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1.
张召香  张飞  刘营 《化学学报》2012,70(21):2251-2256
利用Au纳米粒子作为辣根过氧化物酶(HRP)标记抗体的载体,结合电堆积预富集技术,发展了一种基于场放大进样及Au纳米粒子双重富集的毛细管电泳电化学免疫分析技术用于大肠杆菌的检测.大肠杆菌与酶标抗体免疫反应后直接进行场放大进样预富集,免疫样品快速迁移并堆积在毛细管入口端,同时带负电荷的金纳米粒子向阳极端迁移,在样品与缓冲溶液的界面处吸附样品离子.金纳米粒子作为多酶载体使检测信号进一步放大.以标记在抗体上的HRP催化H2O2氧化邻苯二胺产生的电流信号来检测大肠杆菌.同常规电动进样毛细管电泳相比,该双重富集技术可使灵敏度提高1400倍.该方法对大肠杆菌检测的线性范围为2.0~2000.0 cfu mL-1,检出限为1.0 cfu mL-1,实现了对扇贝样品中大肠杆菌的快速、灵敏检测.  相似文献   

2.
毛细管电泳中的样品浓缩技术   总被引:6,自引:0,他引:6  
杨永坛  梁冰  欧庆瑜 《色谱》2000,18(2):115-119
 评述了毛细管电泳中提高被分析物检测灵敏度的有效方法之一——样品预浓缩技术 ,它包括电堆集富集、场放大进样、等速电泳等 8种技术。共 67篇。  相似文献   

3.
曹军  洪芳军  郑平 《色谱》2007,25(2):183-188
毛细管电泳样品电堆积富集过程可以浓缩样品组分,从而提高检测灵敏度,是一种有效的样品富集技术。本文通过合理的简化和假设,把毛细管中电堆积富集过程中所涉及的主要变量根据电势分布方程、缓冲溶液的浓度方程和样品粒子的质量传输方程进行耦合求解,建立了一个一维的数学模型,并应用有限元的方法对该模型进行了求解。计算结果给出了毛细管中缓冲溶液浓度及电场强度的分布随时间变化的过程,以及富集过程中毛细管中的电势分布曲线;得到了样品粒子浓度在电堆积富集过程和富集之后的再次扩散过程中的分布曲线以及正、负样品粒子的分离过程;最后分析了不同缓冲溶液浓度比对样品富集效果的影响。该研究为样品电堆积富集技术的进一步完善提供了一种简单可行的理论研究方法。  相似文献   

4.
样品堆积——毛细管电泳的柱上浓缩技术   总被引:7,自引:0,他引:7  
宋立国  陈洪 《分析化学》1997,25(6):722-727
评叙了样品堆积,一种毛细管电泳提高检测灵敏度的柱上浓缩技术。样品堆积包括电堆积富集与场增加进样两种方法,分别在流动动力进样与电动进样过程中实现。本文从理论上说明了实现样品堆积及优化样品堆积富集效率须采取的实验措施,并对样品堆积目前的应用状况进行了全面介绍。  相似文献   

5.
王明明  沈菁  宋婷  李胜清  陈浩 《分析化学》2012,40(5):809-810
1 引 言 百草枯属有机杂环类季铵盐除草剂,由于它具有优良的除草效果,已广泛应用于多种作物的杂草防治.百草枯具有极强的水溶性,极易迁移至水体环境中,从而对饮用水的质量安全构成潜在威胁.目前,百草枯的残留检测方法主要有分光光度法[1]、液相色谱-质谱联用法[2]、气相色谱质谱联用法[3]和毛细管电泳法(CE) [4~6].采用分光光度法测定百草枯,不仅操作繁琐费时,而且灵敏度低.采用气相色谱法测定百草枯,通常需要衍生化,应用较少[3].采用液相色谱法测定百草枯,通常需要在流动相中添加离子对试剂[2].毛细管电泳具有分离效率高,分析速度快等优点,已被广泛用于水样中百草枯残留的测定.然而,毛细管电泳灵敏度不高,极大地限制了其在实际样品分析中的应用.场放大样品进样(FASI)是一种简单有效的在线富集方法,其富集倍数可达1000倍[7],可有效提高毛细管电泳技术的灵敏度,因此应用较为广泛.本实验建立了场放大样品进样-压力辅助毛细管区带电泳法(CZE),用于测定饮用水中百草枯的残留量.  相似文献   

