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1.
建立了牛奶样品中萘啶酸、噁喹酸、氟甲喹、诺氟沙星、依诺沙星、环丙沙星、洛美沙星、丹诺沙星、恩诺沙星、氧氟沙星、沙拉沙星、二氟沙星、麻保沙星、培氟沙星、司帕沙星、奥比沙星16种喹诺酮类兽药多残留量的液质联用确证方法.用酸性乙腈萃取样品中16种喹诺酮类药物残留,然后用正己烷脱脂,旋转蒸发仪浓缩,以Inertsil C8-3色谱柱为分离柱,在正离子模式下以电喷雾电离串联质谱仪进行测定.在10、50、100 μg/kg 3个浓度水平进行验证实验,方法的线性范围为10~100 μg/kg,平均回收率为69%~104%.相对标准偏差为4.1%~12.7%.  相似文献   

2.
建立了一种样品前处理方法即离子液体冷诱导微萃取,通过超声辅助利用高效液相色谱-紫外检测器测定了鸡肉、猪肉中氟甲喹和萘啶酸的残留含量。考察了萃取剂、抗黏剂、pH值及温度等对萃取效率的影响。在优化的萃取条件下,测定氟甲喹和萘啶酸的线性范围分别为10~300μg·L~(-1)和5-300μg·L~(-1),r=0.9995及0.9997,检出限分别为0.7μg·L~(-1)和0.5μg·L~(-1),平均回收率在90.4%~103.2%,相对标准偏差在2.7%~9.3%之间。本方法具有简单、环保、灵敏度高、抗干扰性强等特点。  相似文献   

3.
建立了测定对虾血淋巴、肌肉和肝胰腺等组织中噁喹酸含量的反相高效液相色谱法。采用乙腈提取对虾血淋巴、肌肉、肝胰腺和鳃组织中噁喹酸,色谱柱为Aglient Zorbax SB-C18柱(150×4.6mm,5μm),以乙腈-0.01mol·L-1四丁基溴化铵(磷酸调节pH为2.75)为流动相,流速1.0mL·min-1,荧光检测器检测。噁喹酸在0.002~10μg·mL-1范围内线性关系良好,相关系数R2=0.9996~0.9999。加标回收率为84.70%~90.60%,日内、日间精密度(RSD)分别为1.60%~4.02%、2.91%~4.73%,定量限分别为0.02μg·mL-1、0.01μg·g-1、0.02μg·g-1和0.02μg·g-1。该方法操作简单,重现性好,适用于对虾样品中噁喹酸含量的分析。  相似文献   

4.
李玮  艾连峰  郭春海  马育松  窦彩云 《色谱》2013,31(10):946-953
建立了液相色谱-串联质谱法同时测定牛奶和奶粉中4种青霉素(青霉素G、青霉素V、阿莫西林、氨苄西林)及其4种 β-内酰胺酶酶解产物(青霉素G脱羧噻唑酸、青霉素V脱羧噻唑酸、阿莫西林脱羧噻唑酸、氨苄西林脱羧噻唑酸)残留的方法。样品采用乙腈-水提取,浓缩后经HLB柱净化,用液相色谱-串联质谱检测,外标法定量。结果表明,青霉素原药在4~200 μg/L,酶解产物在10~500 μg/L范围呈良好线性,线性相关系数均大于0.99;样品检出限为5~50 μg/kg(S/N≥3),定量限为8~100 μg/kg(S/N≥10);对牛奶和奶粉样品分别进行3个水平的加标回收实验(n=6),牛奶中青霉素及其酶解产物的平均回收率为83.48%~96.97%,相对标准偏差为3.86%~10.87%;奶粉中青霉素及其酶解产物的平均回收率为82.70%~95.14%,相对标准偏差为3.02%~9.81%。该方法稳定、可靠,适用于牛奶和奶粉中青霉素类药物及其酶解代谢产物的测定。  相似文献   

