Orita Tsukasa, Ijiri Daichi, Hou De-Xing, Sakao Kozue
The United Graduate School of Agricultural Sciences, Kagoshima University, Kagoshima 890-0065, Japan.
Joint Faculty of Veterinary Medicine, Kagoshima University, Kagoshima 890-0065, Japan.
Molecules. 2025 Jul 30;30(15):3191. doi: 10.3390/molecules30153191.
Although Zn (II)-(-)-Epigallocatechin gallate (EGCg) complex (Zn-EGCg) is known for its promising bioactivities, little attention has been paid to its incorporation into daily green tea consumption. In this study, we aimed to incorporate Zn (II) into green tea extract to promote the formation of Zn-EGCg complex within the tea matrix. We then investigated how the formation of Zn-complexed green tea extract (Zn-GTE) influences the gut microbiota in a Western diet (WD)-fed mouse model. Structural analyses using ultraviolet-visible spectroscopy (UV-Vis), Fourier-transform infrared spectroscopy (FT-IR), proton nuclear magnetic resonance (H NMR), and powder X-ray diffraction (PXRD) suggested that Zn (II) interacted with hydroxyl groups of polyphenols within the extract, consistent with Zn-EGCg formation, although the complex could not be unequivocally identified. Under intake levels equivalent to daily consumption, Zn-GTE administration restored WD-induced reductions in alpha-diversity and resulted in a distinct microbial composition compared to treatment with green tea extract (GTE) or Zn alone, as shown by beta-diversity analysis. Linear discriminant analysis Effect Size (LEfSe) analysis revealed increased abundances of bacterial taxa belonging to , , and , and decreased abundances of in the Zn-GTE group compared to the GTE group. These findings highlight that Zn-GTE, prepared via Zn (II) supplementation to green tea, may exert distinct microbiota-modulating effects compared to its individual components. This study provides new insights into the role of dietary metal-polyphenol complexes, offering a food-based platform for studying metal-polyphenol interactions under physiologically relevant conditions.
尽管锌(II)-(-)-表没食子儿茶素没食子酸酯(EGCg)复合物(Zn-EGCg)因其具有良好的生物活性而闻名,但人们很少关注将其纳入日常绿茶消费中。在本研究中,我们旨在将锌(II)掺入绿茶提取物中,以促进茶基质中Zn-EGCg复合物的形成。然后,我们研究了锌复合绿茶提取物(Zn-GTE)的形成如何影响西式饮食(WD)喂养的小鼠模型中的肠道微生物群。使用紫外可见光谱(UV-Vis)、傅里叶变换红外光谱(FT-IR)、质子核磁共振(H NMR)和粉末X射线衍射(PXRD)进行的结构分析表明,锌(II)与提取物中多酚的羟基相互作用,这与Zn-EGCg的形成一致,尽管该复合物无法明确鉴定。在相当于日常摄入量的水平下,服用Zn-GTE可恢复WD诱导的α-多样性降低,并且与单独使用绿茶提取物(GTE)或锌处理相比,微生物组成明显不同,β-多样性分析表明了这一点。线性判别分析效应大小(LEfSe)分析显示,与GTE组相比,Zn-GTE组中属于、和的细菌类群丰度增加,而的丰度降低。这些发现突出表明,通过向绿茶中添加锌(II)制备的Zn-GTE与其单个成分相比,可能具有独特的微生物群调节作用。本研究为膳食金属-多酚复合物的作用提供了新的见解,为在生理相关条件下研究金属-多酚相互作用提供了一个基于食物的平台。