Department of Biochemical Engineering and Biotechnology, Indian Institute of Technology, Hauz Khas, New Delhi - 110 016, India.
Microb Biotechnol. 2012 Jan;5(1):18-33. doi: 10.1111/j.1751-7915.2011.00280.x. Epub 2011 Aug 24.
Developments in biocatalysis have been largely fuelled by consumer demands for new products, industrial attempts to improving existing process and minimizing waste, coupled with governmental measures to regulate consumer safety along with scientific advancements. One of the major hurdles to application of biocatalysis to chemical synthesis is unavailability of the desired enzyme to catalyse the reaction to allow for a viable process development. Even when the desired enzyme is available it often forces the process engineers to alter process parameters due to inadequacies of the enzyme, such as instability, inhibition, low yield or selectivity, etc. Developments in the field of enzyme or reaction engineering have allowed access to means to achieve the ends, such as directed evolution, de novo protein design, use of non-conventional media, using new substrates for old enzymes, active-site imprinting, altering temperature, etc. Utilization of enzyme discovery and improvement tools therefore provides a feasible means to overcome this problem. Judicious employment of these tools has resulted in significant advancements that have leveraged the research from laboratory to market thus impacting economic growth; however, there are further opportunities that have not yet been explored. The present review attempts to highlight some of these achievements and potential opportunities.
生物催化的发展在很大程度上受到消费者对新产品的需求、工业上改进现有工艺和减少浪费的努力、政府管理消费者安全的措施以及科学进步的推动。将生物催化应用于化学合成的主要障碍之一是缺乏所需的酶来催化反应,从而无法进行可行的工艺开发。即使有可用的目标酶,由于酶的不稳定性、抑制作用、低产率或选择性等缺陷,它也常常迫使工艺工程师改变工艺参数。酶或反应工程领域的发展为实现目标提供了途径,例如定向进化、从头蛋白质设计、使用非常规介质、为旧酶使用新底物、活性位点印迹、改变温度等。因此,利用酶的发现和改进工具为克服这一问题提供了可行的手段。明智地利用这些工具已经取得了重大进展,这些进展利用了从实验室到市场的研究,从而推动了经济增长;然而,还有一些尚未开发的机会。本综述试图强调其中的一些成就和潜在机会。