6.
利用胶束毛细管电泳法结合在线推扫富集技术对组织中残留的痕量环丙沙星、氧氟沙星和恩诺沙星进行了检测, 弥补了毛细管电泳检测灵敏度低的缺点, 大大减化了操作过程, 为动物食品组织中残留的痕量药物检测提供了一种新的简便可靠的方法.  相似文献   

7.
免疫亲和毛细管电泳的研究进展   总被引:2,自引:0,他引:2  
陈泓序  张新祥 《色谱》2009,27(5):631-641
免疫亲和毛细管电泳方法结合了免疫分析的高特异性和毛细管电泳分离的高效、快速、样品用量少等优点,是复杂样品中特定组分分析的重要方法之一。激光诱导荧光检测器的使用以及毛细管电泳分离前免疫预富集过程的引入,可以进一步提高分析测定的灵敏度,使其能够用于痕量物质的高灵敏测定。本文结合作者所在课题组的工作,对免疫亲和毛细管电泳的两种主要模式,即均相的毛细管电泳免疫分析(CEIA)和非均相的免疫亲和毛细管电泳(IACE)的研究进展进行了综述。  相似文献   

8.
Liu S  Wang H 《色谱》2011,29(9):816-829
毛细管电泳以其分析速度快、分离效率高、操作简便、能够实现高通量而获得了广泛的应用,但由于检测窗口小而导致其检测灵敏度低。为了提高检测灵敏度,目前已发展了多种毛细管电泳在线聚焦和样品预浓缩技术,如场放大样品堆积、pH调节浓缩、胶束电动毛细管色谱、等速电泳等。这些技术由于能够在毛细管内同时实现样品的聚焦和分离、操作简便而获得了广泛的兴趣和关注。本文针对毛细管电泳的在线聚焦的原理、技术和应用做一简要的介绍和总结。  相似文献   

9.
王星  张薇  樊柳荫  曹成喜 《色谱》2007,25(5):694-698
采用建立在移动反应界面理论上的体系进行尿样中氧化苦参碱的富集与定量检测。与传统的毛细管电泳相比,体系中引入了富集缓冲溶液(富集相)和分离缓冲溶液(分离相)。优化的条件如下:样品缓冲溶液为20 mmol/L 甲酸钠(用氨水调节pH至10.70),富集缓冲溶液为40 mmol/L 甲酸-甲酸钠(pH 2.60),分离缓冲溶液为100 mmol/L 甲酸-甲酸钠(pH 4.80);样品相压力进样1.4 kPa×3 min,富集相压力进样1.4 kPa×7 min,紫外检测波长210 nm,电压21 kV。氧化苦参碱在2.2~65 mg/L的质量浓度范围内呈良好的线性关系(r=0.9991),检出限为0.74 mg/L,灵敏度比常规毛细管电泳方法提高约70倍,重现性良好。该方法已经成功地应用于尿样中氧化苦参碱的检测。  相似文献   

10.
设计并制作了在柱电化学(EC)检测池,用于在同一根毛细管中进行中心切割二维毛细管电泳(2D-CE)在线纯化分离检测尿样中的6种β-阻断剂.尿样先在15 mmol/L NaAc缓冲液中进行毛细管区带电泳(CZE)分离,带正电荷的β-阻断剂与中性和带负电荷的干扰物质分成不同区带,然后在检测端施加13.8 kPa压力将干扰成分从毛细管入口端排出,同时将目标组分驱送到毛细管入口端,最后在90 mmol/L NaAc-30 mmol/L SDS缓冲液中进行胶束电动毛细管色谱(MEKC)分离.场放大样品堆积(FASS)/胶束推扫在柱双重富集技术不仅有效抵消压力驱送过程中产生的区带扩散,还可进一步压缩样品区带,提高检测灵敏度.本方法成功用于服药后鼠尿样品中6种β-阻断剂的分离测定,经第一维CZE分离排除干扰后,在未涂层毛细管柱(60 cm ×50 μm i.d.)、90 mmol/L NaAc/HAc-30 mmol/L SDS运行缓冲液、检测电位0.8 V、运行电压10 kV条件下,对6种β-阻断剂进行在线富集分离,峰高、峰面积和迁移时间的相对标准偏差(RSD)分别为2.0%~4.1%, 1.4%~3.7%和0.9%~2.7%(n=6).本研究为毛细管电泳在复杂样品在线纯化分析等方面的应用提供了新方法.  相似文献   

