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1.
Pyoverdine A(PvdA)是荧光假单胞菌分泌的一种水溶性较高的黄绿色荧光铁载体。在50 mmol·L-1Tris-HCl,pH 8.0条件下,使用紫外-可见吸收差光谱、荧光光谱研究了铽(Ⅲ)与荧光铁载体PvdA的结合。结果表明铽(Ⅲ)可与PvdA结合形成1:1的配合物,条件结合常数为(4.44±0.82)×1014mol-1·L。在生理条件下,PvdA可竞争伴清蛋白N-,C-端结合的铽(Ⅲ)形成Tb-PvdA配合物;Tb-PvdA与荧光假单胞菌细胞表面受体FpvA结合形成Tb-PvdA-FpvA复合物。  相似文献   

2.
以2,6-吡啶二甲酸为原料,经酰化、酯化、胺解、亲和加成合成2,6-吡啶二甲酰肼-2-羟基萘甲酰腙(L1)。用紫外-可见吸收光谱、荧光光谱、荧光寿命方法研究了酸碱对L1互变异构的影响及L1、Cu(Ⅱ)、铜运输蛋白(copper trafficking protein,apoCopC)三者的相互结合。结果表明,在pH=7.4、50mmol·L-1 Tris-HCl缓冲条件下,L1可分别与Cu(Ⅱ)、apoCopC结合形成1:1的配合物,条件结合常数分别为3.32×106mol-1·L和4.01×105mol-1·L;而Cu(Ⅱ)-L1与apoCopC结合形成1:1复合物的条件结合常数为8.09×105mol-1·L。荧光共振能量转移、分子对接模拟表明,L1结合在apoCopC的N端,光谱滴定证实L1、Cu(Ⅱ)、apoCopC可形成以Cu(Ⅱ)为中心的三元配合物。  相似文献   

3.
以2,6-吡啶二甲酸为原料,经酰化、酯化、胺解、亲和加成合成2,6-吡啶二甲酰肼-2-羟基萘甲酰腙(L1)。用紫外-可见吸收光谱、荧光光谱、荧光寿命方法研究了酸碱对L1互变异构的影响及L1、Cu(Ⅱ)、铜运输蛋白(copper trafficking protein,apoCopC)三者的相互结合。结果表明,在pH=7.4、50 mmol·L-1 Tris-HCl缓冲条件下,L1可分别与Cu(Ⅱ)、apoCopC结合形成1:1的配合物,条件结合常数分别为3.32×106 mol-1·L和4.01×105 mol-1·L;而Cu(Ⅱ)-L1与apoCopC结合形成1:1复合物的条件结合常数为8.09×105 mol-1·L。荧光共振能量转移、分子对接模拟表明,L1结合在apoCopC的N端,光谱滴定证实L1、Cu(Ⅱ)、apoCopC可形成以Cu(Ⅱ)为中心的三元配合物。  相似文献   

4.
由8-甲酰基-7-羟基香豆素与碳酰肼经一步缩合反应可制得探针1。研究发现,探针1对Zn2+和F-离子均呈现荧光增强和比率比色的高灵敏和高选择性响应,检出限低至10-8 mol·L-1。通过光谱、ITC、1H NMR滴定及质谱分析,详细地研究了探针与离子形成的配合物性质。在不同的介质中,探针不仅同时表现出对金属阳离子Zn2+和对阴离子F-的识别,而且吸收和发射波长均有显著的差异:1-Zn2+配合物的最大吸收波长为360 nm,而1-F-配合物为400 nm;1-Zn2+配合物的荧光激发和发射波长分别为360和454 nm,而1-F-配合物分别为400和475 nm。此外,探针1还能应用于活体PC3细胞中Zn2+的荧光成像。  相似文献   

