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1.
制备了石墨烯修饰玻碳电极,研究了酪氨酸在修饰电极上的电化学行为.优化了包括支持电解质、溶液pH、修饰剂用量、富集电位及时间等测定条件.在0.1 mol·L-1pH 7.0的磷酸盐缓冲溶液中,峰电流与酪氨酸的浓度在3×10-6~1.2×10-4mol·L-1的范围内呈良好的线性关系,检出限为2 × 10-7 mol·L-...  相似文献   

2.
将1.08mg富勒烯(C60)分散在10mL二氯甲烷中,取40μL悬浮液滴涂在玻碳电极表面,吹干后在1mol·L-1氢氧化钾溶液中进行活化,制得C60修饰电极。用循环伏安法研究了修饰电极的电化学行为。结果表明:经氢氧化钾处理后的修饰电极,在5mmol·L-1铁氰化钾溶液中,可见一对准可逆的氧化还原峰,且峰电流显著高于在裸玻碳电极和未处理电极上的峰电流。据此提出了用微分脉冲伏安法测定盐酸克伦特罗的方法。盐酸克伦特罗的浓度在0.1~20μmol·L-1范围内与其氧化峰电流呈线性关系,检出限(3S/N)为3.26×10-2μmol·L-1。方法用于尿样分析,回收率在99.5%~110%之间。  相似文献   

3.
制备了纳米金修饰碳糊电极,使用循环伏安法(CV)研究了甲氨蝶呤(MTX)在该修饰电极上的电化学特性,并建立了纳米金修饰碳糊电极电化学测定MTX的新方法.利用线性扫描伏安法(LSV)和方波伏安法(SWV)研究了MTX与鲱鱼精DNA的相互作用.实验发现,在pH 3.6 HAc-NaAc缓冲溶液中,MTX在0.86 V处有一灵敏的氧化峰,氧化峰电流Ipa与MTX的浓度在0.5 ~10.0 μmol·L-1范围内呈良好的线性关系,方法检出限(S/N=3)为0.2μmol·L-1.对3.0 μmol·L-1的MTX进行11次平行测定,其RSD为4.7%.该修饰电极可用于MTX样品的测定,结果满意.当不同浓度鲱鱼精DNA加入MTX溶液后,氧化峰电位正移,氧化峰电流降低,表明MTX与鲱鱼精DNA之间发生了相互作用,形成了非电活性化合物.电化学研究表明,MTX与鲱鱼精DNA之间的结合比为2∶1,结合常数为4.6×105 L·mol-1.  相似文献   

4.
陈灿辉  李红  朱伟  张全新 《物理化学学报》2005,21(10):1067-1072
在Tris-NaCl(pH=7.2)缓冲溶液中, 应用循环伏安法、微分脉冲伏安法、旋转圆盘电极实验、电化学阻抗谱等技术研究了二茂铁在旋转碳纳米管(CNT)修饰电极上的电化学行为及其与小牛胸腺DNA的相互作用. 结果表明, 二茂铁及其与双链DNA的电活性产物在静止的CNT修饰电极上均呈现一对基本可逆的氧化还原峰;在旋转电极上呈现出明显的极限扩散电流, 电化学阻抗谱呈现一个压扁的半圆. 二茂铁与DNA的作用在扩散控制过程中表现为峰电流和极限扩散电流随DNA浓度增大而减小;电化学控制过程则表现为电化学反应电阻随DNA浓度增大而增大, 条件电位下的速度常数也有一定程度的减小.  相似文献   

5.
本研究以二茂铁修饰的发卡型探针DNA(HP)作为内参比探针分子,恒电位法在玻碳电极上沉积金颗粒作为工作电极,含有亚甲基蓝修饰的辅助团(AS)用于信号放大,据此建立了一种比例型检测恙虫病DNA的电化学方法。测试结果表明,该方法具有较好的选择性和检出限,线性范围达到0.1 fM~1.0μM,AS氧化峰电流I_(MB)与HP的峰电流I_(Fc)的比值与恙虫病DNA浓度呈较好的线性关系。  相似文献   