11.
Capillary electrophoresis has been widely used as chiral separation technique, applying chiral selectors that are added to the background electrolyte. The advantages of capillary electrophoresis as separation technique are its flexibility, low cost, and high separation efficiency. This study is part of a research project, where guidelines are defined to facilitate interinstrumental method transfer of capillary electrophoretic methods, which is one of the major drawbacks of capillary electrophoresis. Another drawback is the lower sensitivity compared to liquid chromatographic methods. Improving and maintaining the sensitivity are the reason why focus should be put on the interinstrumental differences between detector settings. The aim of this study was to determine when adaption of the detector settings during interinstrumental method transfer was needed. The chiral separations of two betablockers were selected as case studies. The influence of detector parameters, such as data acquisition rate, bandwidth, and filter, on sensitivity responses, such as peak area, height, and width, was evaluated by means of robustness tests performed on two capillary electrophoresis instruments. The statistically significant parameters were identified and non-significance intervals determined. To maintain or optimise the obtained sensitivity, the information gathered from the robustness test was further incorporated in guidelines developed to facilitate interinstrumental analytical method transfer of capillary electrophoretic methods.  相似文献   

12.
The present review summarizes scientific reports from between 2010 and 2019 on the use of capillary electrophoresis to quantify active constituents (i.e., phenolic compounds, coumarins, protoberberines, curcuminoids, iridoid glycosides, alkaloids, triterpene acids) in medicinal plants and herbal formulations. The present literature review is founded on PRISMA guidelines and selection criteria were formulated on the basis of PICOS (Population, Intervention, Comparison, Outcome, Study type). The scrutiny reveals capillary electrophoresis with ultraviolet detection as the most frequently used capillary electromigration technique for the selective separation and quantification of bioactive compounds. For the purpose of improvement of resolution and sensitivity, other detection methods are used (including mass spectrometry), modifiers to the background electrolyte are introduced and different extraction as well as pre-concentration techniques are employed. In conclusion, capillary electrophoresis is a powerful tool and for given applications it is comparable to high performance liquid chromatography. Short time of execution, high efficiency, versatility in separation modes and low consumption of solvents and sample make capillary electrophoresis an attractive and eco-friendly alternative to more expensive methods for the quality control of drugs or raw plant material without any relevant decrease in sensitivity.  相似文献   

13.
Capillary zone electrophoresis methods, based on either aqueous and non-aqueous solutions as running buffers and UV spectrophotometric detection, have been developed and optimized for the separation of several halogenated phenolic and bisphenolic compounds, suspected or proved to exhibit hormonal disrupting effects. Both aqueous capillary electrophoresis (CE) and non-aqueous capillary electrophoresis (NACE) methods were suitable for the analysis of compounds under study. The separation of the analytes from other 25 potentially interfering phenolic derivatives was achieved with NACE method. Large-volume sample stacking using the electroosmotic flow pump (LVSEP) was assayed as on-column preconcentration technique for sensitivity enhancement. LVSEP-CE and LVSEP-NACE improved peak heights by 5-26 and 16-330 folds, respectively. To evaluate their applicability, the capillary electrophoresis methods developed were applied to the analysis of water samples, using solid-phase extraction as sample pre-treatment process.  相似文献   

14.
Glycosaminoglycans are a family of polydisperse, highly sulfated complex mixtures of linear polysaccharides that are involved in many life processes. Defining the structure of glycosaminoglycans is an important factor in elucidating their structure-activity relationship. Capillary electrophoresis has emerged as a highly promising technique consuming an extremely small amount of sample and capable of rapid, high-resolution separation, characterization and quantitation of analytes. Numerous capillary electrophoresis methods for analysis of intact glycosaminoglycans and glycosaminoglycan-derived oligosaccharides have been developed. These methods allow for both qualitative and quantitative analysis with a high level of sensitivity. This review is concerned with separation methods of capillary electrophoresis, detection methods and applications to several aspects of research into glycosaminoglycans and glycosaminoglycan-derived oligosaccharides. The importance of capillary electrophoresis in biological and pharmaceutical samples in glycobiology and carbohydrate biochemistry and its possible applications in disease diagnosis and monitoring chemical synthesis are described.  相似文献   

15.
This review aims to illustrate sensitivity enhancement methods in capillary electrophoresis (CE) and their applications for pharmaceutical and related biochemical substance analyses. The first two parts of the article describe the introduction and principle of CE. The main part focuses on strategies for sensitivity improvement in CE including detector and capillary technologies and preconcentration techniques. Applications of these techniques for pharmaceutical and biomedical substance analyses are surveyed during the years 2018–2021.  相似文献   

