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体内微型多路复用无标记pH探针。

Miniature multiplexed label-free pH probe in vivo.

作者信息

Guo Yuanyuan, Werner Carl Frederik, Handa Shoma, Wang Mengyun, Ohshiro Tomokazu, Mushiake Hajime, Yoshinobu Tatsuo

机构信息

Frontier Research Institute for Interdisciplinary Sciences (FRIS), Tohoku University, Sendai, Miyagi 9800845, Japan; Department of Physiology, Graduate School of Medicine, Tohoku University, Sendai, Miyagi, 9808575, Japan; Graduate School of Biomedical Engineering, Tohoku University, Sendai, Miyagi, 9808579, Japan.

Department of Electronic Engineering, Graduate School of Engineering, Tohoku University, Sendai, Miyagi, 9808579, Japan.

出版信息

Biosens Bioelectron. 2021 Feb 15;174:112870. doi: 10.1016/j.bios.2020.112870. Epub 2020 Nov 28.

Abstract

Correlating in-brain pH fluctuations with the pathophysiology has been impeded by the lack of in vivo techniques to precisely determine local pH changes. Here, we developed an all-in-one pH probe for spatially-resolved and label-free pH sensing in vivo, based on a field-effect pH sensor, i.e., a light-addressable potentiometric sensor (LAPS), coupled to a flexible multimodal fiber. A readout photocurrent from the LAPS, elicited from a modulated light source, registers the localized surface potential change, proportional to the pH change. Upon simultaneous illuminations at multi-spot by a plurality of light sources with different modulation frequencies, pH changes at multiple designated spots are obtained via demultiplexing this photocurrent. To enable its in vivo applications, we combined the LAPS with a multimodal fiber fabricated by the convergence thermal drawing. Such fiber seamlessly integrates a multicore optical waveguide in the center for the light delivery, surrounded by electrodes for leading out photocurrent and serving as a pseudo-reference electrode, respectively. Such hybrid all-in-one pH probes can measure pH changes at 14 pixels simultaneously with a spatial resolution of 250 μm and a temporal resolution of 30 Hz. The pH sensitivity was characterized as 57.5 ± 2.2 mV/pH homogeneously across all measurable pixels. Such probes have been implanted into the hippocampal formation of rats and their capabilities to capture pH changes at multiple pixels were evaluated at both physiological and pathological conditions. Technologies developed here represents a new class of in vivo chemical sensing technologies enabling the spatially-resolved investigation of intrinsic chemical signals in deep brain structures with high spatial and temporal resolutions.

摘要

由于缺乏精确测定局部pH变化的体内技术,脑内pH波动与病理生理学之间的关联一直受到阻碍。在此,我们基于场效应pH传感器,即光寻址电位传感器(LAPS),结合柔性多模光纤,开发了一种用于体内空间分辨和无标记pH传感的一体化pH探针。由调制光源激发的LAPS读出光电流记录与pH变化成比例的局部表面电位变化。通过多个具有不同调制频率的光源在多点同时照射,通过对该光电流进行解复用获得多个指定点处的pH变化。为了实现其体内应用,我们将LAPS与通过会聚热拉伸制造的多模光纤相结合。这种光纤在中心无缝集成了用于光传输的多芯光波导,周围分别是用于引出光电流和用作伪参考电极的电极。这种混合一体化pH探针可以同时测量14个像素处的pH变化,空间分辨率为250μm,时间分辨率为30Hz。在所有可测量像素上,pH灵敏度的特征为均匀的57.5±2.2mV/pH。这种探针已植入大鼠海马结构中,并在生理和病理条件下评估了它们在多个像素处捕获pH变化的能力。这里开发的技术代表了一类新的体内化学传感技术,能够以高空间和时间分辨率对深部脑结构中的内在化学信号进行空间分辨研究。

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