首页> 外文期刊>Food & Function >Phenolic promiscuity in the cell nucleus - epigallocatechingallate (EGCG) and theaflavin-3,3 '-digallate from green and black tea bind to model cell nuclear structures including histone proteins, double stranded DNA and telomeric quadruplex DNA
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Phenolic promiscuity in the cell nucleus - epigallocatechingallate (EGCG) and theaflavin-3,3 '-digallate from green and black tea bind to model cell nuclear structures including histone proteins, double stranded DNA and telomeric quadruplex DNA

机译:细胞核中的酚类杂乱-绿茶和红茶中的epigallocatechingallate(EGCG)和theaflavin-3,3'-digallate与模型细胞核结构结合,包括组蛋白,双链DNA和端粒四链体DNA

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摘要

Flavanols from tea have been reported to accumulate in the cell nucleus in considerable concentrations. The nature of this phenomenon, which could provide novel approaches in understanding the well-known beneficial health effects of tea phenols, is investigated in this contribution. The interaction between epigallocatechin gallate (EGCG) from green tea and a selection of theaflavins from black tea with selected cell nuclear structures such as model histone proteins, double stranded DNA and quadruplex DNA was investigated using mass spectrometry, Circular Dichroism spectroscopy and fluorescent assays. The selected polyphenols were shown to display affinity to all of the selected cell nuclear structures, thereby demonstrating a degree of unexpected molecular promiscuity. Most interestingly theaflavin-digallate was shown to display the highest affinity to quadruplex DNA reported for any naturally occurring molecule reported so far. This finding has immediate implications in rationalising the chemopreventive effect of the tea beverage against cancer and possibly the role of tea phenolics as "life span essentials".
机译:据报道,茶中的黄酮醇以相当大的浓度积聚在细胞核中。在这种贡献中,对这种现象的性质进行了研究,该现象可以提供新颖的方法来理解茶酚的众所周知的有益健康作用。使用质谱法,圆二色谱和荧光分析法研究了绿茶中的表没食子儿茶素没食子酸酯(EGCG)与黑茶中的茶黄素之间的相互作用,这些茶黄素具有选定的细胞核结构,例如模型组蛋白,双链DNA和四链体DNA。所选择的多酚显示出对所有所选择的细胞核结构的亲和力,从而证明了一定程度的意想不到的分子混杂。最有趣的是,茶黄素-对苯二酸酯显示出对迄今为止报道的任何天然分子显示的对四链体DNA的最高亲和力。这一发现对合理化茶饮料对癌症的化学预防作用以及茶酚类化合物作为“寿命必需品”的作用具有直接意义。

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