5.
合成了2,4-二(2-噻吩乙烯基)-6-(4'-N,N-二甲氨基苯乙烯基)-1,3,5-均三嗪(2)并鉴定了其结构。在乙腈-水混合介质中,化合物2在355和416nm处呈现双吸收峰,加入Cu2+,Hg2+ 和Fe3+ 后,均在520nm附近形成新的吸收峰。化合物2与Cu2+、Hg2+ 和Fe3+ 均形成1:1型配合物,其结合常数分别为1.9×105L·mol-1,6.6×103L·mol-1,2.7×103L·mol-1。对照化合物4与金属离子的光谱响应与化合物2相似,仅吸收峰的位置不同。因此,可认为化合物24中三嗪环中的N和噻吩环中的S与Cu2+、Hg2+ 和Fe3+ 共同配位形成了稳定的金属配合物。  相似文献   

6.
陈曦  李思媛  王元  吴伟娜  陈忠 《无机化学学报》2022,38(10):1993-1998
以4-(二乙氨基)水杨醛与奥肼缩合制备了一例席夫碱类荧光探针1,通过1H NMR、13C NMR和电喷雾电离质谱表征了1的结构。光谱分析实验结果显示,探针1可选择性与Al3+作用,在495 nm处荧光发射峰显著增强。探针对Al3+的检测灵敏度高,检测限低至1.44 μmol·L-1。结合理论计算,证实探针以三齿配位的模式,与Al3+形成1∶1型稳定配合物。此外,该探针还可用于活细胞中Al3+的检测。  相似文献   

7.
合成了一种新的吡咯腙探针1,用于Hg2+的比色和荧光开启检测。探针1对Hg2+的检测限为45 nmol·L-1,缔合常数为5.78×108 L·mol-1。值得注意的是,工作pH范围为4.0~10.0。Job曲线和MS数据证实探针与Hg2+形成1:1的配合物。通过1H NMR、时间分辨荧光光谱和密度泛函理论(DFT)计算系统研究了探针与Hg2+的配位模式。此外,由于吗啉基团的存在,探针可以检测HeLa细胞溶酶体中的Hg2+。  相似文献   

8.
利用菲咯啉酮衍生物4-氯-2-(1H-咪唑并[4,5-f][1,10]菲咯啉)苯酚(HL)设计合成了一种新的单核铜配合物[Cu (L)(5-Cl-sal)(DMF)]ClO4·DMF (5-Cl-Hsal=5-氯-水杨醛),用元素分析和X射线单晶衍射等手段对配合物进行了表征。该配合物晶体属三斜晶系,P1空间群。用紫外吸收光谱、荧光光谱和凝胶电泳等方法研究了配合物与DNA的相互作用。结果表明,配合物以插入方式与CT-DNA结合,结合常数为1.02×103 L·mol-1。同时配合物也能较大程度淬灭EB-DNA复合物的荧光,表观键合常数为4.37×105 L·mol-1,略小于经典键合常数107 L·mol-1。淬灭机理为动态淬灭。凝胶电泳实验研究表明配合物在H2O2存在下可将pBR322质粒DNA切割为开环缺口型DNA和线型DNA,配合物浓度越大,切割效果越好。机理研究显示,配合物切割DNA的反应是由羟基自由基(·OH)和单线态氧(1O2)作为活性物种的氧化切割过程。  相似文献   

9.
合成了一种新的吡咯腙探针1,用于Hg2+的比色和荧光开启检测。探针1对Hg2+的检测限为45 nmol·L-1,缔合常数为5.78×108 L·mol-1。值得注意的是,工作pH范围为4.0~10.0。Job曲线和MS数据证实探针与Hg2+形成1∶1的配合物。通过1H NMR、时间分辨荧光光谱和密度泛函理论(DFT)计算系统研究了探针与Hg2+的配位模式。此外,由于吗啉基团的存在,探针可以检测HeLa细胞溶酶体中的Hg2+。  相似文献   

10.
合成了一种新的吡咯腙探针1,用于Hg2+的比色和荧光开启检测。探针1对Hg2+的检测限为45 nmol·L-1,缔合常数为5.78×108 L·mol-1。值得注意的是,工作pH范围为4.0~10.0。Job曲线和MS数据证实探针与Hg2+形成1∶1的配合物。通过1H NMR、时间分辨荧光光谱和密度泛函理论(DFT)计算系统研究了探针与Hg2+的配位模式。此外,由于吗啉基团的存在,探针可以检测HeLa细胞溶酶体中的Hg2+。  相似文献   

