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1.
将具有荧光特性的杂环8-氨基喹啉和吡啶类试剂结合,并引入三氮烯结构,合成了新型荧光试剂1-(8-喹啉)-3-(3,5-二溴-2-吡啶)-三氮烯(QBPyT)。其结构经元素分析、红外光谱、核磁共振波谱证实。研究结果表明,在pH 9.5硼酸-氢氧化钠缓冲溶液的介质存在下,该试剂在λex/λem=248nm/496nm处产生强荧光,并且能与铅(Ⅱ)形成配合物从而使荧光增强。据此建立了三氮烯测定铅(Ⅱ)的新型荧光分析法。铅的浓度在5.0×10-7~1.2×10-5 mol.L范围内与其荧光强度呈线性关系,检出限(3S/N)为9.5×10-8 mol.L。将其应用于水样中铅(Ⅱ)的测定,测得回收率在92.6%~94.0%之间,测定值的相对标准偏差(n=5)小于3.5%。  相似文献   

2.
魏薇  王洪鉴  江崇球  石敬民 《分析化学》2007,35(12):1772-1775
合成了一种新型三嗪荧光探针1,5-二(4,6-二氯三嗪)-氨基萘并利用元素分析、IR和核磁共振谱进行了表征。在pH=12.0的柠檬酸钠-NaOH缓冲溶液中,与酪氨酸在35℃下反应30 min后,λex/λem=400 nm/465 nm处,1,5-二(4,6-二氯三嗪)-氨基萘与酪氨酸反应使体系的荧光强度增强,且增强的荧光强度与酪氨酸的浓度成正比,依此建立了一种测定酪氨酸的新方法。测定的线性范围是1.1×10-7~1.1×10-5mol/L,检出限为6.8×10-8mol/L。该方法成功用于测定人尿和血清样品中的酪氨酸。  相似文献   

3.
荧光光度法测定环境水样中的苯酚和对苯二酚   总被引:7,自引:0,他引:7  
建立了荧光光度法直接测定环境水样中的苯酚和对苯二酚的新方法.通过β-环糊精增敏,三维荧光扫描选择测量波长,在波长对为λex/λem=273/307 nm时测定苯酚,苯酚的线性范围为0~1×10-4 mol/L,检出限为6.6×10-8 mol/L;在波长对为λex/λem=295/331 nm时测定对苯二酚, 对苯二酚的线性范围为0~1.5×10-5 mol/L,检出限为5.2×10-9 mol/L,回收率达到93.5%~103.5%.  相似文献   

4.
以4-N,N-二乙基氨基水杨醛为原料,制备了2-(苯并噻唑-2-基)-5-(N,N-二乙基氨基)苯酚衍生物(探针L),并对其结构进行了表征。在DMSO/PBS(体积比3∶7,pH=7.4)溶液中,探针L具有高选择性并可荧光"关-开"识别H_2S,在365nm紫外灯照射下,由无荧光变成蓝色荧光。实验表明,探针L识别H_2S的检测限为2.05×10~(-6)mol/L,pH适用范围为6~9,可用于检测实际水样中的H_2S。  相似文献   

5.
在pH=9.4的NH4Cl-NH3*H2O 的缓冲溶液条件下,强力霉素能与铕(Ⅲ)生成二元络合物并发射出铕(Ⅲ)位于612 nm处的特征荧光,加入2,6-二乙氧基-β-环糊精后,体系的荧光强度显著增强,且增强的荧光强度与强力霉素的浓度呈线性关系,据此建立了荧光分光光度法测量强力霉素的方法.在最佳实验条件下,测量的线性范围和检出限分别为6.2×10-8~1.3×10-5 mol/L和1.4×10-8 mol/L.本方法曾用于血样和尿样中强力霉素的测定.本研究讨论了荧光增强的机理.  相似文献   

6.
利用荧光光谱研究了三磷酸腺苷(ATP)与水溶性阳离子荧光共轭聚合物的相互作用,发现加入ATP后,聚合物的荧光强度被显著猝灭,且猝灭程度与ATP的加入量成正比,据此建立了测定ATP的方法.荧光光谱的激发波长选择395 nm,发射波长为521 nm,激发狭缝宽度为10.0 nm,发射狭缝宽度为10.0 nm.在0 05 mol/L Tris-HCl缓冲溶液(pH=7.4)中,测定ATP的线性范围为8.0×10-8~1.0×10-5 mol/L; 检出限为2.0×10-8 mol/L; 回收率在93.6%~105.6%之间; 相对标准偏差在2.2%~6.9%之间.本方法用于三磷酸腺苷二钠药片和鲫鱼肉中ATP的测定,获得满意结果.  相似文献   

