酿酒酵母合成生物异戊二烯过程中甲羟戊酸途径的分析

Q3 Agricultural and Biological Sciences
Simiat O. Jimoh, Semirah A. Sanusi, Farouq A. Olaogun, Ramot B. Badmos-Oladapo, Kifayat O. Asafa-Adedimeji
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引用次数: 0

摘要

异戊二烯通过两种互补的生物合成途径合成,即甲羟戊酸酯(MVA)途径和脱氧木酮糖磷酸途径,是一种有价值的单体,用于橡胶和其他几个化学工业。尽管最近人们对异戊二烯及其衍生物的工业和生物医学应用感兴趣,但由于温室气体的形成,控制其化学合成的复杂性是一个重大问题。为了克服生产力和产量方面的挑战,除了产生环境和经济效益外,本研究旨在将纤维素材料直接发酵为生物异戊二烯。本研究以黑曲霉11JK和酿酒酵母19KB菌株为原料,通过酶解木薯皮的生物转化过程合成了生物异戊二烯。利用水解木薯皮肉汤研究了酿酒酵母19KB菌株在生产生物异戊二烯过程中利用的甲羟戊酸(MVA)途径(合成路线)。使用气相色谱法分析所获得的粗提取物的生物异戊二烯产率和酶活性。此外,尺寸排阻色谱的结果显示,除了异戊二烯、甲戊酸(MVA)及其异构体二甲基烯丙基二磷酸(DMAPP)外,还存在多糖水解酶(例如淀粉酶和纤维素酶)和甲戊酸途径酶,包括异戊二烯合酶、甲戊酸酯-5-二磷酸脱羧酶和异戊基磷酸激酶。基于本研究的结果,使用酿酒酵母19KB菌株通过直接发酵廉价而丰富的碳源(如木薯皮)合成生物异戊二烯,将克服生物异戊二烯的高生产成本和低产量挑战,从而产生显著的环境和经济效益。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mevalonate pathway analysis of Saccharomyces cerevisiae during bioisoprene synthesis
Isoprene, synthesized through two complementary biosynthetic routes known as the mevalonate (MVA) pathway and the deoxy-xylulose phosphate pathway, is a valuable monomer that is used for rubber and several other chemical industries. Despite the recent interest in the industrial and biomedical applications of isoprene and its derivatives, the complexity of controlling its chemical synthesis due to the formation of greenhouse gases is a significant problem. To overcome the productivity and yield challenges, in addition to generating environmental and economic benefits, this study aimed to focus on the direct fermentation of cellulosic materials into bioisoprene. In this study, bioisoprene was synthesized via a biotransformation process through enzymatic hydrolysis of cassava peel using Aspergillus niger 11JK and Saccharomyces cerevisiae 19KB strain. The mevalonate (MVA) pathway (synthetic route) exploited during bioisoprene production by S. cerevisiae 19KB strain was investigated using the hydrolyzed cassava peel broth. The obtained crude extract was analyzed for bioisoprene yield and enzymatic activities using Gas chromatography. Furthermore, results of the size exclusion chromatography revealed the presence of polysaccharide hydrolyzing enzymes (e.g., amylase and cellulase), and mevalonate pathway enzymes, including isoprene synthase, mevalonate-5-diphosphate decarboxylase, and isopentyl phosphate kinase, in addition to isoprene, mevalonic acid (MVA), and its isomer dimethylallyl diphosphate (DMAPP). Based on the results obtained in this study, bioisoprene synthesis via direct fermentation of cheap and abundant carbon sources such as cassava peel using the S. cerevisiae 19KB strain will overcome the high production costs and low yield challenges of bioisoprene, thus generating significant environmental and economic benefits.
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来源期刊
CiteScore
1.40
自引率
0.00%
发文量
16
审稿时长
4 weeks
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