11.
用分子生物学方法表达、纯化了游仆虫中心蛋白及N-端半分子,用铽荧光探针法、离子竞争法研究了pH 7.4,0.01 mol· L-1 Hepes条件下中心蛋白与铽、钙的结合性质。结果表明中心蛋白有4个铽结合部位,其中2个为高亲合结合部位、2个为低亲合结合部位。具有2个低亲合结合部位的中心蛋白半分子与铽结合的条件常数是(2.13±0.10)×105 L·mol-1,与钙结合的条件常数是(7.52±0.02)×102 L·mol-1。  相似文献   

12.
The localization of Terbium (Tb3+) cations binding to deionized bacteriorhodopsin (bR) has been studied by using spectroscopic methods. It was found that adding Tb3+ cations to deionized bR affects the fluorescence lifetimes of tryptophan (Trp) in bR, the wavelength of fluorescence peak shifts “blue” and the peak value of fluorescence decreases. It was also found that adding one Tb3+ cation to deionized bR can restore the purple state from its blue state obviously. The measurements of absorbance, fluorescence and lifetime of fluorescence also show that when more than three Tb3+ cations are added, no further changes can be found. It is suggested that one Tb3+ specific binding site for the color-controlling is located on the exterior of the bR trimer structure to negatively charged lipids near Trp-10 and Trp-12. Three Tb3+ cations binding per bR is needed for the regenerated bR.  相似文献   

13.
Lanthanide sensitized luminescence and chemiluminescence (CL) are of great importance because of the unique spectral properties, such as long lifetime, large Stokes shifts, and narrow emission bands characteristic to lanthanide ions (Ln3+). With the fluoroquinolone (FQ) compounds including enoxacin (ENX), norfloxacin (NFLX), lomefloxacin (LMFX), fleroxacin (FLRX), ofloxacin (OFLX), rufloxacin (RFX), gatifloxacin (GFLX) and sparfloxacin (SPFX), the luminescence and CL properties of Tb3+–FQ and Eu3+–FQ complexes have been investigated in this contribution. Ce4+–SO32− in acidic conditions was taken as the CL system and sensitized CL intensities of Tb3+–FQ and Eu3+–FQ complexes were determined by flow-injection analysis. The luminescence and CL spectra of Tb3+–FQ complexes show characteristic peaks of Tb3+ at 490 nm, 545 nm, 585 nm and 620 nm. Complexes of Tb3+–ENX, Tb3+–NFLX, Tb3+–LMFX and Tb3+–FLRX display relatively strong emission intensity compared with Tb3+–OFLX, Tb3+–RFX, Tb3+–GFLX and Tb3+–SPFX. Quite weak peaks with unique characters of Eu3+ at 590 nm and 617 nm appear in the luminescence and CL spectra of Eu3+–ENX, but no notable sensitized luminescence and CL of Eu3+ could be observed when Eu3+ is added into other FQ. The distinct differences on emission intensity of Tb3+–FQ and Eu3+–FQ might originate from the different energy gap between the triplet levels of FQ and the excited levels of the Ln3+. The different sensitized luminescence and CL signals among Tb3+–FQ complexes could be attributed to different optical properties and substituents of these FQ compounds. The detailed mechanism involved in the luminescence and CL properties of Tb3+–FQ and Eu3+–FQ complexes has been investigated by analyzing the luminescence and CL spectra, quantum yields, and theoretical calculation results.  相似文献   

14.
A new spectrofluorimetric method was developed for the determination of trace amounts of lecithin using the ciprofloxacin (CIP)–terbium (Tb3+) ion complex as a fluorescent probe. In a buffer solution at pH=5.60, lecithin can remarkably reduce the fluorescence intensity of the CIP–Tb3+ complex at λ=545 nm. The reduced fluorescence intensity of the Tb3+ ion is proportional to the concentration of lecithin. Optimum conditions for the determination of lecithin were also investigated. The linear range and detection limit for the determination of lecithin were 1.0×10−6–3.0×10−5 mol L−1 and 3.44×10−7 mol L−1, respectively. This method is simple, practical, and relatively free of interference from coexisting substances. Furthermore, it has been successfully applied to assess lecithin in serum samples.   相似文献   

