Activating de novo triacylglycerol synthesis in oleaginous yeast for improved bio-diesel quality

F. Deeba, Ruchir Priyadarshi, V. Pruthi, Y. S. Negi
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Abstract

The economic production of yeast biofuels requires several strategies, such as multiomics techniques to gain insights into lipid biosynthesis pathway. Hence, metabolomic studies for amelioration of triacylglycerol (TAG) accumulation in oleaginous yeast strain to reveal potential targets in fatty acid synthesis pathway should be explored. The aim of this research experiment was to boost TAG agglomeration in novel isolated oleaginous yeast Cryptococcus psychrotolerans IITRFD using sodium bicarbonate as supplement for biodiesel production. Enhanced biomass productivity (83.5 ± 0.32 mg/L/h) and lipid productivity (56.8 ± 0.34 mg/L/h) have been estimated as compared to yeast nitrogen base media (YNB) used as control. Also, the bicarbonate supplementation (25 mM) leads to decrease in phospholipids (23.6 %) while increase in TAG amount (75.4 %) signifying that it redirects the phospholipids synthesis pathway in the direction of de novo TAG pathway. The fatty acid profile obtained revealed rise in monounsaturated fatty acid content and decrease in polyunsaturated fatty acid content demonstrating better oxidative stability (19 h) and cold flow behaviour (- 12 °C) of biodiesel produced. This novel strategy of utilizing bicarbonate as a triggering system may possibly revamp the commercial use of C. psychrotolerans IITRFD for high quality biodiesel production. This is the first study to augment TAG accumulation in this oleaginous yeast using sodium bicarbonate with improved fuel properties.
在产油酵母中激活新合成三酰甘油以提高生物柴油品质
酵母生物燃料的经济生产需要多种策略,如多组学技术来深入了解脂质生物合成途径。因此,应该通过代谢组学研究来改善产油酵母菌株中甘油三酯(TAG)的积累,从而揭示脂肪酸合成途径中的潜在靶点。本研究的目的是利用碳酸氢钠作为生物柴油生产的补充物,促进新型耐冷隐球菌产油酵母中TAG的团聚。与对照酵母氮基培养基(YNB)相比,生物量生产力(83.5±0.32 mg/L/h)和脂质生产力(56.8±0.34 mg/L/h)得到了提高。补充碳酸氢盐(25 mM)导致磷脂含量下降(23.6%),而TAG含量增加(75.4%),这表明它将磷脂合成途径转向了de novo TAG途径。脂肪酸谱显示单不饱和脂肪酸含量增加,多不饱和脂肪酸含量减少,表明所生产的生物柴油具有更好的氧化稳定性(19 h)和冷流动性能(- 12°C)。这种利用碳酸氢盐作为触发系统的新策略可能会改变耐寒C. IITRFD的商业用途,以生产高质量的生物柴油。这是第一个使用改善燃料特性的碳酸氢钠来增加TAG在这种产油酵母中的积累的研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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