7.
本文利用2-氨基吡啶与4-N,N-二乙氨基水杨醛反应合成了5-N,N-二乙胺基-2-(吡啶-2’-亚氨甲基)苯酚(探针L),并对其结构进行了表征。在DMSO/Tris(体积比6∶4,p H=7. 4)溶液中,探针L高选择性荧光"关-开"识别Zn2+,在365nm紫外灯照射下,由无荧光变成蓝色荧光。实验表明,探针L与Zn2+的结合比为1∶1,结合常数为2. 6×103L/mol,检测限为9. 39×10-7mol/L,p H适用范围为7~11,并可检测水样中的Zn2+。  相似文献   

8.
陈颂  王静  侯鹏  刘磊  王鑫 《分析测试学报》2016,35(8):1046-1049
基于硫醇诱导的迈克尔加成反应阻断探针的光诱导电子转移过程(PET)合成了一种基于氟化硼络合二吡咯甲川(Bodipy)类染料的荧光探针,该探针具有高灵敏度和选择性,可在生理条件下检测硫醇。利用核磁和高分辨质谱对探针结构进行了表征。当向探针溶液加入硫醇(0~1 000μmol/L)时,可在探针溶液的绿色光谱区域引起一个显著的荧光增强响应(增强至150倍)。同时,探针可以检测相对较低浓度的硫醇,对于含有硫醇的氨基酸(半胱氨酸、谷胱甘肽和高半胱氨酸)的检出限分别为4.5×10~(-7),1.2×10~(-7),2.1×10~(-7)mol/L。此外,相对于其他氨基酸,探针对硫醇具有较高的选择性和灵敏度。该方法成功实现了细胞内硫醇的荧光成像,证明该荧光探针在生物体系中具有潜在的应用能力。  相似文献   

9.
许书道 《分析化学》2002,30(10):1257-1259
在pH 10.0的水溶液中,5.0×10-4 mol/L的La(Ⅲ)可使Tb(Ⅲ)-o-FBA(邻-氟苯甲酸)-EDA(乙二胺) 体系的荧光增强78倍.以1.0×10-9 mol/L的Tb(Ⅲ)试验,体系的最大荧光条件如下:o-FBA浓度为6.0×10-3 mol/L,EDA体积分数为1%,激发光波长为339 nm,测量的荧光发射波长为546 nm.实验表明,在上述条件下,Tb(Ⅲ)的浓度在5.0×10-10~2.0×10-7 mol/L范围与体系的荧光强度呈线性关系,据此建立了测定痕量铽的荧光光度分析法,测定的相对标准偏差为0.50%,Tb(Ⅲ)的检出限为5.0×10-11 mol/L.  相似文献   

10.
在pH 7.4 NH3·H2O-NH4Cl缓冲溶液中, Eu(Ⅲ)与环丙沙星反应形成1∶2的稳定缔合物, 产生稀土敏化荧光现象, 其最佳激发、发射波长分别为λex=355 nm、λem=612 nm. 在该反应体系中加入适量维生素M溶液, 使Eu(Ⅲ)与环丙沙星缔合物的荧光发生猝灭. 利用这一现象, 建立了测定维生素M的荧光分析方法. 该方法保持了维生素M结构的完整性, 维生素M浓度在1.0×10-7~7.0×10-6 mol/L范围内符合线性关系, 检出限4.4×10-8 mol/L. 该方法用于片剂及胶囊中维生素M含量的测定, 6次平行测定回收率为95.7%~103.0%, 相对标准偏差为0.99%~1.4%.  相似文献   

