Valek Tomas, Kostelnik Adam, Valkova Pavla, Pohanka Miroslav
Faculty of Military Health Science, University of Defense, Trebesska 1575, 50001 Hradec Kralove, Czech Republic.
Faculty of Pharmacy, Charles University, Akademika Heyrovskeho 1203, 50005 Hradec Kralove, Czech Republic.
Int J Anal Chem. 2019 Dec 1;2019:8538340. doi: 10.1155/2019/8538340. eCollection 2019.
Lipases play a crucial role in metabolism of microbes, fungi, plants, and animals, and in analytical chemistry, they are often used in detection of fats and triglycerides. Determination of lipase activity is also important in toxicology, when lipase activity can be both increased and decreased by organophosphates and other pesticides and in medicine for diagnosis of heart diseases. The standard method for lipase activity determination is based on cleaving ester bonds in lipase buffer containing Tween. Our aim was to find a method with faster and more sensitive response. It is known that acetylcholinesterase belongs to the same group of hydrolases enzymes as lipases and it cleaves indoxyl acetate, so we assume indoxyl acetate could report a similar reaction with lipase. Our method is based on indoxyl acetate as a substrate for lipase, where indoxyl acetate is cleaved by lipase to indoxyl and acetate moiety and blue indigo is created. The method was optimized for different times and amount of enzyme and compared with the standard Tween assay. The calibration curve measured in reaction time 20 minutes with 10 l of lipase exhibited the best analytical parameters, and it showed Michaelis-Menten response with the Michaelis-Menten constant equal to 8.72 mmol/l. The indoxyl acetate-based method showed faster and more sensitive response than the standard method for lipase activity determination, so it has great potential in biosensor construction and it could be used in industry, medicine, toxicology, and common practice where the activity of lipases is need to be measured.
脂肪酶在微生物、真菌、植物和动物的新陈代谢中起着至关重要的作用,在分析化学中,它们常用于检测脂肪和甘油三酯。在毒理学中,脂肪酶活性的测定也很重要,因为有机磷酸酯和其他农药可使脂肪酶活性升高或降低,在医学上,脂肪酶活性测定对于心脏病的诊断也很重要。脂肪酶活性测定的标准方法是基于在含有吐温的脂肪酶缓冲液中裂解酯键。我们的目标是找到一种响应更快、更灵敏的方法。已知乙酰胆碱酯酶与脂肪酶属于同一水解酶类,它能裂解乙酸吲哚酚,因此我们推测乙酸吲哚酚可能与脂肪酶发生类似反应。我们的方法基于乙酸吲哚酚作为脂肪酶的底物,脂肪酶将乙酸吲哚酚裂解为吲哚酚和乙酸部分,并生成蓝色靛蓝。该方法针对不同的酶作用时间和酶量进行了优化,并与标准吐温测定法进行了比较。在反应时间为20分钟、使用10微升脂肪酶的情况下测得的校准曲线显示出最佳分析参数,呈现出米氏反应,米氏常数等于8.72毫摩尔/升。基于乙酸吲哚酚的方法在脂肪酶活性测定中比标准方法显示出更快、更灵敏的响应,因此在生物传感器构建方面具有巨大潜力,可用于需要测量脂肪酶活性的工业、医学、毒理学及常规应用中。