Li Zhao-Yu, Zhou Wei, Wu Zheng-Xing, Zhang Rong-Ying, Xu Tao
Key Laboratory of Molecular Biophysics of the Ministry of Education, College of Life Science and Technology, Huazhong University of Science and Technology, Wuhan 430074, PR China.
Biosens Bioelectron. 2009 Jan 1;24(5):1358-64. doi: 10.1016/j.bios.2008.07.073. Epub 2008 Aug 13.
Size-controllable micron or nano-disk carbon fiber electrode (CFE) is prepared and demonstrated to be excellent for extra-cellular transmitter release detection at tiny structures and vesicle fusion kinetics analysis with high spatio-temporal resolution. An improved electrochemical etching procedure was employed, for the first time, to fabricate cylindrical fiber with controlled micron or nano-diameter. Afterwards, a facile insulation with polypropylene sheath was employed to completely insulate the whole body of the thinned fiber, and an ultrasmall-disk sensing area was finally produced by cutting of the insulated fibers. Scanning electron microscopy (SEM) was employed to characterize the ultrasmall geometry size of the fabricated electrode and to show the tight adherence of the insulation sheath on the fiber. The cut ends of the electrodes were also shown to be smooth, clean and without obvious jagged layer. The fabricated micron or nano-disk carbon electrodes show ideal steady-state voltammetric behavior with satisfying reversibility. Subsequently, the performance of the ultrasmall-disk CFE for amperometric detection of cell secretion was characterized. Results showed that, compared to the conventional micro-disk CFE, the etched small disk CFE possesses higher sensitivity due to its obviously improved signal-to-noise level, which enables minute amounts of 3000 oxidizable molecules to be detectable. The nano-disk CFE was shown to be particularly ideal for analysis of fusion kinetics, due to its avoidance of diffusion broadening of the detected spikes, which is the inherent defect of the conventional micro-CFE technique.
制备了尺寸可控的微米或纳米盘碳纤维电极(CFE),并证明其在微小结构的细胞外递质释放检测和具有高时空分辨率的囊泡融合动力学分析方面表现出色。首次采用改进的电化学蚀刻工艺来制造具有可控微米或纳米直径的圆柱形纤维。之后,采用聚丙烯护套进行简便的绝缘处理,以使变细纤维的整个主体完全绝缘,最后通过切割绝缘纤维制成超小圆盘传感区域。利用扫描电子显微镜(SEM)对所制备电极的超小几何尺寸进行表征,并展示绝缘护套在纤维上的紧密附着情况。电极的切割端也显示出光滑、干净且无明显锯齿状层。所制备的微米或纳米盘碳电极表现出理想的稳态伏安行为,具有令人满意的可逆性。随后,对超小圆盘CFE用于细胞分泌的安培检测性能进行了表征。结果表明,与传统的微盘CFE相比,蚀刻后的小盘CFE由于其明显改善的信噪比水平而具有更高的灵敏度,这使得能够检测到微量的3000个可氧化分子。纳米盘CFE被证明对于融合动力学分析特别理想,因为它避免了检测尖峰的扩散展宽,而这是传统微CFE技术的固有缺陷。