Faculty of Chemical Engineering and Technology, University of Zagreb, Marulićev trg 19, 10000, Zagreb, Croatia,
Appl Biochem Biotechnol. 2013 Dec;171(8):2273-84. doi: 10.1007/s12010-013-0495-5. Epub 2013 Sep 17.
Hexanal and hexanoic acid have number of applications in food and cosmetic industry because of their organoleptic characteristics. Problems like low yields, formation of unwanted by-products, and large quantities of waste in their traditional production processes are the reasons for developing new production methods. Biotransformation in a microreactor, as an alternative to classical synthesis processes, is being investigated. Because conditions in microreactors can be precisely controlled, the quality of the product and its purity can also be improved. Biocatalytic oxidation of hexanol to hexanal and hexanoic acid using suspended and immobilized permeabilized whole baker's yeast cells and suspended and immobilized purified alcohol dehydrogenase (ADH) was investigated in this study. Three different methods for covalent immobilization of biocatalyst were analyzed, and the best method for biocatalyst attachment on microchannel wall was used in the production of hexanal and hexanoic acid.
己醛和己酸由于其感官特性,在食品和化妆品行业有多种应用。由于传统生产工艺中存在产量低、副产物生成、大量废物等问题,因此需要开发新的生产方法。微反应器中的生物转化作为经典合成工艺的替代方法正在被研究。由于微反应器中的条件可以精确控制,因此可以提高产品的质量和纯度。本研究采用悬浮和固定化透化全酵母细胞以及悬浮和固定化纯化醇脱氢酶(ADH),对己醇生物催化氧化为己醛和己酸进行了研究。分析了三种不同的酶固定化方法,并在己醛和己酸的生产中使用了最佳的生物催化剂附着在微通道壁上的方法。