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首页> 外文期刊>Biosensors & Bioelectronics: The International Journal for the Professional Involved with Research, Technology and Applications of Biosensers and Related Devices >Measuring metabolism and biophysical flux in the tissue, cellular and sub-cellular domains: Recent developments in self-referencing amperometry for physiological sensing
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Measuring metabolism and biophysical flux in the tissue, cellular and sub-cellular domains: Recent developments in self-referencing amperometry for physiological sensing

机译:测量组织,细胞和亚细胞域中的新陈代谢和生物物理通量:用于生理传感的自参考电流分析法的最新进展

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Ultimately, advances in genomics, proteornics and metabolomics will be realized by combining these approaches with biophysical sensors for understanding the functional and structural (physiological) aspects of sub-cellular systems (cytomics). Therefore, the emergence of the new fields of cytomics and physiomics will require new technologies to probe the functional realm of living cells. While amperometric sensors have been used, their sensitivity and reliability are significantly improved through the development of new strategies and data acquisition systems for the operation of the sensors. This includes the application of the principles of the vibrating or self-referencing microsensor to the operation of amperometric sensors. The development of self-referencing amperometry (SRA) is significant because it effectively converts static concentration sensors into dynamic biophysical sensors that directly monitor physiological flux. SRA has been developed for analytes such as O-2, NO, H2O2 and ascorbate. These sensors have been validated against non-biological microscopic flux sources that were theoretically modeled, before being applied to biological research. This new sensor technology has been shown, through research in a wide variety of biological and biomedical research projects, to be an important new tool in the arsenal of the cell biologist. SRA technology has been adapted through SRA-H2O2 and SRA-NADH sensors, for electrochemically coupled enzyme based self-referencing biosensors (SRB) for glucose, glutamate and ethanol. These developments in self-referencing sensor technologies offer great promise in extending electroanalytical chemistry and biosensor technologies from the micro to the nanoscale where researchers can study physiology at the sub-cellular and organellar levels. (c) 2006 Elsevier B.V. All rights reserved.
机译:最终,通过将这些方法与生物物理传感器相结合来理解亚细胞系统(细胞组学)的功能和结构(生理)方面,将会实现基因组学,蛋白质组学和代谢组学的进步。因此,细胞组学和物理组学的新领域的出现将需要新技术来探测活细胞的功能领域。虽然使用了安培传感器,但通过开发用于传感器操作的新策略和数据采集系统,显着提高了其灵敏度和可靠性。这包括将振动或自引用微传感器的原理应用于安培传感器的操作。自引用电流分析法(SRA)的发展意义重大,因为它可以将静态浓度传感器有效地转换为直接监测生理通量的动态生物物理传感器。 SRA已开发用于O-2,NO,H2O2和抗坏血酸等分析物。在应用于生物学研究之前,已经针对理论上建模的非生物学微观通量源对这些传感器进行了验证。通过广泛的生物学和生物医学研究项目的研究,这种新的传感器技术已被证明是细胞生物学家的重要新工具。 SRA技术已通过SRA-H2O2和SRA-NADH传感器进行了改造,用于基于电化学耦合的基于酶的葡萄糖,谷氨酸盐和乙醇的自参考生物传感器(SRB)。自引用传感器技术的这些发展为将电分析化学和生物传感器技术从微米级扩展到纳米级提供了广阔的前景,研究人员可以在此研究亚细胞和细胞器水平的生理学。 (c)2006 Elsevier B.V.保留所有权利。

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