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Enhancement of ethanol production in very high gravity fermentation by reducing fermentation-induced oxidative stress in Saccharomyces cerevisiae

机译:通过降低酿酒酵母中发酵诱导的氧化应激,提高超高重力发酵中乙醇的产量

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During fermentation, yeast cells encounter a number of stresses, including hyperosmolarity, high ethanol concentration, and high temperature. Previous deletome analysis in the yeast Saccharomyces cerevisiae has revealed that SOD1 gene encoding cytosolic Cu/Zn-superoxide dismutase (SOD), a major antioxidant enzyme, was required for tolerances to not only oxidative stress but also other stresses present during fermentation such as osmotic, ethanol, and heat stresses. It is therefore possible that these fermentation-associated stresses may also induce endogenous oxidative stress. In this study, we show that osmotic, ethanol, and heat stresses promoted generation of intracellular reactive oxygen species (ROS) such as superoxide anion in the cytosol through a mitochondria-independent mechanism. Consistent with this finding, cytosolic Cu/Zn-SOD, but not mitochondrial Mn-SOD, was required for protection against oxidative stress induced by these fermentation-associated stresses. Furthermore, supplementation of ROS scavengers such as N-acetyl-L-cysteine (NAC) alleviated oxidative stress induced during very high gravity (VHG) fermentation and enhanced fermentation performance at both normal and high temperatures. In addition, NAC also plays an important role in maintaining the Cu/Zn-SOD activity during VHG fermentation. These findings suggest the potential role of ROS scavengers for application in industrial-scale VHG ethanol fermentation.
机译:在发酵过程中,酵母细胞会遇到许多压力,包括高渗,高乙醇浓度和高温。先前在酿酒酵母中进行的缺失基因组分析表明,编码胞质Cu / Zn-超氧化物歧化酶(SOD)(一种主要的抗氧化酶)的SOD1基因不仅需要耐受氧化应激,而且还需要耐受发酵过程中存在的其他应激(如渗透压,乙醇和热应激。因此,这些与发酵相关的应激也可能诱发内源性氧化应激。在这项研究中,我们表明渗透,乙醇和热应力通过线粒体独立的机制促进细胞溶质中细胞内活性氧(ROS)的生成,例如超氧阴离子。与该发现一致的是,需要细胞质的Cu / Zn-SOD而不是线粒体的Mn-SOD来抵抗由这些与发酵相关的应激所引起的氧化应激。此外,补充ROS清除剂(例如N-乙酰基-L-半胱氨酸(NAC))可缓解在极高重力(VHG)发酵过程中引起的氧化应激,并提高了常温和高温下的发酵性能。另外,NAC在VHG发酵过程中也保持了Cu / Zn-SOD活性中也起着重要作用。这些发现表明ROS清除剂在工业规模的VHG乙醇发酵中的潜在应用。

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