6.
玻碳电极在含有2.0 mmol·L-1间氨基苯酚的0.1 mol·L-1的三水合高氯酸锂溶液中,于0~1.5 V的电位范围内进行电化学修饰,制备了间氨基苯酚修饰电极(m-AP/GCE).研究发现:间氨基苯酚修饰电极对多巴胺有良好的电催化作用,多巴胺在该电极上出现了一对氧化还原峰,相对于裸玻碳电极,氧化还原峰电位差为减至70 mV,提出了用循环伏安法测定多巴胺的方法.氧化峰电流与多巴胺的浓度在1.2×10-7~9.1×10-6和9.1×10-6~1.2×10-4mol·L-1范围内呈线生关系,检出限(3S/N)为3.2×10-8mol·L-1.  相似文献   

7.
首先在非水介质中通过电化学氧化将L-酪氨酸以C-N键共价键合在玻碳电极表面,形成L-酪氨酸接枝单层膜.再在L-酪氨酸功能化的玻碳电极上对邻苯二胺进行电化学聚合,从而制备了聚邻苯二胺/L-酪氨酸复合膜修饰玻碳电极(聚-o-PD-Tyr/GCE).研究发现聚-o-PD-Tyr/GCE在pH 6.8的磷酸缓冲溶液(PBS)中对抗坏血酸的电化学氧化具有催化作用,其氧化电位为0.35 V,比在裸玻碳电极上(0.58 V)降低了0.23 V,峰电流也明显升高.抗坏血酸在修饰电极上响应电流与其浓度在2.5×10-4~1.5×10-3mol·L-1范围内呈线性关系,检出限(3s/k)为43.64μmol·L-1.经修饰的电极保存在0.1 mol·L-1PBS中,可至少稳定5d.对5×10-4mol·L-1抗坏血酸溶液连续测定10次,测得此电极的相对标准偏差为3.2%.  相似文献   

8.
功能化纳米金增强的DNA电化学检测和序列分析   总被引:6,自引:0,他引:6  
李金花  胡劲波 《化学学报》2004,62(20):2081-2088,F010
用冠以大量二茂铁的纳米金微粒 /抗生蛋白链菌素结合物为标记物 ,将其标记于生物素修饰的寡聚核苷酸片段上 ,制成了具有电化学活性和纳米金放大作用的DNA电化学生物传感器 .首先采用巯基DNA和巯基烷烃混合自组装膜制备了金修饰电极 ,将探针DNA分子固定在了电极表面 ,运用杂交原则结合靶点分子在电极表面形成了双螺旋的DNA链 ,然后借助抗生蛋白链菌素和生物素之间的强亲和作用 ,引入了功能化的纳米金 .通过伏安法测定了修饰在纳米金上的二茂铁的氧化还原电流 ,可以识别和测定溶液中互补的靶点DNA ,17 mer靶点DNA的浓度在 0 .0 0 1~ 10nmol/L范围内有线性关系 ,检测限可达 0 .75× 10 -12 mol/L .  相似文献   

9.
陈灿辉  李红  周剑章 《化学通报》2006,69(8):582-585,590
在研究碳纳米管电极上二茂铁电化学性质的基础上,应用二茂铁修饰电极和DNA修饰电极研究了二茂铁与小牛胸腺DNA的相互作用。结果表明,修饰电极上的二茂铁都呈现一对明显的氧化还原峰,二茂铁修饰电极与DNA的作用表现为氧化还原峰电流减小,与溶液中的两者作用情况类似,而DNA修饰电极与二茂铁的作用则表现为氧化还原峰电流增大。扫描电镜结果也证实了两种修饰电极上的二茂铁与DNA间的作用。此外,还讨论了二茂铁与DNA间的作用模式。  相似文献   