11.
Increasing evidence suggests that S-nitrosothiols (RSNO) may represent naturally occurring nitric oxide (NO) surrogates and function as intermediates in NO metabolism. In this work, a simple, sensitive, and selective micromethod is developed and validated for quantification of RSNO. A fluorescent probe 8-(3',4'-diaminophenyl)-difluoroboradiaza-s-indacence (DABODIPY) is firstly used to label RSNO. The derivatization reaction is performed in aqueous medium at 30 degrees C for 15min in the presence of 6x10(-5)molL(-1)Hg2+ and the derivative is detected by fluorescence at lambda(ex)/lambda(em)=500/510nm. A linear function of concentration in the range of (2.0-600.0)x10(-8)molL(-1) is observed with a correlation coefficient of 0.9992 and detection limit of 1.2x10(-9)molL(-1) (S/N=3). This technique has been successfully applied to quantify RSNO in some human blood samples including healthy persons and patients suffering from cardiovascular diseases.  相似文献   

12.
To address a long‐standing problem of finding efficient reactions for chemical labeling of protein‐based S‐nitrosothiols (RSNOs), we computationally explored hitherto unknown (3+2) cycloaddition RSNO reactions with alkynes and alkenes. Nonactivated RSNO cycloaddition reactions have high activation enthalpy (>20 kcal/mol at the CBS‐QB3 level) and compete with alternative S—N bond insertion pathway. However, the (3+2) cycloaddition reaction barriers can be dramatically lowered by coordination of a Lewis acid to the N atom of the —SNO group. To exploit this effect, we propose to use reagents with Lewis acid and a strain‐activated carbon–carbon multiple bond linked by a rigid scaffold, which can react with RSNOs with small activation enthalpies (~5 kcal/mol) and high reaction exothermicities (~40 kcal/mol). The proposed efficient RSNO cycloaddition reactions can be used for future development of practical RSNO labeling reactions. © 2013 Wiley Periodicals, Inc.  相似文献   

13.
A novel electrochemical device for the direct detection of S-nitrosothiol species (RSNO) is proposed by modifying an amperometric nitric oxide (NO) gas sensor with thin hydrogel layer containing an immobilized organoselenium catalyst. The diselenide, 3,3'-dipropionicdiselenide, is covalently coupled to primary amine groups in polyethylenimine (PEI), which is further cross-linked to form a hydrogel layer on a dialysis membrane support. Such a polymer film containing the organoselenium moiety is capable of decomposing S-nitrosothiols to generate NO(g) at the distal tip of the NO sensor. Under optimized conditions, various RSNOs (e.g., nitrosocysteine (CysNO), nitrosoglutathione (GSNO), etc.) are reversibly detected at 相似文献   

14.
Koppenol WH 《Inorganic chemistry》2012,51(10):5637-5641
Nitrosothiols are powerful vasodilators. Although the mechanism of their formation near neutral pH is an area of intense research, neither the energetics nor the kinetics of this reaction or of subsequent reactions have been addressed. The following considerations may help to guide experiments. (1) The standard Gibbs energy for the homolysis reaction RSNO → RS(?) + NO(?)(aq) is +110 ± 5 kJ mol(-1). (2) The electrode potential of the RSNO, H(+)/RSH, NO(?)(aq) couple is -0.20 ± 0.06 V at pH 7. (3) Thiol nitrosation by NO(2)(-) is favorable by 37 ± 5 kJ mol(-1) at pH 7. (4) N(2)O(3) is not involved in in vivo nitrosation mechanisms for thermodynamic--its formation from NO(2)(-) costs 59 kJ mol(-1)--or kinetic--the reaction being second-order in NO(2)(-)--reasons. (5) Hemoglobin (Hb) cannot catalyze formation of N(2)O(3), be it via the intermediacy of the reaction of Hb[FeNO(2)](2+) with NO(?) (+81 kJ mol(-1)) or reaction of Hb[FeNO](3+) with NO(2)(-) (+88 kJ mol(-1)). (6) Energetically and kinetically viable are nitrosations that involve HNO(2) or NO(?) in the presence of an electron acceptor with an electrode potential higher than -0.20 V. These considerations are derived from existing thermochemical and kinetics data.  相似文献   

15.
Nitric oxide (NO)-derived species play essential roles in regulating cellular responses. Among these species, S-nitrosothiols (including RSNO and HSNO) and nitroxyl (HNO) are especially interesting. Owing to their high reactivity and short survival time, the detection of these molecules in biological settings can be challenging. In this regard, much effort has been invested in exploring novel reactions of RSNO/HSNO/HNO and applying these reactions to develop fluorescence probes. Herein, reported specific reactions of RSNO/HSNO/HNO are summarized and strategies used in the design of fluorescent probes are illustrated. The properties and potential problems of representative probes are also discussed.  相似文献   

