S Rajesh, Swaraj Jathar, Reema Banarjee, Monika Sharma, Shivani Palkar, S Shiva Shankar, Mahesh J Kulkarni
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The extracted proinsulin inclusion bodies are treated with different concentrations of urea, followed by a freeze-thaw based solubilization. The freezing was carried out at various temperatures, mainly -80 °C, -20 °C, and -196 °C to determine the optimum condition for solubilization. Highest solubilization of proinsulin from the inclusion body was achieved with 0.5M urea and -20 °C. Further Nickel NTA-based purification was performed, and the purified protein was characterized for disulfide mapping by high-resolution mass spectrometer (HRMS). We also performed glucose uptake assays to validate the functional properties of purified proinsulin. 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引用次数: 0
摘要
胰岛素是一种关键的肽类激素,对调节葡萄糖稳态至关重要。人们认识它已有 100 多年的历史,但其生产和纯化方法仍在改进之中。胰岛素的生产主要使用基于大肠杆菌的细菌表达系统。在细菌中表达的人胰岛素蛋白通常会形成包涵体,从而使纯化过程复杂化。传统上,胰岛素的纯化是一个耗时的过程,包括基于尿素的变性方法和各种重折叠技术,然后是大量的层析方法。在此,我们报告了一种简单高效的人胰岛素纯化方法,即基于冻融的溶解法。用不同浓度的尿素处理提取的脯胰岛素包涵体,然后进行冻融增溶。冷冻在不同温度下进行,主要是-80℃、-20℃和-196℃,以确定最佳溶解条件。在 0.5M 尿素和 -20°C 条件下,包涵体中胰蛋白酶的溶解度最高。我们进一步进行了基于 NTA 的镍纯化,并利用高分辨质谱仪(HRMS)对纯化蛋白质的二硫化物图谱进行了表征。我们还进行了葡萄糖摄取试验,以验证纯化的脯胰岛素的功能特性。这种基于冻融的温和增溶方法是获得具有生物活性的胰岛素的一种快速有效的方法,有助于进一步设计更好的胰岛素生产纯化和加工策略。
A simple freeze-thaw based method for efficient purification of recombinant human proinsulin from inclusion bodies.
Insulin is a pivotal peptide hormone essential for regulating glucose homeostasis. It has been known for over 100 years, but its production and purification methods are still under improvement. Escherichia coli based bacterial expression system is primarily used for insulin production. The human insulin protein expressed in bacteria usually forms inclusion bodies, complicating the purification process. Traditionally, insulin purification is a time-consuming process involving urea-based denaturation methods, and various refolding techniques, followed by extensive chromatographic methods. Here, we report an easy and efficient purification of human proinsulin involving freeze-thaw based solubilization method. The extracted proinsulin inclusion bodies are treated with different concentrations of urea, followed by a freeze-thaw based solubilization. The freezing was carried out at various temperatures, mainly -80 °C, -20 °C, and -196 °C to determine the optimum condition for solubilization. Highest solubilization of proinsulin from the inclusion body was achieved with 0.5M urea and -20 °C. Further Nickel NTA-based purification was performed, and the purified protein was characterized for disulfide mapping by high-resolution mass spectrometer (HRMS). We also performed glucose uptake assays to validate the functional properties of purified proinsulin. This freeze-thaw based mild solubilization approach is a fast and effective method for getting bioactive proinsulin, which will help further design better purification and processing strategies for insulin production.
期刊介绍:
Protein Expression and Purification is an international journal providing a forum for the dissemination of new information on protein expression, extraction, purification, characterization, and/or applications using conventional biochemical and/or modern molecular biological approaches and methods, which are of broad interest to the field. The journal does not typically publish repetitive examples of protein expression and purification involving standard, well-established, methods. However, exceptions might include studies on important and/or difficult to express and/or purify proteins and/or studies that include extensive protein characterization, which provide new, previously unpublished information.