The Biorefinery Centre, Quadram Institute Bioscience, Norwich Research Park, Colney, Norwich, NR4 7UA, UK.
The Analytical Sciences Unit, Quadram Institute Bioscience, Norwich Research Park, Colney, Norwich, NR4 7UA, UK.
Sci Rep. 2017 Oct 27;7(1):14259. doi: 10.1038/s41598-017-14641-0.
In addition to ethanol, yeasts have the potential to produce many other industrially-relevant chemicals from numerous different carbon sources. However there remains a paucity of information about overall capability across the yeast family tree. Here, 11 diverse species of yeasts with genetic backgrounds representative of different branches of the family tree were investigated. They were compared for their abilities to grow on a range of sugar carbon sources, to produce potential platform chemicals from such substrates and to ferment hydrothermally pretreated rice straw under simultaneous saccharification and fermentation conditions. The yeasts differed considerably in their metabolic capabilities and production of ethanol. A number could produce significant amounts of ethyl acetate, arabinitol, glycerol and acetate in addition to ethanol, including from hitherto unreported carbon sources. They also demonstrated widely differing efficiencies in the fermentation of sugars derived from pre-treated rice straw biomass and differential sensitivities to fermentation inhibitors. A new catabolic property of Rhodotorula mucilaginosa (NCYC 65) was discovered in which sugar substrate is cleaved but the products are not metabolised. We propose that engineering this and some of the other properties discovered in this study and transferring such properties to conventional industrial yeast strains could greatly expand their biotechnological utility.
除了乙醇,酵母还有潜力从许多不同的碳源中生产许多其他工业相关的化学物质。然而,关于整个酵母家族树的整体能力的信息仍然很少。在这里,研究了 11 种具有不同遗传背景的不同酵母物种,这些背景代表了家族树的不同分支。比较了它们在一系列糖碳源上生长的能力、从这些基质中生产潜在平台化学品的能力以及在同时糖化和发酵条件下发酵水热处理的稻草的能力。这些酵母在代谢能力和乙醇生产方面存在显著差异。一些酵母除了乙醇外,还可以产生大量的乙酸乙酯、阿拉伯糖醇、甘油和乙酸,包括来自以前未报道的碳源。它们在发酵预处理后的稻草生物质衍生糖方面的效率也有很大差异,对发酵抑制剂的敏感性也不同。发现了粘红酵母(NCYC 65)的一种新的分解代谢特性,其中糖基质被切断,但产物不被代谢。我们提出,对这种特性以及本研究中发现的其他一些特性进行工程改造,并将这些特性转移到传统的工业酵母菌株中,可以极大地扩展它们的生物技术用途。