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聚苹果酸和苹果酸的发酵生产和酸水解 Aureobasidium pullulans。

Production of polymalic acid and malic acid by Aureobasidium pullulans fermentation and acid hydrolysis.

机构信息

College of Pharmaceutical Sciences, Southwest University, Chongqing, P.R. China.

出版信息

Biotechnol Bioeng. 2013 Aug;110(8):2105-13. doi: 10.1002/bit.24876. Epub 2013 Mar 16.

Abstract

Malic acid is a dicarboxylic acid widely used in the food industry and also a potential C4 platform chemical that can be produced from biomass. However, microbial fermentation for direct malic acid production is limited by low product yield, titer, and productivity due to end-product inhibition. In this work, a novel process for malic acid production from polymalic acid (PMA) fermentation followed by acid hydrolysis was developed. First, a PMA-producing Aureobasidium pullulans strain ZX-10 was screened and isolated. This microbe produced PMA as the major fermentation product at a high-titer equivalent to 87.6 g/L of malic acid and high-productivity of 0.61 g/L h in free-cell fermentation in a stirred-tank bioreactor. Fed-batch fermentations with cells immobilized in a fibrous-bed bioreactor (FBB) achieved the highest product titer of 144.2 g/L and productivity of 0.74 g/L h. The fermentation produced PMA was purified by adsorption with IRA-900 anion-exchange resins, achieving a ∼100% purity and a high recovery rate of 84%. Pure malic acid was then produced from PMA by hydrolysis with 2 M sulfuric acid at 85°C, which followed the first-order reaction kinetics. This process provides an efficient and economical way for PMA and malic acid production, and is promising for industrial application.

摘要

苹果酸是一种广泛应用于食品工业的二羧酸,也是一种潜在的 C4 平台化学品,可以从生物质中生产。然而,由于终产物抑制,微生物发酵直接生产苹果酸的产量、浓度和生产率都受到限制。在这项工作中,开发了一种从聚苹果酸(PMA)发酵后进行酸水解生产苹果酸的新工艺。首先筛选并分离出一株产 PMA 的出芽短梗霉 ZX-10 菌株。该微生物在搅拌罐生物反应器中的游离细胞发酵中以高浓度(相当于 87.6 g/L 苹果酸)和高生产率(0.61 g/L/h)产生 PMA 作为主要发酵产物。在纤维床生物反应器(FBB)中固定化细胞的分批补料发酵达到了最高产物浓度 144.2 g/L 和最高生产率 0.74 g/L/h。发酵产生的 PMA 通过 IRA-900 阴离子交换树脂吸附进行纯化,达到了约 100%的纯度和 84%的高回收率。然后,用 2 M 硫酸在 85°C 下将 PMA 水解为纯苹果酸,遵循一级反应动力学。该工艺为 PMA 和苹果酸的生产提供了一种高效、经济的方法,具有广阔的工业应用前景。

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