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基于标记肽的超高效液相色谱-串联质谱法测定蛇毒的物种来源及类凝血酶含量

[Determination of the species origin and thrombin-like enzyme content of venom by ultra-high performance liquid chromatography-tandem mass spectrometry based on marker peptide].

作者信息

Xian Ruiqing, Hang Baojian, Gong Liping, Wang Congcong, Zhang Xunjie, Peng Li, Shi Feng

机构信息

National Medical Products Administration (NMPA) Key Laboratory for Research and Evaluation of Genetic Drugs, Shandong Institute for Food and Drug Control, Jinan 250101, China.

School of Pharmaceutical Sciences, Shandong University, Jinan 250012, China.

出版信息

Se Pu. 2022 Sep;40(9):810-816. doi: 10.3724/SP.J.1123.2021.12020.

Abstract

Snake venom thrombin drugs are hemostatic drugs prepared from venom, and the main active ingredients are snake venom thrombin-like enzymes (svTLEs). The svTLEs derived from different snake species differ in their structures, hemostatic mechanisms, and pharmacological effects. Therefore, accurate identification of the source of snake venom species and determination of the svTLE content are essential to ensure the quality of these products. Based on proteomics technology, the marker peptides of svTLEs from were screened with species specificity for the first time in this study, and an ultra-high performance liquid chromatography-tandem mass spectrometry (UHPLC-MS/MS) method for species identification and determination of the svTLE content of was established. After reductive alkylation and trypsin enzymolysis of the purified svTLE from , enzymatic peptide fragments were obtained and determined by easy-nano liquid chromatography-quadrupole/electrostatic field orbitrap high resolution mass spectrometry (Nano LC-Q-Exactive-MS). The mass spectrum data were analyzed by Proteome Discoverer 2.2 software. The maker peptide "EAYNGLPAK", which characterized the svTLE from , was finally screened and validated by comparison of the basic local alignment search tool (BLAST) with the NCBI and UniProt databases. For the marker peptide, the enzymolysis temperature, enzymolysis time and amount of enzyme for the sample preparation were optimized. The optimized enzymolysis conditions were as follows: enzymolysis temperature, 37 ℃; enzymolysis time, 4 h; and amount of enzyme, 10 μL. A qualitative and quantitative detection method based on UHPLC-MS/MS was established by optimizing the chromatographic and mass spectrometric conditions. Accordingly, 20 mg of the evenly mixed sample was weighed and placed in a 100 mL volumetric flask. Then, 25 mmol/L ammonium bicarbonate solution was added to dissolve the sample, and the solution was diluted to the scale. Precisely 1.00 mL of the solution was extracted; subsequently, addition of 10 μL trypsin solution was added, followed by shaking, and the mixture was placed in an incubator for 4 h to induce enzymolysis at a constant temperature of 37 ℃. The mixture was subsequently removed from the incubator, cooled to ambient temperature, centrifuged at 12000 r/min for 10 min, and analyzed by LC-MS. Separation was performed on the UPLC system with a Thermo Hypersil GOLD C18 column (100 mm×2.1 mm, 3.0 μm) under the gradient elution of acetonitrile containing 0.1% (v/v) acetic acid and water containing 0.1%(v/v) acetic acid, at a flow rate of 0.3 mL/min, column temperature of 30 ℃, and injection volume of 2 μL. The maker peptides were determined in the electrospray positive ionization (ESI) and multiple reaction monitoring (MRM) modes using the external standard curve method. The detection ions were 481.9> 315.2 and 481.9> 485.2. There was a good linear relationship between the mass concentration of the marker peptide and the chromatographic peak area in the range of 2.5-30 ng/mL, and the correlation coefficient () was 0.9996, The limit of detection (=3) and limit of quantification (=10) were 2.5 mg/kg and 6.25 mg/kg, respectively. At spiked levels of 40, 80, and 120 mg/kg, the recoveries of the marker peptides were 95.5%-101.9%, while the relative standard deviations (RSDs) of the results for parallel analyses at various spiked levels were 1.1%-3.2%. The developed method is simple, rapid, sensitive, and specific, and it can be used for the identification of venom species and determination of the svTLE content. The findings of this study would help ensure the quality of hemocoagulase products from the relevant source and provide a reference for the quality control of other snake venom products.

摘要

蛇毒凝血酶类药物是从蛇毒中制备的止血药物,其主要活性成分是蛇毒类凝血酶(svTLEs)。不同蛇种来源的svTLEs在结构、止血机制和药理作用方面存在差异。因此,准确鉴定蛇毒种类来源并测定svTLE含量对于确保这些产品的质量至关重要。本研究首次基于蛋白质组学技术筛选出具有种属特异性的svTLEs标记肽段,并建立了一种用于蛇毒种类鉴定及svTLE含量测定的超高效液相色谱 - 串联质谱(UHPLC - MS/MS)方法。对纯化后的[蛇种名称]svTLE进行还原烷基化和胰蛋白酶酶解后,获得酶解肽段,并采用简易纳升液相色谱 - 四极杆/静电场轨道阱高分辨质谱(Nano LC - Q - Exactive - MS)进行测定。质谱数据通过Proteome Discoverer 2.2软件进行分析。最终通过与NCBI和UniProt数据库进行基本局部比对搜索工具(BLAST)比对,筛选并验证了表征[蛇种名称]svTLE的标记肽“EAYNGLPAK”。针对该标记肽,对样品制备的酶解温度、酶解时间和酶量进行了优化。优化后的酶解条件如下:酶解温度37℃;酶解时间4 h;酶量10 μL。通过优化色谱和质谱条件,建立了基于UHPLC - MS/MS的定性和定量检测方法。称取20 mg均匀混合的样品置于100 mL容量瓶中,加入25 mmol/L碳酸氢铵溶液溶解样品,并稀释至刻度。准确吸取1.00 mL该溶液,随后加入10 μL胰蛋白酶溶液,振荡后置于37℃恒温培养箱中孵育4 h进行酶解。随后将混合物从培养箱中取出,冷却至室温,以12000 r/min离心10 min,然后进行LC - MS分析。采用Thermo Hypersil GOLD C18柱(100 mm×2.1 mm,3.0 μm)在含0.1%(v/v)乙酸的乙腈和含0.1%(v/v)乙酸的水的梯度洗脱条件下,于UPLC系统上进行分离,流速为0.3 mL/min,柱温30℃,进样量2 μL。采用外标曲线法在电喷雾正离子化(ESI)和多反应监测(MRM)模式下测定标记肽。检测离子为481.9>315.2和481.9>485.2。标记肽质量浓度在2.5 - 30 ng/mL范围内与色谱峰面积具有良好的线性关系,相关系数(r)为0.9996,检测限(LOD,S/N = 3)和定量限(LOQ)分别为2.5 mg/kg和6.25 mg/kg。在加标水平为40、80和120 mg/kg时,标记肽的回收率为95.5% - 101.9%,不同加标水平下平行分析结果的相对标准偏差(RSDs)为1.1% - 3.2%。所建立的方法简便、快速、灵敏且特异,可用于[蛇种名称]蛇毒种类鉴定及svTLE含量测定。本研究结果有助于确保相关来源的血凝酶产品质量,并为其他蛇毒产品的质量控制提供参考。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5101/9520370/a191b798cdf1/cjc-40-09-810-img_1.jpg

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