10.
将玻碳电极(GCE)置于0.01 mol·L-1甘氨酸的[Bmin]PF6离子液体溶液中,于0~2.0 V电位间以50 mV·s-1扫描速率进行循环伏安扫描10圈,从而制成通过C-N共价键结合的甘氨酸修饰玻碳电极(Gly/GCE)。将此修饰电极置于0.1 mol·L-1氯化镍溶液中浸泡6 h,镍(Ⅱ)就吸附于甘氨酸修饰层上,制成了吸附着镍(Ⅱ)的Gly/GCE,记作Ni(Ⅱ)-Gly/GCE。此电极在0.1 mol·L-1氢氧化钠溶液中由于Ni2+/Ni3+电对的媒介作用对葡萄糖产生无酶催化氧化反应,导致在+0.55 V(vs.SCE)处氧化峰电流明显增高,电流响应值与葡萄糖浓度在1×10-6~2×10-3mol·L-1范围内呈线性关系,其检出限(3S/N)为3×10-7mol·L-1。据此,提出了测定葡萄糖的计时电流法,并应用于血清样品中葡萄糖的测定,所得结果与用Dimension RXL-MAX自动化分析仪的测定结果相符。  相似文献   

11.
We describe a supersandwich type of electrochemical DNA biosensor based on the use of a glassy carbon electrode (GCE) modified with reduced graphene oxide (rGO) sheets that are decorated with gold nanoparticles (Au NPs). Thiolated capture DNA (probe DNA) was covalently linked to the Au NPs on the surface of the modified GCE via formation of Au-S bonds. In presence of target DNA, its 3′ terminus hybridizes with capture probe and the 5′ terminus hybridizes with signal probe labeled with Methylene Blue (MB). On increasing the concentration of target DNA, hybridization between signal probe and target DNA results in the formation of three different DNA sequences that form a supersandwich structure. The signal intensity of MB improves distinctly with increasing concentrations of target DNA in the sample solution. The assembling process on the surface of the electrode was studied by scanning electron microscopy (SEM) and electrochemical impedance spectroscopy (EIS). Differential pulse voltammetry (DPV) was used to monitor the hybridization event by measuring the changes in the peak current for MB. Under optimal conditions, the peak currents in DPV for MB linearly increase with the logarithm of target DNA concentration in the range from 0.1 μM to1.0 fM, with a detection limit of 0.35 fM (at an signal/noise ratio of 3). This biosensor exhibits good selectivity, even over single-base mismatched target DNA.
Figure
We designed a sensitive supersandwich electrochemical DNA biosensor based on rGO sheets decorated with Au NPs. SEM and electrochemical methods were employed to investigate the assembly process of the biosensor. The biosensor exhibits high sensitivity and good specificity.  相似文献   

12.
A label-free electrochemical DNA biosensor was developed through the attachment of polystyrene-g-soya oil-g-imidazole graft copolymer (PS-PSyIm) onto modified graphene oxide (GO) electrodeposited on glassy carbon electrode (GC). GC/GO electrode was initially functionalised via electrochemical reduction of 4-nitrobenzene diazonium salt, followed by the electrochemical reduction of NO2 to NH2. Subsequent to the electrochemical deposition of gold nanoparticles on modified surface, the attachment of the PS-PSyIm graft copolymer on the resulting electrode was achieved. The interaction of PS-PSyIm with DNA at the bare glassy carbon electrode was studied by cyclic voltammetry technique, and it was found that interaction predominantly takes place through intercalation mode. The selectivity of developed DNA biosensor was also explored by DPV on the basis of considering hybridisation event with non-complementary, one-base mismatched DNA and complementary target DNA sequence. Large decrease in the peak current was found upon the addition of complementary target DNA. The sensitivity of the developed DNA biosensor was also investigated, and detection limit was found to be 1.20 nmol L?1.  相似文献   

