Raman Project Center for Medical and Biological Applications, Shimane University, Matsue 690-8504, Japan.
Faculty of Life and Environmental Science, Shimane University, Matsue 690-8504, Japan.
Spectrochim Acta A Mol Biomol Spectrosc. 2018 May 15;197:237-243. doi: 10.1016/j.saa.2018.02.011. Epub 2018 Feb 6.
α-lipoic acid (ALA) is an essential cofactor for many enzyme complexes in aerobic metabolism, especially in mitochondria of eukaryotic cells where respiration takes place. It also has excellent anti-oxidative properties. The acid has two stereo-isomers, R- and S- lipoic acid (R-LA and S-LA), but only the R-LA has biological significance and is exclusively produced in our body. A mutant strain of fission yeast, Δdps1, cannot synthesize coenzyme Q10, which is essential during yeast respiration, leading to oxidative stress. Therefore, it shows growth delay in the minimal medium. We studied anti-oxidant properties of ALA in its free form and their inclusion complexes with γ-cyclodextrin using this mutant yeast model. Both free forms R- and S-LA as well as 1:1 inclusion complexes with γ-cyclodextrin recovered growth of Δdps1 depending on the concentration and form. However, it has no effect on the growth of wild type fission yeast strain at all. Raman microspectroscopy was employed to understand the anti-oxidant property at the molecular level. A sensitive Raman band at 1602cm was monitored with and without addition of ALAs. It was found that 0.5mM and 1.0mM concentrations of ALAs had similar effect in both free and inclusion forms. At 2.5mM ALAs, free forms inhibited the growth while inclusion complexes helped in recovered. 5.0mM ALA showed inhibitory effect irrespective of form. Our results suggest that the Raman band at 1602cm is a good measure of oxidative stress in fission yeast.
硫辛酸(ALA)是需氧代谢中许多酶复合物的必需辅助因子,尤其是在线粒体中,呼吸作用在此发生。它还具有出色的抗氧化性能。该酸有两种立体异构体,R-和 S-硫辛酸(R-LA 和 S-LA),但只有 R-LA 具有生物学意义,并且仅在我们体内产生。裂殖酵母的突变株Δdps1 不能合成辅酶 Q10,而辅酶 Q10 在酵母呼吸过程中是必不可少的,从而导致氧化应激。因此,它在最低培养基中表现出生长延迟。我们使用这种突变酵母模型研究了游离形式和与γ-环糊精形成的包合物形式的 ALA 的抗氧化特性。游离形式的 R-和 S-LA 以及与γ-环糊精 1:1 的包合物都根据浓度和形式恢复了Δdps1 的生长。然而,它对野生型裂殖酵母菌株的生长完全没有影响。拉曼微光谱用于在分子水平上理解抗氧化特性。监测到 1602cm 处存在一个灵敏的拉曼带,无论是否添加 ALAs 均存在该带。结果发现,0.5mM 和 1.0mM 浓度的 ALAs 在游离和包合形式中具有相似的效果。在 2.5mM ALAs 下,游离形式抑制生长,而包合物有助于恢复。5.0mM ALA 无论形式如何均表现出抑制作用。我们的结果表明,1602cm 处的拉曼带是衡量裂殖酵母氧化应激的一个很好的指标。