16.
《Electroanalysis》2006,18(21):2043-2048
A new biosensor is described for the detection of S‐nitrosothiols (RSNOs) based on their decomposition by immobilized glutathione peroxidase (GPx), an enzyme containing selenocysteine residue that catalytically produces nitric oxide (NO) from RSNOs. The enzyme is entrapped at the distal tip of a planar amperometric NO sensor. The new biosensor shows good sensitivity, linearity, reversibility, and response times towards various RSNO species in PBS buffer, pH 7.4 . In most cases, the response time is less than 5 min, and the response is linear up to 6 μM of the tested RSNO species. The lowest detection limit is obtained for S‐nitrosocysteine (CysNO), at approx. 0.2 μM. The biosensor's sensitivity is not affected by the addition of EDTA as a chelating agent; an advantage over other potential catalytic enzymes that contain copper ion centers, such as CuZn‐superoxide dismutase and xanthine oxidase. However, lifetime of the new sensor is limited, with sensitivity decrease of 50% after two days of use. Nonetheless, the new amperometric GPx based RSNO sensor could prove useful for detecting relative RSNO levels in biological samples, including whole blood.  相似文献   

17.
SNO patrol: S-Nitrosothiols (RSNO) are important molecules involved in cell signaling, which control physiological processes such as vasodilation and bronchodilation. By using the protein pore α-hemolysin as a nanoreactor, the biological chemistry of RSNO has been investigated at the single-molecule level.  相似文献   

18.
S‐Nitrosothiols (RSNOs) serve as air‐stable reservoirs for nitric oxide in biology. While copper enzymes promote NO release from RSNOs by serving as Lewis acids for intramolecular electron‐transfer, redox‐innocent Lewis acids separate these two functions to reveal the effect of coordination on structure and reactivity. The synthetic Lewis acid B(C6F5)3 coordinates to the RSNO oxygen atom, leading to profound changes in the RSNO electronic structure and reactivity. Although RSNOs possess relatively negative reduction potentials, B(C6F5)3 coordination increases their reduction potential by over 1 V into the physiologically accessible +0.1 V vs. NHE. Outer‐sphere chemical reduction gives the Lewis acid stabilized hyponitrite dianion trans‐[LA‐O‐N=N‐O‐LA]2? [LA=B(C6F5)3], which releases N2O upon acidification. Mechanistic and computational studies support initial reduction to the [RSNO‐B(C6F5)3] radical anion, which is susceptible to N?N coupling prior to loss of RSSR.  相似文献   

19.
S-Nitrosothiols (RSNOs) serve as air-stable reservoirs for nitric oxide in biology. While copper enzymes promote NO release from RSNOs by serving as Lewis acids for intramolecular electron-transfer, redox-innocent Lewis acids separate these two functions to reveal the effect of coordination on structure and reactivity. The synthetic Lewis acid B(C6F5)3 coordinates to the RSNO oxygen atom, leading to profound changes in the RSNO electronic structure and reactivity. Although RSNOs possess relatively negative reduction potentials, B(C6F5)3 coordination increases their reduction potential by over 1 V into the physiologically accessible +0.1 V vs. NHE. Outer-sphere chemical reduction gives the Lewis acid stabilized hyponitrite dianion trans-[LA-O-N=N-O-LA]2− [LA=B(C6F5)3], which releases N2O upon acidification. Mechanistic and computational studies support initial reduction to the [RSNO-B(C6F5)3] radical anion, which is susceptible to N−N coupling prior to loss of RSSR.  相似文献   

20.
The decomposition of S-nitrosothiols (RSNO) in solution under oxidative conditions is significantly faster than can be accounted for by homolysis of the S-N bond. Here we propose a cationic chain mechanism in which nitrosation of nitrosothiol produces a nitrosated cation that, in turn, reacts with a second nitrosothiol to produce nitrosated disulfide and the NO dimer. The nitrosated disulfide acts as a source of nitrosonium for nitrosothiol nitrosation, completing the catalytic cycle. The mechanism accounts for several unexplained facets of nitrosothiol chemistry in solution, including the observation that the decomposition of an RSNO is accelerated by O(2), mixtures of O(2) and NO, and other oxidants, that decomposition is inhibited by thiols and other antioxidants, that decomposition is dependent on sulfur substitution, and that decomposition often shows nonintegral kinetic orders.  相似文献   

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