurons on the Sema3F/PLL dot array extended in the checkboard pattern with a significantly slow growth rate. The detailed analysis of the behaviors of axonal growth cones revealed the saccadic dynamics in the dot array system. The trapped axonal tips in the permissive area underwent growth cone enlargement with remarkably spiky filopodia, promoting their escape from the Sema3F constraints with straight extension of axons. This structured axonal growth on the dot pattern was disrupted by increased inter-dot distance, or perturbing intracellular signaling machineries. These data indicate that axons grow against repulsive signals by jumping over the repulsive cues, depending on contact signals and intracellular milieu. Our study suggests that our dot array culture system can be used as a screening system to easily and efficiently evaluate ECM or small molecule inhibitors interfering growth cone dynamics leading to controlling axonal growth.
机译:神经元通过轴向的定向外轴来达到正确的目标,这是由吸引人或排斥性提示介导的。生长的轴突偶尔会跨越一个令人厌恶的线索领域,并停在前往他们最终目的地的中间目标。然而,并不是很好地理解各个增长锥度如何做出决策,并通过排斥领域来达到其允许目标区域。我们开发了一种微观印刷培养系统,可以在围绕着排斥信号,信号素3F(SEMA3F)包围的允许点区域中的单独轴突尖端。在SEMA3F / PLL点阵列上的大鼠海马神经元轴突在核心速度下延伸,增长速度明显缓慢。对轴突生长锥的行为的详细分析揭示了点阵列系统中的扫视动力学。众多棘手区域中的捕获的轴突提示通过显着的尖峰覆盖绦虫进行了增长锥扩大,促进了轴突的SEMA3F约束的逃逸。点图案上的这种结构化轴突生长被增加的点间距离,或扰动细胞内信号传导机械。这些数据表明,根据接触信号和细胞内的Milieu,轴突通过跳过排斥提示而增强了排斥信号。我们的研究表明,我们的DOT阵列培养系统可以用作筛选系统,以容易且有效地评估ECM或小分子抑制剂干扰导致控制轴突生长的生长锥动力学。

著录项

  • 来源
    《Lab on a chip 》 |2019年第2期| 共15页
  • 作者单位

    Korea Univ Coll Med Brain Korea 21 Dept Anat Seoul 136705 South Korea;

    Korea Univ Coll Med Brain Korea 21 Dept Anat Seoul 136705 South Korea;

    Korea Univ Coll Med Brain Korea 21 Dept Anat Seoul 136705 South Korea;

    Korea Univ Coll Med Brain Korea 21 Dept Anat Seoul 136705 South Korea;

    Korea Univ Coll Med Brain Korea 21 Dept Anat Seoul 136705 South Korea;

    Korea Adv Inst Sci &

    Technol Dept Bio &

    Brain Engn 291 Daehak Ro Daejeon 305701 South Korea;

    Korea Inst Sci &

    Technol Ctr BioMicrosyst Brain Sci Inst 5 Hwarang Ro 14 Gil 5 Seoul 136791 South Korea;

    Korea Adv Inst Sci &

    Technol Dept Bio &

    Brain Engn 291 Daehak Ro Daejeon 305701 South Korea;

    Korea Inst Sci &

    Technol Ctr BioMicrosyst Brain Sci Inst 5 Hwarang Ro 14 Gil 5 Seoul 136791 South Korea;

    Korea Univ Coll Med Brain Korea 21 Dept Anat Seoul 136705 South Korea;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学实验(实验化学) ; 生物化学 ; 生物科学 ; 化学 ;
  • 关键词

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