Pei Jinxin V, Kourghi Mohamad, De Ieso Michael L, Campbell Ewan M, Dorward Hilary S, Hardingham Jennifer E, Yool Andrea J
School of Medicine (J.V.P., M.K., M.L.D.I., J.E.H., A.J.Y.), and Institute for Photonics and Advanced Sensing (J.V.P., A.J.Y.), University of Adelaide, Adelaide, Australia; School of Biological Sciences, University of Aberdeen, Aberdeen, Scotland, United Kingdom (E.M.C.); Molecular Oncology Laboratory, Basil Hetzel Institute, Queen Elizabeth Hospital, Woodville, Australia (H.S.D., J.E.H.).
School of Medicine (J.V.P., M.K., M.L.D.I., J.E.H., A.J.Y.), and Institute for Photonics and Advanced Sensing (J.V.P., A.J.Y.), University of Adelaide, Adelaide, Australia; School of Biological Sciences, University of Aberdeen, Aberdeen, Scotland, United Kingdom (E.M.C.); Molecular Oncology Laboratory, Basil Hetzel Institute, Queen Elizabeth Hospital, Woodville, Australia (H.S.D., J.E.H.)
Mol Pharmacol. 2016 Oct;90(4):496-507. doi: 10.1124/mol.116.105882. Epub 2016 Jul 29.
Aquaporin-1 (AQP1) is a major intrinsic protein that facilitates flux of water and other small solutes across cell membranes. In addition to its function as a water channel in maintaining fluid homeostasis, AQP1 also acts as a nonselective cation channel gated by cGMP, a property shown previously to facilitate rapid cell migration in a AQP1-expressing colon cancer cell line. Here we report two new modulators of AQP1 channels, bacopaside I and bacopaside II, isolated from the medicinal plant Bacopa monnieri Screening was conducted in the Xenopus oocyte expression system, using quantitative swelling and two-electrode voltage clamp techniques. Results showed bacopaside I blocked both the water (IC50 117 μM) and ion channel activities of AQP1 but did not alter AQP4 activity, whereas bacopaside II selectively blocked the AQP1 water channel (IC50 18 μM) without impairing the ionic conductance. These results fit with predictions from in silico molecular modeling. Both bacopasides were tested in migration assays using HT29 and SW480 colon cancer cell lines, with high and low levels of AQP1 expression, respectively. Bacopaside I (IC50 48 μM) and bacopaside II (IC50 14 μM) impaired migration of HT29 cells but had minimal effect on SW480 cell migration. Our results are the first to identify differential AQP1 modulators isolated from a medicinal plant. Bacopasides could serve as novel lead compounds for pharmaceutic development of selective aquaporin modulators.
水通道蛋白-1(AQP1)是一种主要内在蛋白,可促进水和其他小分子溶质跨细胞膜的通量。除了作为维持液体稳态的水通道发挥功能外,AQP1还作为一种由环鸟苷酸(cGMP)门控的非选择性阳离子通道,此前已证明该特性可促进表达AQP1的结肠癌细胞系中的快速细胞迁移。在此,我们报告了从药用植物假马齿苋中分离出的两种新的AQP1通道调节剂,即假马齿苋皂苷I和假马齿苋皂苷II。使用定量肿胀和双电极电压钳技术在非洲爪蟾卵母细胞表达系统中进行筛选。结果显示,假马齿苋皂苷I可阻断AQP1的水通道(半数抑制浓度[IC50]为117μM)和离子通道活性,但不改变AQP4活性,而假马齿苋皂苷II可选择性阻断AQP1水通道(IC50为18μM),且不损害离子传导。这些结果与计算机分子模拟的预测相符。使用分别具有高和低AQP1表达水平的HT29和SW480结肠癌细胞系在迁移试验中对两种假马齿苋皂苷进行了测试。假马齿苋皂苷I(IC50为48μM)和假马齿苋皂苷II(IC50为14μM)可损害HT29细胞的迁移,但对SW480细胞迁移的影响极小。我们的结果首次鉴定了从药用植物中分离出的差异性AQP1调节剂。假马齿苋皂苷可作为选择性水通道蛋白调节剂药物开发的新型先导化合物。