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Validation of a High-Content Screening Assay Using Whole-Well Imaging of Transformed Phenotypes

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ASSAY AND DRUG DEVELOPMENT TECHNOLOGIES
卷 9, 期 3, 页码 247-261

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MARY ANN LIEBERT INC
DOI: 10.1089/adt.2010.0342

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资金

  1. Commonwealth Foundation for Cancer Research
  2. Experimental Therapeutics Center of the Memorial Sloan-Kettering Cancer Center
  3. William Randolph Hearst Fund in Experimental Therapeutics
  4. Lillian S. Wells Foundation
  5. NIH/NCI Cancer Center [5 P30 CA008748-44]
  6. Brain Tumor Center of the Memorial Sloan-Kettering Cancer Center

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Automated microscopy was introduced two decades ago and has become an integral part of the discovery process as a high-content screening platform with noticeable challenges in executing cell-based assays. It would be of interest to use it to screen for reversers of a transformed cell phenotype. In this report, we present data obtained from an optimized assay that identifies compounds that reverse a transformed phenotype induced in NIH-3T3 cells by expressing a novel oncogene, KP, resulting from fusion between platelet derived growth factor receptor alpha (PDGFR alpha) and kinase insert domain receptor (KDR), that was identified in human glioblastoma. Initial image acquisitions using multiple tiles per well were found to be insufficient as to accurately image and quantify the clusters; whole-well imaging, performed on the IN Cell Analyzer 2000, while still two-dimensional imaging, was found to accurately image and quantify clusters, due largely to the inherent variability of their size and well location. The resulting assay exhibited a Z' value of 0.79 and a signal-to-noise ratio of 15, and it was validated against known effectors and shown to identify only PDGFR alpha inhibitors, and then tested in a pilot screen against a library of 58 known inhibitors identifying mostly PDGFR alpha inhibitors as reversers of the KP induced transformed phenotype. In conclusion, our optimized and validated assay using whole-well imaging is robust and sensitive in identifying compounds that reverse the transformed phenotype induced by KP with a broader applicability to other cell-based assays that are challenging in HTS against chemical and RNAi libraries.

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