Inhibitory Effect of Steviol and Its Derivatives on Cell Migration via Regulation of Tight Junction-related Protein Claudin 8

Sunkyung Choi, NamJoon Cho, U. Cho, J. Shim, Kee K. Kim, H. Hwang
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Abstract

The tight junction, one of Intercellular junctions, performs a variety of biological functions by bonding adjacent cells, including the barrier function to control the movement of the electrolyte and water. Recent studies have revealed that unusual expression of tight junction-related genes have been shown to be related in cancer development and progression. Recently, there are many reports that control of tight junction proteins expression is closely related to the skin moisture. In this study, we are focusing on the regulating mechanism of tight junction-associated genes by the steviol and its derivatives. Steviol, used as a sweetner, is known to chemical compound isolated from stevia plant. The MTS (3-(4,5-dimethylthiazol-2-yl)-5-(3-carboxymethoxyphenyl)-2-(4-sulfophenyl)-2H-tetrazolium, inner salt) assay was carried out in HaCaT cells (human keratinocyte cell line) in order to determine the cytotoxicity. As a result, while steviol showing cytotoxicity from 250 μM, steviol derivatives are not cytotoxic more than 250 μM concentration. We have observed a change in the tight junction protein via quantitative real-time PCR. Claudin 8 among tight junction proteins is only significantly reduced up to 30% in the presence of steviol. In addition, cell migration was inhibited by steviol, not by stevioside and rebaudioside. Finally, we could observe that steviol, not stevioside and rebaudioside, is able to increase the skin barrier permeability through the transepithelial electric resistance (TEER) measurements. These results suggest that the steviol and its derivatives are specifically acts on the tight junction related gene expression, but steviol derivatives are more suitable as a cosmetic material.
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甜菊醇及其衍生物通过调控紧密连接相关蛋白Claudin 8对细胞迁移的抑制作用
紧密连接是细胞间连接的一种,通过连接相邻细胞来执行多种生物学功能,包括控制电解质和水的运动的屏障功能。最近的研究表明,紧密连接相关基因的异常表达已被证明与癌症的发生和进展有关。近年来,有许多报道表明,紧连接蛋白的表达与皮肤水分的控制密切相关。在本研究中,我们将重点研究甜菊醇及其衍生物对紧密连接相关基因的调控机制。甜叶菊醇是一种从甜叶菊植物中分离出来的化合物,用作甜味剂。采用MTS(3-(4,5-二甲基噻唑-2-基)-5-(3-羧基甲氧基苯基)-2-(4-磺苯基)- 2h -四氮唑,内盐)法测定人角质形成细胞系HaCaT细胞的细胞毒性。结果表明,甜菊醇在250 μM浓度下具有细胞毒性,甜菊醇衍生物在250 μM浓度下没有细胞毒性。我们通过实时荧光定量PCR观察到紧密连接蛋白的变化。紧密连接蛋白中的Claudin 8在甜菊糖的存在下仅显著降低了30%。此外,甜菊糖苷对细胞迁移有抑制作用,而甜菊糖苷和雷鲍迪糖苷对细胞迁移没有抑制作用。最后,我们可以观察到,甜菊糖甙,而不是甜菊糖苷和雷鲍迪甙,能够增加皮肤屏障通透性通过透皮电阻(TEER)测量。这些结果表明,甜菊醇及其衍生物是特异性作用于紧密连接相关基因的表达,但甜菊醇衍生物更适合作为化妆品材料。
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