Diano A, Peeters J, Dynesen J, Nielsen J
Center for Microbial Biotechnology, Technical University of Denmark, DK-2800 Kgs. Lyngby, Denmark.
Biotechnol Bioeng. 2009 Aug 1;103(5):956-65. doi: 10.1002/bit.22329.
In industrial production of enzymes using the filamentous fungus Aspergillus niger supply of sufficient oxygen is often a limitation, resulting in the formation of by-products such as polyols. In order to identify the mechanisms behind formation of the different by-products we studied the effect of low oxygen availability, at different carbon source concentrations and at different specific growth rates, on the metabolism of A. niger, using continuous cultures. The results show that there is an increase in the production of tricarboxylic acid (TCA) cycle intermediates at low oxygen concentrations. Indeed, at these conditions, a decrease in the mitochondrial respiratory chain activity leads to an accumulation of NADH and to a decreased ATP production which uncouples catabolism and anabolism, influences the intracellular pH and leads to production and excretion of organic acids. Moreover, mannitol is being produced in order to ensure reoxidation of NADH, and this is the main cellular response to balance the ratio NADH/NAD at low oxygen availability. Mannitol production is also coupled to low specific growth rate, which suggests a control of carbon catabolite repression on the mannitol pathway. The roles of two other polyols, erythritol and glycerol, were also investigated. Both compounds are known to accumulate intracellularly, at high osmotic pressure, in order to restore the osmotic balance, but we show that the efficiency of this system is affected by a leakage of polyols through the membrane.
在利用丝状真菌黑曲霉进行酶的工业生产中,充足氧气的供应常常是一个限制因素,这会导致如多元醇等副产物的形成。为了确定不同副产物形成背后的机制,我们使用连续培养法,研究了在不同碳源浓度和不同比生长速率下,低氧可用性对黑曲霉代谢的影响。结果表明,在低氧浓度下三羧酸(TCA)循环中间体的产量会增加。确实,在这些条件下,线粒体呼吸链活性的降低会导致NADH的积累和ATP产量的下降,从而使分解代谢和合成代谢解偶联,影响细胞内pH值,并导致有机酸的产生和排泄。此外,为了确保NADH的再氧化会产生甘露醇,这是细胞在低氧可用性下平衡NADH/NAD比例的主要反应。甘露醇的产生也与低比生长速率相关,这表明碳分解代谢物阻遏对甘露醇途径有调控作用。还研究了另外两种多元醇赤藓糖醇和甘油的作用。已知这两种化合物在高渗透压下会在细胞内积累以恢复渗透平衡,但我们发现该系统的效率会受到多元醇通过膜泄漏的影响。