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微管在γ-微管蛋白功能化金表面的成核与生长。

Nucleation and growth of microtubules from gamma-tubulin-functionalized gold surfaces.

作者信息

Yang Yi, Deymier Pierre A, Wang Lian, Guzman Roberto, Hoying James B, McLaughlin Heather J, Smith Shane D, Jongewaard Ian N

机构信息

Department of Materials Science and Engineering, The University of Arizona, Tucson, Arizona 85721, USA.

出版信息

Biotechnol Prog. 2006 Jan-Feb;22(1):303-12. doi: 10.1021/bp050150j.

Abstract

Microtubules are protein filaments that are emerging as potential building blocks in manufacturing nanoscale structures and systems such as interconnecting nanowires. Future development in using microtubules necessitates a control of their nucleation and growth. We report the controlled nucleation and growth of microtubules from functionalized gold on a hydrophilic oxidized silicon wafer. The gold substrate is functionalized with gamma-tubulin, a natural nucleating agent for microtubule growth. We show that the attached gamma-tubulin retains its biological functionality and leads to nucleation and assembly of microtubules from the functionalized gold surface. We also analyze the interplay between the geometry of the nucleating substrates and the morphology of microtubules arrays and networks grown from them. We consider two geometrical arrangements of the substrates: (a) a square lattice of small gold pads on a hydrophilic oxidized silicon wafer and (b) a large flat surface. Fluorescence microscopy and scanning electron microscopy are employed to provide a detailed characterization of the length and morphology of the nucleated and grown microtubules. The observed microtubule morphologies are modeled, analyzed and discussed within the context of reaction-diffusion and nucleation controlled processes.

摘要

微管是蛋白质细丝,正逐渐成为制造纳米级结构和系统(如互连纳米线)的潜在构建块。微管使用方面的未来发展需要对其成核和生长进行控制。我们报道了在亲水性氧化硅晶片上由功能化金实现的微管的可控成核和生长。金基底用γ-微管蛋白进行功能化,γ-微管蛋白是微管生长的天然成核剂。我们表明,附着的γ-微管蛋白保留了其生物学功能,并导致从功能化金表面成核和组装微管。我们还分析了成核基底的几何形状与由其生长的微管阵列和网络形态之间的相互作用。我们考虑基底的两种几何排列:(a)亲水性氧化硅晶片上小金垫的正方形晶格和(b)大的平面。使用荧光显微镜和扫描电子显微镜对成核和生长的微管的长度和形态进行详细表征。在反应扩散和成核控制过程的背景下对观察到的微管形态进行建模、分析和讨论。

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