16.
We consider the basic principles, instruments, problems, and examples of application of thermal lens spectroscopy and microscopy, highly sensitive force methods of molecular absorption spectroscopy, in various embodiments of electromigration methods of analysis, particularly, capillary electrophoresis and microfluidic chip electrophoresis. Examples illustrating the sensitivity and selectivity of the combined methods are presented.  相似文献   

17.
The improvement in hyphenated analytical techniques has significantly widened their applications to the analysis of biomaterials. In this article, we discuss recent advances in applications of hyphenated chromatographic techniques including capillary electrophoresis to the analyses of biological samples. As tools of separation, gas chromatography, high-performance liquid chromatography and capillary electrophoresis are considered with special emphasis on applications utilizing the hyphenation of these methods to mass spectrometry. Moreover, applications using other detection methods such as Fourier transform infrared spectroscopy hyphenated to gas chromatography and photodiode array detector combined with high-performance liquid chromatography or capillary electrophoresis are also discussed. Owing to their high sensitivity, luminescence-based detection systems such as laser-induced fluorescence and chemiluminescence are also included in this review.  相似文献   

18.
Two capillary electrophoresis methods for monitoring renally excreted varenicline, a highly effective drug prescribed for smoking cessation, in human urine were developed and compared. A method combining capillary electrophoresis with mass spectrometry was proposed for the fast analysis of varenicline (analysis time up to 7 min). Here, mass spectrometry was a prerequisite for achieving high sensitivity and selectivity of the analysis suitable for the quantification of a 15 ng/mL level of varenicline in un‐pretreated urine matrices. An alternative approach, two‐dimensional (column‐coupled) capillary electrophoresis with enhanced sample load capacity and ultraviolet detection, was proposed as a low‐cost alternative to capillary electrophoresis with mass spectrometry. The isotachophoresis on‐line sample treatment included simple elimination of the major matrix constituents and stacking of the sample in a large volume so that threefold lower quantitation limits could be easily achieved in comparison to the capillary electrophoresis with mass spectrometry. On the other hand, longer analysis time (ca. 4.5‐fold) and more complex electrolyte system in the coupled zone electrophoresis step (including two additives enhancing separation selectivity, i.e. isopropanol and cyclodextrin) were prerequisites for the complete separation of varenicline from the sample matrix. Anyway, both the developed methods were validated according to the Food and Drug Administration guidelines showing favorable performance parameters, suitable for their routine biomedical use.  相似文献   

19.
Nearly all processes in living organisms are controlled and regulated by the synergy of many biomolecule interactions involving proteins, peptides, nucleic acids, nucleotides, saccharides, and small molecular weight ligands. There is growing interest in understanding them, not only for the purposes of interactomics as an essential part of system biology, but also in their further elucidation in disease pathology, diagnostics, and treatment. The necessity of detailed investigation of these interactions leads to the requirement of laboratory methods characterized by high efficiency and sensitivity. As a result, many instrumental approaches differing in their fundamental principles have been developed, including those based on capillary electrophoresis. Although capillary electrophoresis offers numerous advantages for such studies, it still has one serious limitation, its poor concentration sensitivity with the most commonly used detection method–ultraviolet‐visible spectrometry. However, coupling capillary electrophoresis with a more sensitive detector fulfils the above‐mentioned requirement. In this review, capillary electrophoresis combined with fluorescence, mass spectrometry, and several nontraditional detection techniques in affinity interaction studies are summarized and discussed, together with the possibility of conducting these measurements in microchip format.  相似文献   

20.
A method is described to enhance the resolution and detection sensitivity of proteins, peptides, and amino acids in capillary electrophoretic analysis of solution mixtures. The method consists of derivatizing the analytes with fluorescamine, which is normally used as a fluorogenic reagent for compounds containing a reactive primary amine functional group, and then using the derivative as an ultraviolet chromophore to enhance detection sensitivity (measured at 280 nm) in capillary electrophoresis. The results demonstrated a significant improvement in the separation and detection sensitivity of the derivatized analytes as compared to their underivatized counterparts. The use of chromophores, such as fluorescamine, in capillary electrophoresis facilitates the analysis of components of solution mixtures, such as pharmaceutical formulations, that could not be resolved and/or detected by conventional capillary electrophoresis procedures.  相似文献   

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