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1.
糖蛋白-凝集素自组装构筑有序膜及在酶电极的应用   总被引:2,自引:0,他引:2  
利用糖蛋白-凝集素的识别作用交替沉积伴刀豆球蛋白(Con A)与辣根过氧化物酶(HRP)制备酶自组装多层膜,用原子力显微镜(AFM)观测了自组装膜的表面形貌、表面粗糙度; AFM和椭圆偏振研究测定了自组装膜的厚度.结果表明, Con A和HRP膜厚分别为9.0和4.6 nm,与两者的晶体衍射结果一致,说明生物识别自组装方法能很好地保持分子的原有形态.以亚甲蓝(MB)溶液为介体,用循环伏安法测定了表面修饰了三层(Con A/HRP)自组装膜的金电极对H2O2的电化学催化还原作用,在H2O2浓度为0.2~1.0 mmol•L-1时,响应电流对H2O2浓度变化成线性,酶电极灵敏度为24.0 mA•mol-1•L,表观米氏常数为4.2 mmol•L-1.  相似文献   

2.
将电聚合和层层组装方法有效结合构筑了聚硫堇(PTH)电子介体修饰的碳纳米管(CNTs)/辣根过氧化物酶(HRP)多层膜无试剂H2O2传感器.利用电化学阻抗谱对CNTs/HRP多层膜的组装过程进行监测,用循环伏安法和计时电流法研究了该HRP电极的电化学行为.探讨了酶组装层数、工作电位、pH值和碳纳米管对电极响应的影响.该...  相似文献   

3.
利用静电自组装技术在阴离子化的PET表面组装了单分子层的HRP酶膜,通过AFM对膜表面形貌进行了分析.由于HRP的沉积,PET薄膜在组装HRP前后,表面形貌发生了较大的变化,表面粗糙度(Rms)由0.645 nh增加到2.580 nm,表面酶颗粒高度为3.3 nm,与HRP的XRD数据(4.028 nm×6.746 nm×11.711)基本相符.制备的酶自组装膜在4℃的低温条件下密封保存.该酶膜在最初的一个星期内酶活性下降较快,之后酶活性则基本保持不变,150天后仍能保持最初时的80%以上的活性;而在常温下,酶膜很快失去活性.表明自组装HRP/PET酶膜在低温下具有很好的保存稳定性.以微量比色皿为反应容器,考察了酶膜与H2O2的显色反应动力学,该反应的表观米氏常数Kapp m=3.2×10-5 mol/L(相对于H2O2底物),显色反应在5 min内完成.在所考查的H2O2浓度浓度区间内(8.8×10-6~8.8×10-5mol/L),酶膜所催化的显色反应产物的吸光度与其浓度之间存在良好的线性关系,对样品中H2O2测定的回收率为96.5%~101.1%.  相似文献   

4.
以阳离子化的辣根过氧化物酶 (HRP)和阴离子聚苯乙烯磺酸钠 (PSS)的预混合溶液 ,与阳离子聚电解质聚二甲基二烯丙基氯化铵 (PDDA)通过逐层组装 ,在阴离子化聚对苯二酸乙二酯 (PET)表面构建了多层生物活性膜 .用紫外 可见光谱仪 (UV Vis)和原子力显微镜 (AFM)研究了交替自组装膜的结构和表面形膜 ,并测定了自组装膜的生物催化活性 .结果表明 ,预混合溶液中的PSS与HRP一起沉积在PDDA膜层上组装成 (PSS+HRP)膜层 ,且每层中PSS和HRP的比例一致 ;(PSS +HRP)膜层呈条状分布 ,膜表面较为平整 ;多层膜中的HRP催化H2 O2 与 4 氨基安替比林的显色反应的表观米氏常数为 9 7× 10 - 5mol·L- 1 (相对于H2 O2 底物 ) ,较溶液中 (1 5 2× 10 - 4mol·L- 1 )的小 .  相似文献   

5.
将辣根过氧化物酶(HRP)固定在室温离子液体(RTIL)/聚二茂铁硅烷(PFS)/DNA复合材料修饰的玻碳电极(GCE)表面,构建了GCE/DNA/PFS/RTIL/HRP修饰电极,详细地研究了该修饰电极的电催化行为,优化了电解质溶液的pH值和RTIL的体积对催化过氧化氢(H2O2)的影响。 电化学实验结果表明,DNA、PFS和RTIL复合膜既为HRP提供了一个生物兼容的微环境;又有效地促进了电子在HRP和电极表面之间的传递。 在最优实验条件下,该修饰电极对H2O2具有快速的催化响应,在2 s内即可达到稳态电流的95%,其响应在3.25 μmol/L~1.47 mmol/L(r=0.999,n=10)和1.86~5.35 mmol/L(r=0.996,n=12)范围内呈良好的线性关系,检出限为0.86 μmol/L。 该传感器灵敏度高、重现性和稳定性好。 此外,该修饰电极还能催化O2还原。  相似文献   