15.
 A sensitive method using fluorescence quenching for the determination of nucleotides (ATP, ADP, AMP, CTP, UTP) and polynucleotides[poly(A), poly(I), poly(U)] is proposed. It is based on the ability of nucleotides and polynucleotides to inhibit the formation of a strongly fluorescent complex of Tb3+ ion with Tiron. The possibilities of spectrofluorimetric measurements of these systems were studied under optimal conditions (pH 6.9 in hexamethylene tetramine-HCl buffer, 1.2×10-6 mol/L of Tb3+, 4.0×10-6 mol/L of Tiron, λex=317 nm, λem=546 nm). The results showed that the Tb3+-Tiron complex could be used as a fluorescence test for the phosphate moieties of nucleotides and polynucleotides. The detection limits are 0.3, 1.2, 3.7, 0.2, 0.3, 1.1, 0.6 and 0.9 ng/mL for ATP, ADP, AMP, CTP, UTP, poly(A), poly(I), and poly(U), respectively. The relative standard deviations (6 replicates) are within 4.0% in the middle of the linear range. The fluorescence quenching mechanism of these systems is also discussed. Received: 16 July 1996 / Revised: 13 November 1996 / Accepted: 13 November 1996  相似文献   

16.
A new spectrofluorimetric method was developed for the determination of trace amounts of coenzyme A (CoA). In the presence of periodic acid (H5IO6), CoA can remarkably enhance the fluorescence intensity of the Tb3+–ciprofloxacin (CIP) complex at 545 nm in a buffer solution at pH 5.4; the enhanced fluorescence intensity of the Tb3+ ion is proportional to the concentration of CoA. The optimal conditions for the determination of CoA were also investigated. The linear range and the detection limit for the determination of CoA were 6.08 × 10−6–1.64 × 10−5 and 2.1 × 10−8 mol L−1, respectively. This method is simple, practical and relatively free of interference from coexisting substances, and can be successfully applied to assess CoA in injection and biological samples. Moreover, the enhancement mechanism of the fluorescence intensity of the CoA–Tb3+–CIP system in the presence of H5IO6 is also discussed.  相似文献   

17.
A new Schiff base ligand, 3-tryptimino-1-phenyl-butan-1-one (TPB), was synthesized. The fluorescence intensity of its terbium(III) complex was greatly enhanced by addition of 1,10-phenanthroline to an acetonitrile solution. Spectrofluorimetric determination of trace amounts of Tb3+ was performed based on this effect. The excitation and emission wavelengths are 293 and 546 nm, respectively. Under optimal conditions, the fluorescence intensities varied linearly with the concentration of Tb3+ in the range of 2.0 × 10−6 to 7.0 × 10−6 M with a detection limit of 2.4 × 10−9 M. Interference by some rare earth ions is described. This method was applied to the determination of trace amounts of terbium(III) in a high purity Y2O3 matrix. The mechanism of fluorescence enhancement was also studied.  相似文献   

18.
《Analytical letters》2012,45(13):2424-2436
Abstract

A new spectrofluorimetric method was developed for determining superoxide dismutase. The interactions between prulifloxacin (PUFX) –Tb3+ complex and superoxide dismutase had been studied by using UV-Vis absorption and fluorescence spectra. Using prulifloxacin–Tb3+ as a fluorescence probe, under optimum conditions, superoxide dismutase could remarkably enhance the fluorescence intensity of the prulifloxacin–Tb3+ complex at λ = 545 nm, and the enhanced fluorescence intensity was in proportion to the concentration of superoxide dismutase. Optimum conditions for the determination of superoxide dismutase were also investigated. The dynamic range for the determination of superoxide dismutase was 0.032 to 22.56 µg mL?1, and the detection limit (S/N = 3) was 1.5 ng 4 mL?1. This method was simple, practical, and relatively free of interference from coexisting substances and could be successfully used to determine superoxide dismutase in the plant and blood samples. The mechanism of fluorescence enhancement of prulifloxacin–Tb3+ complex by superoxide dismutase was also discussed.  相似文献   

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