Jung Hogwuan, Oh JaeWook, Kwon Younghae, Kang Woongshin, Seo Minsuk, Seol Yurin, Park Je Won
Transdisciplinary Major in Learning Health Systems, Department of Integrated Biomedical and Life Sciences, Korea University, Seoul 02841, Korea.
School of Biosystems and Biomedical Sciences, Korea University, Seoul 02841, Korea.
Antioxidants (Basel). 2022 Jul 19;11(7):1396. doi: 10.3390/antiox11071396.
Simple phenolics (SPs) and their glycosides have recently gained much attention as functional skin-care resources for their anti-melanogenic and antioxidant activities. Enzymatic glycosylation of SP aglycone make it feasible to create SP glycosides with updated bioactive potentials. Herein, a glycosyltransferase (GT)-encoding gene was cloned from the fosmid libraries of ATCC 31603 using GT-specific degenerate PCR followed by in silico analyses. The recombinant StSPGT was able to flexibly catalyze the transfer of two glycosyl moieties towards two SP acceptors, (hydroxyphenyl-2-propanol [HPP2] and hydroxyphenyl-3-propanol [HPP3]), generating stereospecific α-anomeric glycosides as follows: HPP2--α-glucoside, HPP2--α-2″-deoxyglucoside, HPP3--α-glucoside and HPP3--α-2″-deoxyglucoside. This enzyme seems not only to prefer UDP-glucose and HPP2 as a favorable glycosyl donor and acceptor, respectively but also differentiates the positional difference of the hydroxyl function as acceptor catalytic sites. Paired in vitro and in vivo antioxidant assays represented SPs and their corresponding glycosides as convincing antioxidants in a time- and concentration-dependent manner by scavenging DPPH radicals and intracellular ROS. Even compared to the conventional agents, HPP2 and glycoside analogs displayed improved tyrosinase inhibitory activity in vitro and still suppressed in vivo melanogenesis. Both HPP2 glycosides are further likely to exert the best inhibitory activity against elastase, eventually highlighting these glycosides with enhanced anti-melanogenic and antioxidant activities as promising anti-wrinkle hits.
简单酚类化合物(SPs)及其糖苷最近因其抗黑色素生成和抗氧化活性,作为功能性皮肤护理资源而备受关注。SP苷元的酶促糖基化使得创造具有更新生物活性潜力的SP糖苷成为可能。在此,通过GT特异性简并PCR从ATCC 31603的fosmid文库中克隆了一个糖基转移酶(GT)编码基因,随后进行了电子分析。重组StSPGT能够灵活地将两个糖基部分转移到两个SP受体(对羟基苯基-2-丙醇[HPP2]和对羟基苯基-3-丙醇[HPP3])上,生成立体特异性的α-异头糖苷,如下所示:HPP2-α-葡萄糖苷、HPP2-α-2″-脱氧葡萄糖苷、HPP3-α-葡萄糖苷和HPP3-α-2″-脱氧葡萄糖苷。这种酶似乎不仅分别更喜欢UDP-葡萄糖和HPP2作为有利的糖基供体和受体,而且还区分了作为受体催化位点的羟基功能的位置差异。配对的体外和体内抗氧化试验表明,SPs及其相应的糖苷通过清除DPPH自由基和细胞内ROS,以时间和浓度依赖性方式成为令人信服的抗氧化剂。即使与传统药物相比,HPP2和糖苷类似物在体外也显示出改善的酪氨酸酶抑制活性,并在体内仍能抑制黑色素生成。两种HPP2糖苷进一步可能对弹性蛋白酶发挥最佳抑制活性,最终突出这些具有增强的抗黑色素生成和抗氧化活性的糖苷作为有前景的抗皱药物。