5.
高效液相色谱法同时检测8种喹诺酮类兽药残留量   总被引:9,自引:0,他引:9  
建立了吡哌酸、氧氟沙星、环丙沙星、单诺沙星、恩诺沙星、沙拉沙星、(噁)喹酸和氟甲喹8种喹诺酮类兽药残留量的高效液相色谱-荧光检测方法. 方法的线性范围: 30~2000 μg/kg, 定量限为30 μg/kg, 检出限为5 μg/kg (吡哌酸为20 μg/kg). 该方法采用基质分散和微波萃取技术进行样品的前处理, 回收率为70.0%~99.5%, 相对标准偏差1.0%~8.5%. 并同固相萃取方法进行了比较, 分别使用了RPS、HLB、MAX 3种固相萃取柱, 其回收率均低于本法. 确立了以Aglient XDB-C18 (5 μm, 150 mm×4.6mm i.d.)色谱柱, H3PO4-纯水-三乙胺-乙腈(pH 3.0)为流动相的最佳色谱条件, 吡哌酸、氧氟沙星、环丙沙星、单诺沙星、恩诺沙星、沙拉沙星的检测波长为: 激发波长285 nm, 发射波长460 nm;(噁)喹酸和氟甲喹为: 激发波长325 nm, 发射波长365 nm. 方法可满足兽药残留检测要求.  相似文献   

6.
建立了分子印迹固相萃取(MISPE)-超高效液相色谱-串联质谱(UPLC-MS/MS)同时测定鸡肉中9种氟喹诺酮药物残留的分析方法。样品经均质处理后,采用磷酸盐缓冲液提取,提取液经MISPE柱净化后,采用BEH C18柱分离,以乙腈-0.1%(v/v)甲酸水溶液为流动相,梯度洗脱,采用电喷雾正离子多反应监测模式,外标法定量。考察了MISPE柱对9种氟喹诺酮药物的吸附特异性;9种药物在0.25~100 μg/L范围内线性关系良好,相关系数(r)>0.9965;检出限和定量限分别为0.08 μg/kg和0.25 μg/kg;在0.25、2.5、5.0 μg/kg添加水平下,9种药物的回收率为65.8%~112.2%,批内、批间RSD分别为0.6%~13.5%和0.5%~14.9%;MISPE的最大柱容量为464.7~932.4 μg/L。该方法灵敏度好、操作简单、快速。  相似文献   

7.
建立了动物组织样品中萘啶酸、恶喹酸、氟甲喹、诺氟沙星、依诺沙星、环丙沙星、洛美沙星、丹诺沙星、恩诺沙星、氧氟沙星、沙拉沙星、二氟沙星、麻保沙星、培氟沙星、司帕沙星、奥比沙星等16种喹诺酮类兽药多残留量的高效液相色谱-串联质谱测定方法。用酸性乙腈萃取样品中的16种喹诺酮类药物残留,然后用正己烷脱脂,旋转蒸发浓缩,以Inertsil C8-3色谱柱分离,在正离子模式下以电喷雾电离串联质谱进行测定。在10,50,100 μg/kg 3个加标水平下进行了验证试验,方法的线性范围为10~100 μg/kg,平均回收率为62.4%~102%,相对标准偏差为1.4%~11.9%。该方法简便、快速、准确,各项技术指标满足国内外法规的要求,可用于鸡肉、鸡肝和鱼肉等动物组织样品中喹诺酮类药物多残留的确证检测。  相似文献   

8.
建立了牛奶和奶粉中卡巴氧代谢物喹喔啉-2-羧酸(QCA)和喹乙醇代谢物3-甲基喹喔啉-2-羧酸(MQCA)残留量的液相色谱-串联质谱测定方法。将样品经0.6%(体积分数)的甲酸溶液进行消化,用Tris缓冲溶液调节pH后,加入Protease蛋白酶进行酶解,样品溶液用0.3 mol/L HCl溶液酸化后,采用阴离子交换固相萃取柱Oasis MAX进行净化和富集。分析样品以0.1%(体积分数)的甲酸溶液-甲醇-乙腈为流动相,经Inertsil ODS-3色谱柱分离,采用负离子扫描,在LC-MS/MS多反应监测模式下进行定性及定量分析。喹口恶啉-2-羧酸和3-甲基喹口恶啉-2-羧酸的方法测定下限牛奶为0.5μg/kg,奶粉为4.0μg/kg。对牛奶在0.5~5.0μg/kg,奶粉在4.0~40.0μg/kg添加水平的平均回收率为68.2%~82.5%,RSD为3.4%~12%。  相似文献   

