Chemical Engineering Department, Institute of Chemical Technology, Matunga, Mumbai 400 019, India.
Chemical Engineering Department, Institute of Chemical Technology, Matunga, Mumbai 400 019, India.
Ultrason Sonochem. 2017 Sep;38:503-529. doi: 10.1016/j.ultsonch.2017.02.028. Epub 2017 Feb 22.
Ultrasonic irradiation has recently gained attention of researchers for its process intensification in numerous reactions. Earlier ultrasound was known for its application either to deactivate enzyme activity or to disrupt the cell. However, in recent years, practice of ultrasonic irradiation began to emerge as a tool for the activation of the enzymes under mild frequency conditions. The incorporation of ultrasound in any of enzymatic reactions not only increases yield but also accelerates the rate of reaction in the presence of mild conditions with better yield and less side-products. To attain maximum yield, it is crucial to understand the mechanism and effect of sonication on reaction especially for the lipase enzyme. Thus, the influence of ultrasound irradiation on reaction yield for different parameters including temperature, enzyme concentration, mole ratio of substrates, solvents ultrasonic frequency and power was reviewed and discussed. The physical effect of cavitation determined by bubble dynamics and rate of reaction through kinetic modelling also needs to be assessed for complete investigation and scale up of synthesis. Thus, prudish utilisation of ultrasound for enzymatic synthesis can serve better future for sustainable and green chemistry.
超声辐射因其在众多反应中的强化作用,最近引起了研究人员的关注。早期,超声的应用主要是为了灭活酶活性或破坏细胞。然而,近年来,超声辐射的应用开始作为一种在温和频率条件下激活酶的工具。将超声应用于任何酶反应中,不仅可以提高产率,而且可以在温和条件下加速反应速率,同时获得更好的产率和更少的副产物。为了获得最大的产率,了解超声对反应的机制和影响,特别是对脂肪酶的影响至关重要。因此,本文综述并讨论了超声辐射对不同参数(包括温度、酶浓度、底物摩尔比、溶剂超声频率和功率)下反应产率的影响。还需要通过动力学建模评估空化的物理效应(由气泡动力学决定)和反应速率,以进行全面的研究和扩大合成规模。因此,谨慎地利用超声进行酶合成可以为可持续和绿色化学的未来提供更好的服务。