13.
We describe the fabrication of a sensitive label-free electrochemical biosensor for the determination of sequence-specific target DNA. It is based on a glassy carbon electrode (GCE) modified with graphene, gold nanoparticles (Au-NPs), and polythionine (pThion). Thionine was firstly electropolymerized on the surface of the GCE that was modified with graphene by cyclic voltammetry. The Au-NPs were subsequently deposited on the surface of the pThion/graphene composite film by adsorption. Scanning electron microscopy and electrochemical methods were used to investigate the assembly process. Differential pulse voltammetry was employed to monitor the hybridization of DNA by measuring the changes in the peak current of pThion. Under optimal conditions, the decline of the peak current is linearly related to the logarithm of the concentration of the target DNA in the range from 0.1 pM to 10 nM, with a detection limit of 35 fM (at an S/N of 3). The biosensor exhibits good selectivity, acceptable stability and reproducibility.
Figure
A label-free DNA biosensor based on Au-NPs/pThion/graphene modified electrode has been fabricated. Differential pulse voltammetry (DPV) was employed to monitor DNA hybridization event by measurement of the peak current changes of pThion.  相似文献   

14.
In this work, a sensitive electrochemical DNA biosensor for the detection of sequence‐specific target DNA was reported. Firstly, CuO nanospindles (CuO NS) were immobilized on the surface of a glassy carbon electrode (GCE). Subsequently, gold nanoparticles (Au NPs) were introduced to the surface of CuO NS by the electrochemical deposition mode. Probe DNA with SH (HS‐DNA) at the 5′‐phosphate end was covalently immobilized on the surface of the Au NPs through Au? S bond. Scanning electron microscopy (SEM) was used to elucidate the morphology of the assembled film, and electrochemical impedance spectroscopy technique (EIS) was used to investigate the DNA sensor assembly process. Hybridization detection of DNA was performed with differential pulse voltammetry (DPV) and the methylene blue (MB) was hybridization indicator. Under the optimal conditions, the decline of reduction peak current of MB (ΔI) was linear with the logarithm of the concentration of complementary DNA from 1.0×10?13 to 1.0×10?6 mol·L?1 with a detection limit of 3.5×10?14 mol·L?1 (S/N=3). In addition, this DNA biosensor has good selectivity, and even can distinguish single‐mismatched target DNA.  相似文献   

15.
An effective procedure for constructing a DNA biosensor is developed based on covalent immobilization of NH_2 labeled,single strand DNA(NH_2-ssDNA) onto a self-assembled diazo-thiourea and gold nanoparticles modified Au electrode(diazo-thiourea/GNM/Au).Gold nano-particles expand the electrode surface area and increase the amount of immobilized thiourea and single stranded DNA(ssDNA) onto the electrode surface.Diazo-thiourea film provides a surface with high conductibility for electron transfer and a bed for the covalent coupling of NH_2-ssDNA onto the electrode surface.The immobilization and hybridization of the probe DNA on the modified electrode is studied by differential pulse voltammetry(DPV) using methylene blue(MB) as a well-known electrochemical hybridization indicator.The linear range for the determination of complementary target ssDNA is from 9.5(±0.1) × 10~(-13) mol/L to1.2(±0.2) x 10~(-9) mol/L with a detection limit of 1.2(±0.1) 10~(-13) mol/L.  相似文献   

16.
Glutathione (GSH), a common tripeptide, plays an essential role in a variety of cellular functions. GSH level is reported to be closely related to human health. In this study, we fabricate an ultrasensitive electrochemical biosensor for GSH quantification. DNA probes are firstly modified on the electrode surface and thymine-Hg2+-thymine is formed. Since GSH is able to chelate Hg2+ from the DNA mismatched sites effectively, which leads to DNA structural switching from hairpin to linear strand, rolling circle amplification (RCA) could be initiated with the released linear primer probe. The RCA product with multiple repeating sequences further captures numerous DNA modified silver nanoparticles (AgNPs) by the hybridization of complementary sequences. Stripping voltammetric responses of AgNPs are then detected to reveal GSH concentration. The linear detection range is from 0.1 pM to 10 nM and the limit of detection is 0.1 pM, which is lower than most current analytical methods. This method is also highly selective and functions well against a series of interferents. Additionally, the proposed method has been successfully utilized in human serum samples, which shows fairly good potential in clinical applications.  相似文献   