6.
通过非共价键修饰方法制备了兼具良好生物相容性和导电性的磷脂1-棕榈酰-2-油酰甘油-3-磷酸钠-石墨烯(POPG-GP)纳米复合物,并利用TEM,FT-IR,UV-vis,zeta电位等对其形貌和结构进行了表征.由于POPG-GP纳米复合材料在水溶液中呈现出较为明显的负电性,因此,可通过静电自组装方法将辣根过氧化物酶(HRP)进一步组装到POPG-GP修饰的玻碳(POPG-GP/GC)电极上,构筑HRP/POPG-GP/GC修饰电极.电化学实验结果表明,POPG-GP纳米复合物能够有效实现HRP与修饰电极之间的直接电子转移.此外,固载在修饰电极表面的HRP对底物H2O2还表现出良好的电催化活性.HRP/POPG-GP/GC修饰电极对H2O2的检测线性范围为3.5~210μmol/L,最低检出限为1.17μmol/L(S/N=3),灵敏度为356.6 mA?cm-2?M-1,Km值为0.45 mmol/L.  相似文献   

7.
HRP/PET自组装酶膜及其在光度分析中的应用   总被引:2,自引:1,他引:1  
利用静电自组装技术在阴离子化的PET表面组装了单分子层的HRP酶膜 ,通过AFM对膜表面形貌进行了分析。制备的酶自组装膜在4℃的低温条件下 ,密封保存150d后 ,酶活性仍保留80 %以上。以微量比色皿为反应容器 ,考察了酶膜与H2O2 的显色反应动力学 ,该反应的表观米氏常数 Kmapp=3.2×10-5mol·L-1(相对于H2O2 底物) ,显色反应在5min内完成 ,对样品中H2O2 测定的回收率为96.5%~101.1 %。  相似文献   

8.
结合功能化溶胶-凝胶(sol-gel)网络结构、自组装技术和纳米粒子效应,提出一种生物传感界面构建方法.利用自组装技术在玻碳电极表面组装氨基化sol-gel膜,通过与自组装膜间的强烈作用将纳米金粒子固定于sol-gel网络中,再通过静电吸附作用实现辣根过氧化物酶(HRP)在纳米金粒子表面的固定化,构建纳米自组装HRP传感界面.将制备的传感器用于对H2O2的催化还原,很好地保持了酶的生物活性,改善了传感器的灵敏度.  相似文献   

9.
将纳米金吸附辣根过氧化物酶(HRP)固定在多壁碳纳米管(MWNT)修饰的铂(Pt)电极上,利用MWNT对HRP的直接电化学催化特性及纳米金对蛋白质的强吸附能力制备了第3代H2O2生物传感器。实验结果表明,HRP在MWNT/Pt电极表面能进行有效和稳定的直接电子转移,HRP保持了其对H2O2还原的生物电催化活性,而且能快速(3S)地响应H2O2浓度的变化。HRP在修饰电极上的表观吸附量(Tr)为7.3×10^-10mol/cm^2,异相电子转移常数(Ks)为1.23s^-1。该传感器在-300mV时对H2O2响应的线性范瑚为1×10^-5~1×10^-3 mol/L(r=0.9968,n=4)。  相似文献   

10.
李扬眉  王娜  林贤福 《分析试验室》2003,22(Z1):342-342
辣根过氧化物酶(HRP)能催化过氧化氢与氢供体间的氧化还原反应,是当今生物传感器研究的热点之一.HRP分子内含有α-D-葡萄糖和α-D-甘露糖,是一种糖蛋白,在pH 7.0下,能与具有识别α-D-葡萄糖和α-D-甘露糖功能的外源植物凝集素伴刀豆球蛋白(Con A)结合.通过Con A与HRP之间的识别作用在半胱氨酸修饰的金表面构造HRP多层自组装膜电极,以亚甲蓝(MB)溶液为介体,对电极进行了电化学表征,并用该酶电极测定了过氧化氢浓度.  相似文献   

11.
基于分子间静电相互作用力,将锇-聚乙烯吡啶复合物(PVP-Os)与辣根过氧化物酶(HRP)交替沉积于固体基质表面,制得了包含生物成分的分子多层膜.膜层间的聚合物分子起到了粘接与导电的双重作用.用紫外-可见光谱法跟踪了石英基片上的组装过程,研究了多层膜电极对过氧化氢的电催化还原性能,并描述了多层膜电化学行为.  相似文献   

12.
过氧化氢作为一种重要的化工产品在纺织行业、化工行业、造纸工业、环保行业、电子行业、食品卫生行业及其他领域得到广泛的应用~([1]).  相似文献   

13.
《中国化学会会志》2018,65(9):1127-1135
In this paper, a WS2 nanosheet was modified on the surface of a carbon ionic liquid electrode (CILE), and horseradish peroxidase (HRP) was further fixed on the electrode with a Nafion film. Direct electrochemistry and bioelectrocatalysis of HRP incorporated on the modified electrode were investigated in detail. On Nafion/HRP/WS2/CILE, a pair of well‐defined quasi‐reversible redox peaks appeared on the cyclic voltammogram, indicating that the presence of the WS2 nanosheet on the electrode surface could provide a specific interface with large surface area for HRP and its direct electron transfer rate was greatly enhanced. The formal potential (E0) obtained was –0.179 V, which was the typical feature of heme Fe(III)/Fe(II) in HRP. The electron transfer coefficient (α) and the heterogeneous electron transfer rate constant (ks) of HRP were calculated as 0.44 and 1.01 s–1, respectively. This HRP‐modified electrode showed excellent electrocatalytic activity for the reduction of trichloroacetic acid and NaNO2 with a wide linear range and low detection limit. Real samples were detected by this proposed method, indicating the successful fabrication of a new third‐generation electrochemical enzyme sensor utilizing the WS2 nanosheet.  相似文献   

