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Long-term protein packaging in bio-ionic liquids: Improved catalytic activity and enhanced stability of cytochrome C against multiple stresses

机译:生物离子液体中的长期蛋白质包装:提高的催化活性和增强的细胞色素C抵抗多种压力的稳定性

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摘要

There is a considerable interest in the use of structurally stable and catalytically active enzymes, such as cytochrome C (Cyt C), in the pharmaceutical and fine chemical industries. However, harsh process conditions, such as temperature, pH, and presence of organic solvents, are the major barriers to the effective use of enzymes in biocatalysis. Herein, we demonstrate the suitability of bio-based ionic liquids (ILs) formed by the cholinium cation and dicarboxylate-based anions as potential media for enzymes, in which remarkable enhanced activity and improved stability of Cyt C against multiple stresses were obtained. Among the several bio-ILs studied, an exceptionally high catalytic activity (> 50-fold) of Cyt C was observed in aqueous solutions of cholinium glutarate ([Ch][Glu]; 1g/mL) as compared to the commonly used phosphate buffer solutions (pH 7.2), and > 25-fold as compared to aqueous solutions of cholinium dihydrogen phosphate ([Ch][Dhp]; 0.5g/mL) —the best known IL for long term stability of Cyt C. The catalytic activity of the enzyme in presence of bio-ILs was retained against several external stimulus, such as chemical denaturants (H2O2 and GuHCl), and temperatures up to 120 °C. The observed enzyme activity is in agreement with its structural stability, as confirmed by UV–Vis, circular dichroism (CD), and Fourier transform infrared (FT-IR) spectroscopies. Taking advantage of the multi-ionization states of di/tri-carboxylic acids, the pH was switched from acidic to basic by the addition of the corresponding carboxylic acid and choline hydroxide, respectively. The activity was found to be maximum at a 1:1 ratio of [Ch][carboxylate], with a pH in the range from 3 to 5.5. Moreover, it was found that the bio-ILs studied herein protect the enzyme against protease digestion and allow long-term storage (at least for 21 weeks) at room temperature. An attempt by molecular docking was also made to better understand the efficacy of the investigated bio-ILs towards the enhanced activity and long term stability of Cyt C. The results showed that dicarboxylates anions interact with the active site’s amino acids of the enzyme through H-bonding and electrostatic interactions, which are responsible for the observed enhancement of the catalytic activity. Finally, it is demonstrated that Cyt C can be successfully recovered from the aqueous solution of bio-ILs and reused without compromising its yield, structural integrity and catalytic activity, thereby overcoming the major limitations in the use of IL-protein systems in biocatalysis.
机译:在制药和精细化工行业中,使用结构稳定且具有催化活性的酶(例如细胞色素C(Cyt C))引起了极大的兴趣。然而,苛刻的工艺条件,例如温度,pH值和有机溶剂的存在,是在生物催化中有效利用酶的主要障碍。在这里,我们证明了由胆碱阳离子和基于二羧酸根的阴离子形成的生物基离子液体(ILs)作为酶的潜在介质的适用性,其中获得了Cyt C显着增强的活性和提高的抗多种应力的稳定性。在研究的几种生物IL中,与常用的磷酸盐缓冲液相比,在谷氨酸胆碱([Ch] [Glu]; 1g / mL)的水溶液中观察到Cyt C的异常高的催化活性(> 50倍)溶液(pH 7.2),并且是磷酸二氢胆碱水溶液([Ch] [Dhp]; 0.5g / mL)的25倍以上,后者是Cyt C长期稳定的最著名的IL。在存在生物IL的情况下,该酶可以抵抗多种外部刺激,例如化学变性剂(H2O2和GuHCl),温度最高可达120°C。紫外-可见,圆二色性(CD)和傅立叶变换红外(FT-IR)光谱证实了所观察到的酶活性与其结构稳定性相符。利用二/三羧酸的多电离态,分别通过添加相应的羧酸和氢氧化胆碱将pH从酸性变为碱性。发现该活性在[Ch] [羧酸盐]的1:1比例下具有最大的活性,并且pH在3至5.5的范围内。此外,发现本文研究的生物IL保护酶免于蛋白酶消化,并允许在室温下长期保存(至少21周)。还进行了分子对接的尝试,以更好地理解所研究的生物IL对Cyt C的增强活性和长期稳定性的功效。结果表明,二羧酸根阴离子通过H-与酶的活性位点氨基酸相互作用。键和静电相互作用,这是观察到的催化活性增强的原因。最后,证明Cyt C可以从生物IL的水溶液中成功回收并重新使用,而不会损害其收率,结构完整性和催化活性,从而克服了在生物催化中使用IL-蛋白质系统的主要限制。

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