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In Vivo Measurement of Calcium Ion with Solid-State Ion-Selective Electrode by Using Shelled Hollow Carbon Nanospheres as a Transducing Layer

机译:用壳中空碳纳米球体体内测量固态离子选择性电极作为换层层

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摘要

In vivo monitoring of extracellular calcium ion (Ca2+) is of great importance due to its significant contributions in different (patho)physiological processes. In this study, we develop a potentiometric method with solid-state ion-selective electrodes (ISEs) for in vivo monitoring of the dynamics of the extracellular Ca2+ by using hollow carbon nanospheres (HCNs) as a transducing layer and solid contact to efficiently promote the ion-to-electron transduction between an ionophore-doped solvated polymeric membrane and a conducting substrate. We find that the use of HCNs essentially improves the stability of the signal response and minimizes the potential drift of the as-prepared ISEs. With three-shelled HCNs (3s-HCNs) as the transducing layer, we fabricate a solid-state Ca2+-selective microelectrode by forming a Ca2+-selective membrane with calcium ionophore II as the recognition unit, 2-nitrophenyl octyl ether as the plasticizer, sodium tetrakis[3,5-bis(trifluoromethyl)phenyl] borate as the ion exchanger, and polyvinyl chloride polymeric as the matrix onto the 3s-HCN-modified carbon fiber electrodes. The as-prepared electrode shows a high stability and a near Nernst response of 28 mV/decade toward Ca2+ over a concentration range from 10(-5) to 0.05 M as well as a good selectivity against species endogenously existing in the central nervous system. With these properties, the electrode is used for real-time recording of the dynamics of extracellular Ca2+ during spreading depression induced by electrical stimulation, in which the extracellular Ca2+ in rat cortex is found to decrease by 50.0 +/- 7.5% (n = 5) during spreading depression. This study essentially offers a new platform to develop solid-state ISEs, which is particularly useful for in vivo measurements of metal ions and pH in live rat brain.
机译:在体内监测细胞外钙离子(CA2 +),由于其不同(PATO)生理过程的显着贡献,具有重要意义。在这项研究中,我们通过使用中空碳纳米球(HCNS)作为转换层和固体接触,通过使用中空碳纳米球(HCNS)来制定具有固态离子选择性电极(ISES)的电位方法,以便通过中空碳纳米球(HCNS)作为转换层和固体接触以有效地促进离子体掺杂溶剂化聚合物膜和导电基板之间的离子到电子转导。我们发现使用HCNS基本上提高了信号响应的稳定性,并最大限度地减少了制备的含量的潜在漂移。用三相壳的HCNS(3S-HCNS)作为转换层,通过将具有钙离子载体II的Ca2 +式选择性膜作为识别单元,2-硝基苯辛基醚作为增塑剂,制造固态Ca2 + - 选择性微电极,如增塑剂,四硫酸钠[3,5-双(三氟甲基)苯基]作为离子交换剂硼酸盐,以及聚氯乙烯聚合物作为基质到3S-HCN改性的碳纤维电极上。制备的电极显示出高稳定性和近鼻塞响应,朝向Ca2 +的浓度范围为10(-5)至0.05μm,以及对中枢神经系统内部存在的物种的良好选择性。通过这些性质,电极用于通过电刺激诱导的展开凹陷期间的细胞外Ca2 +动态的实时记录,其中大鼠皮质中的细胞外Ca2 +降低50.0 +/- 7.5%(n = 5 )在传播抑郁症期间。本研究基本上提供了一种开发固态ISE的新平台,这对于在活大鼠脑中的金属离子和pH的体内测量中特别有用。

著录项

  • 来源
    《Analytical chemistry》 |2019年第7期|共8页
  • 作者单位

    Harbin Engn Univ Coll Mat Sci &

    Chem Engn Minist Educ Inst Surface Interface Sci &

    Technol Key Lab Supe Harbin 150001 Heilongjiang Peoples R China;

    Chinese Acad Sci Beijing Natl Lab Mol Sci Key Lab Analyt Chem Living Biosyst Key Lab Mol Nanostruct &

    Nanotechnol Inst Chem Beijing 100190 Peoples R China;

    Chinese Acad Sci Beijing Natl Lab Mol Sci Key Lab Analyt Chem Living Biosyst Key Lab Mol Nanostruct &

    Nanotechnol Inst Chem Beijing 100190 Peoples R China;

    Chinese Acad Sci Beijing Natl Lab Mol Sci Key Lab Analyt Chem Living Biosyst Key Lab Mol Nanostruct &

    Nanotechnol Inst Chem Beijing 100190 Peoples R China;

    Chinese Acad Sci Beijing Natl Lab Mol Sci Key Lab Analyt Chem Living Biosyst Key Lab Mol Nanostruct &

    Nanotechnol Inst Chem Beijing 100190 Peoples R China;

    Harbin Engn Univ Coll Mat Sci &

    Chem Engn Minist Educ Inst Surface Interface Sci &

    Technol Key Lab Supe Harbin 150001 Heilongjiang Peoples R China;

    Chinese Acad Sci Beijing Natl Lab Mol Sci Key Lab Analyt Chem Living Biosyst Key Lab Mol Nanostruct &

    Nanotechnol Inst Chem Beijing 100190 Peoples R China;

    Chinese Acad Sci Beijing Natl Lab Mol Sci Key Lab Analyt Chem Living Biosyst Key Lab Mol Nanostruct &

    Nanotechnol Inst Chem Beijing 100190 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
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