14.
Amperometric hydrogen peroxide biosensors were fabricated by incorporating horseradish peroxidase (HRP) into poly[pyrrole-co-[4-(3-pyrrolyl)butanesulfonate]] (Py-PS) copolymer films deposited on an SnO2 electrode surface by electropolymerization. The HRP/Py-PS electrodes exhibited an extended dynamic range and a markedly improved operational and storage stability, compared with HRP-incorporated polypyrrole (PPy) electrodes prepared under similar conditions. The linear range was expanded from 10(-7)-10(-4) M to 10(-7)-10(-3) M H2O2. In about 80 measurements over three weeks, the HRP/Py-PS electrode retained 60% of its initial response, while the HRP/PPy electrode almost completely lost activity. The influence of the electrodeposition solution pH on the sensor response was also investigated. Our results suggest that an expansion of the linear range and an enhancement of lifetime are due to electrostatic interactions of HRP with a negatively-charged Py-PS copolymer.  相似文献   

15.
Direct electrochemistry and electrocatalysis of horseradish peroxidase(HRP) were achieved by entrapping the enzyme between CaCO3 microspheres and gold nanoparticles through forming sandwich configuration (CaCO3-HRP-AuNPs). Polyanion, poly(styrene sulfonate)(PSS), was hybrid with CaCO3 microspheres to increase the surface negative charges for binding with HRP through electrostatic interaction. After the bioconjugate CaCO3 PSS-HRP was entrapped in chitosan based sol-gel(CS-GPTMS) film, HRP was encapsulated by in situ formation of an outer layer of AuNPs through electrochemical reduction of HAuCl4. The composite film containing AuNPs, CaCO3-PSS-HRP bioconjugates and CS-GPTMS can provide favorable microenvironment for HRP to perform direct electron transfer at glassy carbon electrode(GCE). HRP retained its bioelectrocatalytic activity and lead to sensitive and fast amperometric response for the determination of H2O2. H2O2 could be detected in a very wide linear range from 5.0×10–6 mol/L to 7.1×10–2 mol/L. The sandwich configuration of CaCO3-biomolecules-AuNPs could serve as a versatile platform for enzyme immobilization and biosensing.  相似文献   

16.
Stable films made from ionomer poly(ester sulfonic acid) or Eastman AQ29 on pyrolytic graphite (PG) electrodes gave direct electrochemistry for incorporated enzyme horseradish peroxidase (HRP). Cyclic voltammetry of HRP-AQ films showed a pair of well-defined, nearly reversible peaks at about -0.33 V vs. SCE at pH 7.0 in blank buffers, characteristic of HRP heme Fe(III)/Fe(II) redox couple. The electron transfer between HRP and PG electrode was greatly facilitated in AQ films. The electrochemical parameters such as apparent heterogeneous electron transfer rate constant (k(s)) and formal potential (E(o')) were estimated by fitting the data of square-wave voltammetry (SWV) with nonlinear regression analysis. Reflectance absorption infrared (RAIR) and UV-Vis absorption spectra demonstrated that HRP retained a near native conformation in AQ films. The embedded HRP in AQ films retained the electrocatalytic activity for oxygen, nitrite and hydrogen peroxide. Possible mechanism of catalytic reduction of H(2)O(2) with HRP-AQ films was proposed.  相似文献   

17.
《Analytical letters》2012,45(17):3182-3194
Abstract

It is the first time that Horseradish peroxidase (HRP) was successively immobilized on the magnetic cobalt nanoparticles modified ITO (indium tin oxide) electrode. Morphologies of electrode surface were featured by the field emission‐scanning electron microscope (FSEM). Cyclic voltammetry (CV) and electrochemical impedance spectroscopy (EIS) were used to characterize the modified process of electrode. Direct electrochemistry and electrocatalysis of HRP immobilized on nano‐Co/ITO were investigated. The biosensor exhibited high sensitivity, good stability, and excellent electrocatalytic activity to the reduction of H2O2. Under the optimized experimental conditions, a calibration curve over 2.0×10?9~2.0×10?8 mol l?1 and 2.0×10?7~2.0×10?6 mol l?1, with a limit of detection of 1.9×10?9 mol l?1 was obtained. The apparent Michaelis‐Menten constant (K M app ) for HRP/nano‐Co/ITO electrode was calculated to be 0.79 mmol l?1, indicating a higher affinity of HRP attached on the modified electrode.  相似文献   

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