Chen Binbin, Foo Jee Loon, Ling Hua, Chang Matthew Wook
Department of Biochemistry, Yong Loo Lin School of Medicine, National University of Singapore, Singapore, Singapore.
NUS Synthetic Biology for Clinical and Technological Innovation (SynCTI), National University of Singapore, Singapore, Singapore.
Front Bioeng Biotechnol. 2020 Aug 20;8:965. doi: 10.3389/fbioe.2020.00965. eCollection 2020.
Lipoic acid is a valuable organosulfur compound used as an antioxidant for dietary supplementation, and potentially anti-diabetic and anti-cancer. Currently, lipoic acid is obtained mainly through chemical synthesis, which requires toxic reagents and organic solvents, thus causing environmental issues. Moreover, chemically synthesized lipoic acid is conventionally a racemic mixture. To obtain enantiomerically pure -lipoic acid, which has superior bioactivity than the form, chiral resolution and asymmetric synthesis methods require additional reagents and solvents, and often lead to wastage of -lipoic acid or precursors with undesired chirality. Toward sustainable production of -lipoic acid, we aim to develop a synthetic biology-based method using engineered yeast. Here, we deepened mechanistic understanding of lipoic acid biosynthesis and protein lipoylation in the model yeast to facilitate metabolic engineering of the microbe for producing free -lipoic acid. In brief, we studied the biosynthesis and confirmed the availability of protein-bound lipoate in yeast cells through LC-MS/MS. We then characterized the activity of a lipoamidase from for releasing free -lipoic acid from lipoate-modified yeast proteins. Overexpression of the lipoamidase in yeast mitochondria enabled free -lipoic acid production in vivo. By overexpressing pathway enzymes and regenerating the cofactor, the production titer was increased ∼2.9-fold. This study represents the first report of free -lipoic acid biosynthesis in . We envision that these results could provide insights into lipoic acid biosynthesis in eukaryotic cells and drive development of sustainable -lipoic acid production.
硫辛酸是一种有价值的有机硫化合物,用作膳食补充剂的抗氧化剂,可能具有抗糖尿病和抗癌作用。目前,硫辛酸主要通过化学合成获得,这需要有毒试剂和有机溶剂,从而引发环境问题。此外,化学合成的硫辛酸通常是外消旋混合物。为了获得对映体纯的(-)-硫辛酸,其生物活性优于(+)-形式,手性拆分和不对称合成方法需要额外的试剂和溶剂,并且常常导致(+)-硫辛酸或具有不期望手性的前体的浪费。为了可持续生产(-)-硫辛酸,我们旨在开发一种基于合成生物学的方法,使用工程酵母。在这里,我们深入了解了模型酵母中硫辛酸生物合成和蛋白质硫辛酸化作用的机制,以促进微生物代谢工程生产游离(-)-硫辛酸。简而言之,我们研究了生物合成,并通过液相色谱-串联质谱法(LC-MS/MS)证实了酵母细胞中蛋白质结合硫辛酸盐的可用性。然后,我们表征了来自该酵母的硫辛酰胺酶从硫辛酸盐修饰的酵母蛋白质中释放游离(-)-硫辛酸的活性。在酵母线粒体中过表达硫辛酰胺酶能够在体内产生游离(-)-硫辛酸。通过过表达途径酶和再生辅因子,生产效价提高了约2.9倍。这项研究代表了在该酵母中游离(-)-硫辛酸生物合成的首次报道。我们设想这些结果可以为真核细胞中硫辛酸生物合成提供见解,并推动可持续(-)-硫辛酸生产的发展。