Dong Yongsheng, Jiang Hua
School of Bioengineering, Shandong Provincial Key Laboratory of Microbial Engineering, Qilu University of Technology, Jinan, 250353, Shandong, People's Republic of China.
College of Food Science and Engineering, Qilu University of Technology, Jinan, 250353, Shandong, People's Republic of China.
World J Microbiol Biotechnol. 2016 Nov;32(11):178. doi: 10.1007/s11274-016-2136-y. Epub 2016 Sep 15.
High environmental pressure exerts an external stress on the survival of microorganisms that are commonly found under normal pressure. In response, many growth traits alter, including cell morphology and physiology, cellular structure, metabolism, physical and chemical properties, the reproductive process, and defense mechanisms. The high-pressure technology (HP) has been industrially utilized in pressurized sterilization, synthesis of stress-induced products, and microbial/enzymatic transformation of chemicals. This article reviews current research on pressure-induced production of metabolites in normal-pressure microbes and their enzymatic reactions. Factors that affect the production of such metabolites are summarized, as well as the effect of pressure on the performance of microbial fermentation and the yield of flavoring compounds, different categories of induced enzymatic reactions and their characteristics in the supercritical carbon dioxide fluid, effects on enzyme activity, and the selection of desirable bacterial strains. Technological challenges are discussed, and future research directions are proposed. Information presented here will benefit the research, development, and application of the HP technology to improve microbial fermentation and enzymatic production of biologically active substances, thereby help to meet their increasing demand from the ever-expanding market.
高环境压力对常压下常见的微生物生存施加外部压力。作为回应,许多生长特性会发生改变,包括细胞形态和生理、细胞结构、新陈代谢、物理和化学性质、繁殖过程以及防御机制。高压技术(HP)已在工业上用于加压灭菌、应激诱导产物的合成以及化学品的微生物/酶转化。本文综述了当前关于常压微生物中压力诱导代谢产物产生及其酶促反应的研究。总结了影响此类代谢产物产生的因素,以及压力对微生物发酵性能和调味化合物产量的影响、不同类型的诱导酶促反应及其在超临界二氧化碳流体中的特性、对酶活性的影响以及理想菌株的选择。讨论了技术挑战,并提出了未来的研究方向。本文提供的信息将有利于高压技术的研究、开发和应用,以改善微生物发酵和生物活性物质的酶促生产,从而有助于满足不断扩大的市场对它们日益增长的需求。