Key Laboratory of Eutrophication and Red Tide Prevention of Guangdong Higher Education Institutes, College of Life Science and Technology, Jinan University, Guangzhou 510632, China.
Department of Computational Medicine and Bioinformatics, University of Michigan, Ann Arbor, MI, 48109, USA.
Sci Adv. 2019 Jan 30;5(1):eaau3795. doi: 10.1126/sciadv.aau3795. eCollection 2019 Jan.
Commercialization of algal lipids and biofuels is still impractical owing to the unavailability of lipogenic strains and lack of economically viable oil extraction strategies. Because lipogenesis is governed by multiple factors, success in generating industrial-suitable algal strains using conventional strategies has been limited. We report the discovery of a novel bZIP1 transcription factor, NobZIP1, whose overexpression results in a remarkable elevation of lipid accumulation and lipid secretion in a model microalga , without impairing other physiological properties. Chromatin immunoprecipitation-quantitative PCR analysis revealed that the key genes up- and down-regulated by NobZIP1 are involved in lipogenesis and cell wall polymer synthesis, respectively, which, in turn, induce lipid overproduction and secretion. Among these regulated genes, UDP-glucose dehydrogenase was shown to alter cell wall composition, thus also boosting lipid secretion. In summary, these results offer a comprehensive strategy for concurrent lipid overproduction and secretion, strongly increasing the commercial potential of microalgae.
由于缺乏产脂菌株和缺乏经济可行的采油策略,藻类脂质和生物燃料的商业化仍然不切实际。由于脂肪生成受多种因素的影响,因此使用传统策略生成适合工业应用的藻类菌株的成功有限。我们报告了一种新型 bZIP1 转录因子 NobZIP1 的发现,其过表达导致模型微藻中脂质积累和脂质分泌显著增加,而不损害其他生理特性。染色质免疫沉淀定量 PCR 分析表明,NobZIP1 上调和下调的关键基因分别参与脂肪生成和细胞壁聚合物合成,这反过来又诱导脂质的过量产生和分泌。在这些受调控的基因中,UDP-葡萄糖脱氢酶被证明改变了细胞壁组成,从而也促进了脂质的分泌。总之,这些结果提供了一种同时进行脂质过量产生和分泌的综合策略,大大提高了微藻的商业潜力。