Kusi-Appiah A E, Lowry T W, Darrow E M, Wilson K A, Chadwick B P, Davidson M W, Lenhert S
Department of Biological Science, Florida State University, Tallahassee, FL 32306-4370, USA.
Lab Chip. 2015 Aug 21;15(16):3397-404. doi: 10.1039/c5lc00478k.
The dose-dependent bioactivity of small molecules on cells is a crucial factor in drug discovery and personalized medicine. Although small-molecule microarrays are a promising platform for miniaturized screening, it has been a challenge to use them to obtain quantitative dose-response curves in vitro, especially for lipophilic compounds. Here we establish a small-molecule microarray assay capable of controlling the dosage of small lipophilic molecules delivered to cells by varying the sub-cellular volumes of surface supported lipid micro- and nanostructure arrays fabricated with nanointaglio. Features with sub-cellular lateral dimensions were found necessary to obtain normal cell adhesion with HeLa cells. The volumes of the lipophilic drug-containing nanostructures were determined using a fluorescence microscope calibrated by atomic-force microscopy. We used the surface supported lipid volume information to obtain EC-50 values for the response of HeLa cells to three FDA-approved lipophilic anticancer drugs, docetaxel, imiquimod and triethylenemelamine, which were found to be significantly different from neat lipid controls. No significant toxicity was observed on the control cells surrounding the drug/lipid patterns, indicating lack of interference or leakage from the arrays. Comparison of the microarray data to dose-response curves for the same drugs delivered liposomally from solution revealed quantitative differences in the efficacy values, which we explain in terms of cell-adhesion playing a more important role in the surface-based assay. The assay should be scalable to a density of at least 10,000 dose response curves on the area of a standard microtiter plate.
小分子对细胞的剂量依赖性生物活性是药物发现和个性化医疗中的关键因素。尽管小分子微阵列是一种很有前景的小型化筛选平台,但利用它们在体外获得定量剂量反应曲线一直是个挑战,尤其是对于亲脂性化合物。在此,我们建立了一种小分子微阵列检测方法,通过改变用纳米凹版印刷制造的表面支撑脂质微结构和纳米结构阵列的亚细胞体积,能够控制递送至细胞的亲脂性小分子的剂量。发现具有亚细胞横向尺寸的特征对于HeLa细胞实现正常细胞粘附是必要的。使用通过原子力显微镜校准的荧光显微镜测定含亲脂性药物的纳米结构的体积。我们利用表面支撑脂质体积信息获得了HeLa细胞对三种FDA批准的亲脂性抗癌药物多西他赛、咪喹莫特和三亚乙基三聚氰胺反应的半数有效浓度(EC-50)值,发现这些值与纯脂质对照有显著差异。在药物/脂质图案周围的对照细胞上未观察到明显毒性,表明阵列没有干扰或泄漏。将微阵列数据与从溶液中脂质体递送的相同药物的剂量反应曲线进行比较,揭示了效力值的定量差异,我们从细胞粘附在基于表面的检测中发挥更重要作用的角度对此进行了解释。该检测方法应可扩展至在标准微孔板面积上至少有10,000条剂量反应曲线的密度。