Wang Xiuyun
Associate Professor Supervisor of Master's Candidates
Gender:Female
Alma Mater:琦玉工业大学
Degree:Doctoral Degree
School/Department:化学学院
Discipline:Analytical Chemistry. Chemical Biology
Business Address:化学楼432
Contact Information:xiuyun@dlut.edu.cn
E-Mail:xiuyun@dlut.edu.cn
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Indexed by:期刊论文
Date of Publication:2016-06-07
Journal:ANALYTICAL CHEMISTRY
Included Journals:SCIE、EI、PubMed
Volume:88
Issue:11
Page Number:5885-5891
ISSN No.:0003-2700
Abstract:This study demonstrates a new strategy to develop in vivo electrochemical biosensors through rational design and simple formation of bioelectrochemically multifunctional film (BMF). The BMF is rationally designed by first efficiently incorporating oxidase, ferrocene mediator, and graphene oxide into polymaleimidostyrene/polystyrene (PMS/PS) matrix to form a homogeneous mixture and then simply formed by drop-coating the mixture onto solid conducting substrate. By using the as-formed BMF, electrochemical biosensors could be constructed with a technical simplicity and high reproducibility. To illustrate the BMF-based biosensors for in-vivo applications, we directly couple the biosensors to in vivo microdialysis to establish an online electrochemical system (OECS) for in vivo monitoring of glucose in rat auditory cortex during salicylate-induced tinnitus model. The OECS with the BMF-based biosensor as the detector shows a linear response toward glucose within a concentration range from 50 to 500 mu M with a detection limit of 10 mu M (S/N = 3). Additionally, the OECS is stable and does not suffer from the interference from the electroactive species endogenously coexisting in the brain microdialysate. With the BMF-based OECS, the basal level of glucose in the microdialysate continuously sampled from rat auditory cortex is determined to be 120 +/- 10 mu M (n = 5). After the rats were administrated with salicylate to induce transient tinnitus, the microdialysate glucose concentration in the rat auditory cortex remarkably increased to 433 +/- 190 mu M (n = 5) at the time point of 1.5 h. This study essentially offers a new, technically simple and reproducible approach to development of in vivo electrochemical biosensors, which is envisaged to be relatively useful for understanding of the molecular basis of brain functions.
在日本埼玉工业大学获得博士学位,在日本东京工业大学从事产学官连携研究员(博士后)研究2年,现就职于大连理工大学 化学学院 硕士生指导教师,副教授。