9.
赵娜  梁嘉诚  时丽艳  吕运开  于丽青 《色谱》2019,37(3):313-318
分析检测有机肥料中的兽药残留对于评价土壤微生物群落和人类健康的潜在风险至关重要。该文建立了一种QuEChERS联用高效液相色谱-串联质谱(HPLC-MS/MS)同时检测有机肥料中10种氟喹诺酮类药物残留的分析方法。样品经乙二胺四乙酸二钠(Na2EDTA)-Mcllvaine缓冲溶液(pH=4.0)和乙腈提取,采用Atlantis T3 C18色谱柱(250 mm×4.6 mm,5 μm),以0.2%(体积分数)甲酸水溶液和乙腈为梯度洗脱的流动相,采用电喷雾离子(ESI)源,在多反应监测(MRM)扫描模式下进行检测。10种氟喹诺酮类药物用内标法定量。结果表明,10种氟喹诺酮类药物在10~500 μg/kg范围内线性关系良好,相关系数均大于0.9930。方法检出限为0.5~2.5 μg/kg,定量限为1.7~8.3 μg/kg。该分析方法成功应用于9个有机肥样品的兽药污染调查。结果显示,样品的平均加标回收率为82.5%~117.1%,相对标准偏差为3.4%~10.2%。该方法准确可靠、灵敏度高,能够满足多种兽药残留的同时检测,该方法有望为有机肥料兽药风险评估提供依据。  相似文献   

10.
建立并优化了同时测定牛奶中10种磺胺类、6种喹诺酮类、8种甾体激素类以及1种四环素类药物共25种兽药残留的超高效液相色谱-串联质谱检测方法。样品中目标药物经5%乙酸乙腈提取,HLB固相萃取小柱净化后,通过UPLC-MS测定,外标法定量。25种兽药在不同加标浓度下的回收率为61.6%~119.2%,组内相对标准偏差(RSD)为2.5%~13.4%,组间RSD为5.8%~14.2%,方法检出限为0.5~2.0μg/kg。  相似文献   

11.
After being hydrolyzed into corresponding hydrosoluble carboxylate by 1,1,3,3,-tetramethylguanidine (TMG), camptothecin was extracted via the aqueous two-phase systems composed of ionic liquid 1,1,3,3- tetramethylguanidinium(TMGM) carboxylate and K2CO3, and was regenerated at the final by dilute aqueous hydrochloric acid. Among the ionic liquids, TMGM benzoate showed the best effect, TMGM formate the worst, this results were consistent with the liposolubilities of different carboxylic acid components in the ionic liquids. Through two-step extraction of TMGM benzoate ionic liquid/K2CO3 aqueous two-phase under a favorable condition, camptothecin was obtained in a purity of 98.3% and a total yield of 85.1%, from the crude camptothecin extract with a purity of 14.2%.  相似文献   

12.
利用离子液体双水相萃取-高效液相色谱(HPLC)法测定了水中痕量氯酚类内分泌干扰物.以2,4-二氯酚(2,4-DCP)、2,6-二氯酚(2,6-DCP)和对氯苯酚(4-CP)为目标分析物,考察了影响离子液体双水相萃取率的主要因素,如分相盐的浓度、水相pH值、萃取时间及离子液体加人量.当NaH2PO4的浓度为0.5 g/...  相似文献   

13.
研究离子液体的分离与回收对于减少离子液体对环境的影响、提高离子液体的利用效率、降低离子液体的应用成本、促进离子液体的工业应用具有重要的意义.本文重点综述了利用无机盐-离子液体双水相、糖-离子液体双水相、聚合物-离子液体双水相和CO2诱导的离子液体双水相技术分离回收离子液体的研究进展,分析了影响离子液体分离回收的关键因素,评价了不同离子液体双水相体系的优缺点,展望了该领域的发展方向及面临的挑战.  相似文献   