17.
《Electroanalysis》2018,30(8):1659-1668
PAMAM dendrimer/reduced graphene oxide nanocomposite modified pencil graphite electrode (PAMAM/RGO/PGE) was used to fabricate an electrochemical DNA biosensor for determination of Rituxan (RTX) at low concentrations, for the first time. The fabricated biosensor was characterized with FE‐SEM, EIS, and CV techniques. The ds‐DNA/PAMAM/RGO/PGE was used as a working electrode to study the interaction between the RTX and salmon sperm ds‐DNA by DPV technique. Because of the interaction between the drug and DNA leads to a decrease in the guanine oxidation peak current, it was used as an indicator for the determination of the RTX. Under the optimized experimental conditions, a wide linear relationship between RTX concentration and guanine signal was obtained within the range of 7.0 to 60.0 μmol L−1 and 60.0 to 300.0 μmol L−1 with a low detection limit (0.56 μmol L−1). To clarify the interaction mechanism between the RTX and the ds‐DNA, DPV and UV‐Vis measurements were used. The reproducibility, stability, and performance of the constructed biosensor was examined by quantitative measuring RTX in pharmaceutical and human serum samples with good precision (RSD; 2.0–6.0 %) and acceptable recoveries (100.04–101.95 %).  相似文献   

18.
A novel electrochemical DNA biosensor based on methylene blue (MB) and chitosan-modified carbon paste electrode (CCPE) for short DNA sequences and polymerase chain reaction (PCR) amplified real samples related to the hepatitis B virus (HBV) hybridization detection is presented. Differential pulse voltammetry (DPV) was used to investigate the surface coverage and hybridization event. The decrease in the peak current of MB, an electroactive label, was observed upon hybridization of probe with the target. Numerous factors affecting the target hybridization and indicator binding reaction are optimized to maximize the sensitivity.  相似文献   

19.
该文以特殊设计的DNA序列为捕获探针,以G-四链体-血红素复合物作为信号分子,利用链式反应实现目标DNA的灵敏检测。在目标DNA存在时,捕获探针与目标DNA相互识别,同时目标DNA能与辅助探针发生连续的链式反应,从而在电极表面引入大量G-四链体结构。血红素存在下,G-四链体可与血红素结合形成具有很强电化学信号的G-四链体-血红素复合物。用差分脉冲伏安法(DPV)扫描得到的电化学信号与体系中的目标DNA浓度存在对应关系,从而实现对目标DNA的检测。在各组分浓度最适的情况下,电流响应值与目标DNA浓度在0.01~10 pmol/L内具有良好的线性关系,检出限可达8 fmol/L。该传感器灵敏度高、特异性好,具有良好的应用前景。  相似文献   

20.
《Electroanalysis》2018,30(5):910-920
A label‐free DNA biosensor based on magnetite/multiwalled carbon nanotubes/chitosan (Fe3O4/MWCNTs‐COOH/CS) nanomaterial for detection of Bacillus cereus DNA sequences was fabricated. Negatively charged DNA was electrostatically adsorbed onto materials by protonation of positively charged chitosan under acidic conditions. The electrode surface and hybridization process were carried out by cyclic voltammetry (CV), differential pulse voltammetry (DPV), and electrochemical impedance spectroscopy (EIS). Under optimal conditions, the biosensor showed a good linear relationship between peak currents difference (ΔI) and logarithm of the target DNA concentration (Log C) ranging from 2.0×10−13 to 2.0×10−6 M with a detection limit of 2.0×10−15 M (signal/noise ratio of 3). The biosensor also revealed an excellent selectivity to three‐base, completely mismatched and completely matched DNA. This is a simple, fast and friendly method with a low detection limit for the detection of Bacillus cereus specific DNA compared with previously reported electrochemical DNA biosensor. Furthermore, the DNA biosensor may lead to the development of a technology for gold prospecting in the wild.  相似文献   

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