A sensitive electrochemical sensor for in vitro detection of parathyroid hormone based on a MoS2-graphene composite

被引:0
作者
Hyeong-U Kim
Hye Youn Kim
Atul Kulkarni
Chisung Ahn
Yinhua Jin
Yeongseok Kim
Kook-Nyung Lee
Min-Ho Lee
Taesung Kim
机构
[1] SKKU Advanced Institute of Nano Technology (SAINT),
[2] Sungkyunkwan University,undefined
[3] Korea Electronics Technology Institute,undefined
[4] Mechanical Engineering,undefined
[5] Sungkyunkwan University,undefined
来源
Scientific Reports | / 6卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
This paper reports a biosensor based on a MoS2-graphene (MG) composite that can measure the parathyroid hormone (PTH) concentration in serum samples from patients. The interaction between PTH and MG was analysed via an electrochemical sensing technique. The MG was functionalized using l-cysteine. Following this, PTH could be covalently immobilized on the MG sensing electrode. The properties of MG were evaluated using scanning electron microscopy, high-resolution transmission electron microscopy, X-ray diffraction, Raman spectroscopy, X-ray photoelectron spectroscopy, and Fourier transform infrared spectrometry. Following optimization of immobilized materials—such as MG, PTH, and alkaline phosphatase (ALP)—the performance of the MG sensor was investigated via cyclic voltammetry, to assess its linearity, repeatability, and reproducibility. Electrochemical impedance spectroscopy was performed on graphene oxide (GO) and MG-modified electrodes to confirm the capture of a monoclonal antibody (MAb) targeting PTH. Furthermore, the ALP-PTH-MG sensor exhibits a linear response towards PTH from artificial serum over a range of 1–50 pg mL−1. Moreover, patient sera (n = 30) were evaluated using the ALP-PTH-MG sensor and compared using standard equipment (Roche E 170). The P-value is less than 0.01 when evaluated with a t-test using Welch’s correction. This implies that the fabricated sensor can be deployed for medical diagnosis.
引用
收藏
相关论文
共 93 条
[1]  
Zeng Q(2010)Self‐Assembled Graphene–Enzyme Hierarchical Nanostructures for Electrochemical Biosensing Adv. Funct. Mater. 20 3366-3372
[2]  
Lin X(2012)Voltammetric analysis with the use of a novel electro-polymerised graphene-nafion film modified glassy carbon electrode: Simultaneous analysis of noxious nitroaniline isomers J. Hazard. Mater. 243 232-241
[3]  
Ni Y(2011)Graphene nanosheet: synthesis, molecular engineering, thin film, hybrids, and energy and analytical applications Chem. Soc. Rev. 40 2644-2672
[4]  
Kokot S(2009)Direct electrochemistry of glucose oxidase and biosensing for glucose based on graphene Anal. Chem. 81 2378-2382
[5]  
Guo S(2013)Direct growth of flower-like manganese oxide on reduced graphene oxide towards efficient oxygen reduction reaction Chem. Commun. 49 6334-6336
[6]  
Dong S(2013)S Adv. Mater. 25 3307-3312
[7]  
Shan C(2013)O Electrochim. Acta 88 847-857
[8]  
Zhang J(2016)/Graphene Composites with Self‐Assembled Alternating Oxide and Amine Layers for High Li‐Storage and Excellent Stability Nano 11 1650045-8139
[9]  
Guo C(2010)Fast lithium-ion insertion of TiO Chemistry-A European Journal 16 8133-1474
[10]  
Zhang L(2015) nanotube and graphene composites Chem. Commun. 51 1472-420