14.
基于小分子醇双水相体系和离子液体双水相体系,建立了正丙醇与亲水性离子液体1-丁基-3-甲基咪唑四氟硼酸[Bmim]BF4和(NH4)2SO4形成的二元双水相体系萃取盐酸多西环素的新方法。考察了(NH4)2SO4含量、正丙醇用量、pH值、离子液体含量以及盐酸多西环素含量对盐酸多西环素分配行为的影响。结果表明:当醇和离子液体二元双水相体系的pH值在4.0~5.0范围内,(NH4)2SO4含量为34%,且盐酸多西环素的质量浓度在25~95 mg/L之间时,该体系对盐酸多西环素的萃取率可达90.26%~95.71%,分配系数可达62.452~149.401。  相似文献   

15.
将亲水性离子液体氯化-1-丁基-3-甲基咪唑([C4mim]Cl)和K2HPO4形成的双水相体系与溶剂浮选结合,建立了分离/富集桑黄中总黄酮类成分的方法。考察了分相盐的种类和用量、样品量、溶液pH值、浮选时间和氮气流速对浮选效果的影响,并与双水相萃取进行比较。当浮选分相盐K2HPO4的质量浓度为50%、溶液pH=9.53、离子液体的用量为3 mL、浮选时间为50 min、氮气流速为30 mL/min时,浮选效率最佳,达到85.31%,富集倍数为8.59。离子液体双水相溶剂浮选法浮选效率高,富集倍数大,为中草药有效成分分离/富集提供了新方法。  相似文献   

16.
A series of novel cationic functional hexaalkylguanidinium ionic liquids and anionic functional tetraalkylguanidinium ionic liquids have been devised and synthesized based on 1,1,3,3-tetramethylguanidine. The structures of the ionic liquids (ILs) were confirmed by 1H nuclear magnetic resonance (1H NMR) and 13C nuclear magnetic resonance (13C NMR) and the production yields were all above 90%. Functional guanidinium ionic liquid aqueous two-phase systems (FGIL-ATPSs) have been first designed with these functional guanidinium ILs and phosphate solution for the purification of protein. After phase separation, proteins had transferred into the IL-rich phase and the concentrations of proteins were determined by measuring the absorbance at 278 nm using an ultra violet visible (UV–vis) spectrophotometer. The advantages of FGIL-ATPSs were compared with ordinary ionic liquid aqueous two-phase systems (IL-ATPSs). The proposed FGIL-ATPS has been applied to purify lysozyme, trypsin, ovalbumin and bovine serum albumin. Single factor experiments were used to research the effects of the process, such as the amount of ionic liquid (IL), the concentration of salt solution, temperature and the amount of protein. The purification efficiency reaches to 97.05%. The secondary structure of protein during the experimental process was observed upon investigation using UV–vis spectrophotometer, Fourier-transform infrared spectroscopy (FT-IR) and circular dichroism spectrum (CD spectrum). The precision, stability and repeatability of the process were investigated. The mechanisms of purification were researched by dynamic light scattering (DLS), determination of the conductivity and transmission electron microscopy (TEM). It was suggested that aggregation and embrace phenomenon play a significant role in the purification of proteins. All the results show that FGIL-ATPSs have huge potential to offer new possibility in the purification of proteins.  相似文献   

