Challenges and strategies faced in the electrochemical biosensing analysis of neurochemicals in vivo: A review

被引:12
|
作者
Chen, Jiatao [1 ]
Ding, Xiuting [1 ]
Zhang, Dongdong [1 ]
机构
[1] Xi An Jiao Tong Univ, Hlth Sci Ctr, Sch Pharm, Xian 710061, Peoples R China
基金
中国国家自然科学基金;
关键词
In vivo; Brain analysis; Analytical neurochemistry; Electrochemical sensor; Biosensor; Microelectrode; CARBON NANOTUBE FIBER; ASCORBIC-ACID; RAT-BRAIN; SENSITIVE DETECTION; PRUSSIAN BLUE; SEROTONIN MEASUREMENTS; SELECTIVE DETECTION; DOPAMINE DETECTION; RATIONAL DESIGN; NITRIC-OXIDE;
D O I
10.1016/j.talanta.2023.124933
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Our brain is an intricate neuromodulatory network, and various neurochemicals, including neurotransmitters, neuromodulators, gases, ions, and energy metabolites, play important roles in regulating normal brain function. Abnormal release or imbalance of these substances will lead to various diseases such as Parkinson's and Alzheimer's diseases, therefore, in situ and real-time analysis of neurochemical interactions in pathophysiological conditions is beneficial to facilitate our understanding of brain function. Implantable electrochemical biosensors are capable of monitoring neurochemical signals in real time in extracellular fluid of specific brain regions because they can provide excellent temporal and spatial resolution. However, in vivo electrochemical biosensing analysis mainly faces the following challenges: First, foreign body reactions induced by microelectrode implantation, non-specific adsorption of proteins and redox products, and aggregation of glial cells, which will cause irreversible degradation of performance such as stability and sensitivity of the microsensor and eventually lead to signal loss; Second, various neurochemicals coexist in the complex brain environment, and electroactive substances with similar formal potentials interfere with each other. Therefore, it is a great challenge to design recognition molecules and tailor functional surfaces to develop in vivo electrochemical biosensors with high selectivity. Here, we take the above challenges as a starting point and detail the basic design principles for improving in vivo stability, selectivity and sensitivity of microsensors through some specific functionalized surface strategies as case studies. At the same time, we summarize surface modification strategies for in vivo electrochemical biosensing analysis of some important neurochemicals for researchers' reference. In addition, we also focus on the electrochemical detection of low basal concentrations of neurochemicals in vivo via amperometric waveform techniques, as well as the stability and biocompatibility of reference electrodes during longterm sensing, and provide an outlook on the future direction of in vivo electrochemical neurosensing.
引用
收藏
页数:18
相关论文
共 50 条
  • [1] In Vivo Electrochemical Biosensing Technologies for Neurochemicals: Recent Advances in Electrochemical Sensors and Devices
    Yang, Tuo
    Shen, Tongjun
    Duan, Boyuan
    Liu, Zeyang
    Wang, Chunxia
    ACS SENSORS, 2025, 10 (01): : 100 - 121
  • [2] In Vivo Electrochemical Sensors for Neurochemicals: Recent Update
    Xu, Cong
    Wu, Fei
    Yu, Ping
    Mao, Lanqun
    ACS SENSORS, 2019, 4 (12) : 3102 - 3118
  • [3] Electrochemical biosensing strategies for DNA methylation analysis
    Hossain, Tanvir
    Mahmudunnabi, Golam
    Masud, Mostafa Kamal
    Islam, Md. Nazmul
    Ooi, Lezanne
    Konstantinov, Konstantin
    Al Hossain, Md Shahriar
    Martinac, Boris
    Alici, Gursel
    Nguyen, Nam-Trung
    Shiddiky, Muhammad J. A.
    BIOSENSORS & BIOELECTRONICS, 2017, 94 : 63 - 73
  • [4] Electrochemical and Optical Biosensing Strategies for DNA Methylation Analysis
    Zhang, Shu
    Huang, Jian
    Lu, Jingrun
    Liu, Min
    Chen, Xi
    Su, Shasha
    Mo, Fei
    Zheng, Junsong
    CURRENT MEDICINAL CHEMISTRY, 2020, 27 (36) : 6159 - 6187
  • [5] Advancements in Brain Research: The In Vivo/In Vitro Electrochemical Detection of Neurochemicals
    Xu, Xiaoxuan
    Zuo, Yimei
    Chen, Shu
    Hatami, Amir
    Gu, Hui
    BIOSENSORS-BASEL, 2024, 14 (03):
  • [6] Biosensing strategies for the electrochemical detection of viruses and viral diseases e A review
    Brazaca, Lais Canniatti
    dos Santos, Pamyla Layene
    de Oliveira, Paulo Roberto
    Rocha, Diego Pessoa
    Stefano, Jessica Santos
    Kalinke, Cristiane
    Munoz, Rodrigo Alejandro Abarza
    Bonacin, Juliano Alves
    Janegitz, Bruno Campos
    Carrilho, Emanuel
    ANALYTICA CHIMICA ACTA, 2021, 1159
  • [7] Challenges in Biomaterials Science for Electrochemical Biosensing and Bioenergy
    Colombo, Rafael N. P.
    Sedenho, Graziela C.
    Crespilho, Frank N.
    CHEMISTRY OF MATERIALS, 2022, 34 (23) : 10211 - 10222
  • [8] Challenges of Electrochemical Impedance Spectroscopy in Protein Biosensing
    Bogomolova, A.
    Komarova, E.
    Reber, K.
    Gerasimov, T.
    Yavuz, O.
    Bhatt, S.
    Aldissi, M.
    ANALYTICAL CHEMISTRY, 2009, 81 (10) : 3944 - 3949
  • [9] The application of graphene for in vitro and in vivo electrochemical biosensing
    Janegitz, Bruno Campos
    Silva, Tiago Almeida
    Wong, Ademar
    Ribovski, Lais
    Vicentini, Fernando Campanha
    Taboada Sotomayor, Maria del Pilar
    Fatibello-Filho, Orlando
    BIOSENSORS & BIOELECTRONICS, 2017, 89 : 224 - 233
  • [10] Advances in signal amplification strategies for electrochemical biosensing
    Liu, Yujie
    Liu, Yixin
    Qiao, Liang
    Liu, Yun
    Liu, Baohong
    CURRENT OPINION IN ELECTROCHEMISTRY, 2018, 12 : 5 - 12