17.
Han J  Wang Y  Yu C  Li C  Yan Y  Liu Y  Wang L 《Analytica chimica acta》2011,(2):138-145
Ionic liquid–salt aqueous two-phase flotation (ILATPF) is a novel, green, non-toxic and sensitive samples pretreatment technique. ILATPF coupled with high-performance liquid chromatography (HPLC) was developed for the analysis of chloramphenicol, which combines ionic liquid aqueous two-phase system (ILATPS) based on imidazolium ionic liquid (1-butyl-3-methylimidazolium chloride, [C4mim]Cl) and inorganic salt (K2HPO4) with solvent sublation. In ILATPF systems, phase behaviors of the ILATPF were studied for different types of ionic liquids and salts. The sublation efficiency of chloramphenicol in [C4mim]Cl–K2HPO4 ILATPF was influenced by the types of salts, concentration of K2HPO4 in aqueous solution, solution pH, nitrogen flow rate, sublation time and the amount of [C4mim]Cl. Under the optimum conditions, the average sublation efficiency is up to 98.5%. The mechanism of ILATPF contains two principal processes. One is the mechanism of IL–salt ILATPS formation, the other is solvent sublation. This method was practical when applied to the analysis of chloramphenicol in lake water, feed water, milk, and honey samples with the linear range of 0.5–500 ng mL−1. The method yielded limit of detection (LOD) of 0.1 ng mL−1 and limit of quantification (LOQ) of 0.3 ng mL−1. The recovery of CAP was 97.1–101.9% from aqueous samples of environmental and food samples by the proposed method. Compared with liquid–liquid extraction, solvent sublation and ionic liquid aqueous two-phase extraction, ILATPF can not only separate and concentrate chloramphenicol with high sublation efficiency, but also efficiently reduce the wastage of IL. This novel technique is much simpler and more environmentally friendly and is suggested to have important applications for the concentration and separation of other small biomolecules.  相似文献   

18.
利用溴化1-丁基-3-甲基咪唑离子液体/碳酸钠溶液双水相体系,实现了多相层流液液萃取.以具有较高折射率的离子液体为液芯,较低折射率的盐溶液为包层,实现了液液波导吸光度检测.据此建立了一种液液萃取与液液波导检测集成化的微流控分析系统.该系统对甲酚红试样的萃取率在93%以上,对甲酚红试样检测的线性范围为0.01~0.40 mg/m L,相对标准偏差为3.4%(n=11),检出限为3.8μg/m L(3σ).该系统将萃取分离与液液波导长光程吸光度检测集成在一起,为拓展吸光度检测在微流控系统中的应用提供了新思路.  相似文献   

19.
A new analytical temperature-assisted ionic liquid-based dispersive liquid–liquid microextraction (TA-IL-DLLME) method was developed for glyphosate and aminomethylphosphonic acid determination in water samples. Extracted analytes were derivatized using 9-fluoroenylmethylchloroformate and quantified by liquid chromatography with fluorescence detection. For the TA-IL-DLLME method, two strategies for phase solubilization were evaluated; in approach 1, the ionic liquid and aqueous matrix sample were mixed and then heated, while in approach 2, the aqueous sample was first heated and then the ionic liquid was injected. For both approaches, optimization included parameters that significantly affect extraction efficiency: ionic liquid type and volume, solubilization temperature and time, cooling and centrifugation time. Among the evaluated ionic liquids, 1-decyl-3-methylimidazolium tetrafluoroborate showed the best performance for TA-IL-DLLME and was selected for the two solubilization approaches; with approach 2, slightly better results were obtained. Thus, sample analyses were performed using a procedure based on approach 2. An important matrix effect, attributed to the presence of salts and metals in real water samples was observed. Sample acidification before derivatization allowed this problem to diminish, with recoveries ranging from 75 and 99%, and enrichment factors between 57 and 76 for target analytes.  相似文献   

20.
An ionic liquid/aqueous two-phase system based on the hydrophilic ionic liquid 1-butyl-3-methylimidazolium chloride (BmimCl) and K(2)HPO(4) has been employed for direct extraction of proteins from human body fluids for the first time. Proteins present at low levels were quantitatively extracted into the BmimCl-rich upper phase with a distribution ratio of about 10 between the upper and lower phase and an enrichment factor of 5. Addition of an appropriate amount of K(2)HPO(4) to the separated upper phase results in a further phase separation, giving rise to an improved enrichment factor of 20. FTIR and UV spectroscopy demonstrated that no chemical (bonding) interactions between the ionic liquid and the protein functional groups were identifiable, while no alterations of the natural properties of the proteins were observed. The partitioning of proteins in the two-phase system was assumed to have been facilitated by the electrostatic potential difference between the coexisting phases, as well as by salting out effects. The system could be applied successfully for the quantification of proteins in human urine after on-line phase separation in a flow system. The use of an ionic liquid, as a green solvent, offers clear advantages over traditional liquid-liquid extractions, in which the use of toxic organic solvents is unavoidable.  相似文献   

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