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A Fluorescence-based Lymphocyte Assay Suitable for High-throughput Screening of Small Molecules
Published on: March 10, 2017
High-Throughput Screening and Triage Assays Identify Small Molecules Targeting c-MYC in Cancer Cells
Lorena A Kallal1, Anna Waszkiewicz1, Jon-Paul Jaworski2
1Screening, Profiling, and Mechanistic Biology, GlaxoSmithKline, Collegeville, PA, USA.
Abstract:
While c-MYC is well established as a proto-oncogene, its structure and function as a transcription factor have made c-MYC a difficult therapeutic target. To identify small-molecule inhibitors targeting c-MYC for anticancer therapy, we designed a high-throughput screening (HTS) strategy utilizing cellular assays. The novel approach for the HTS was based on the detection of cellular c-MYC protein, with active molecules defined as those that specifically decreased c-MYC protein levels in cancer cells. The assay was based on a dual antibody detection system using Förster/fluorescence resonance energy transfer (FRET) and was utilized to detect endogenous c-MYC protein in the MYC amplified cancer cell lines DMS273 and Colo320 HSR. The assays were miniaturized to 1536-well plate format and utilized to screen the GlaxoSmithKline small-molecule collection of approximately 2 million compounds. In addition to the HTS assay, follow-up assays were developed and used to triage and qualify compounds. Two cellular assays used to eliminate false-positive compounds from the initially selected HTS hits were (1) a cellular toxicity assay and (2) an unstable protein reporter assay. Three positive selection assays were subsequently used to qualify compounds: (1) 384-well cell cycle flow cytometry, (2) 384-well cell growth, and (3) c-MYC gene signature reverse transcription quantitative PCR (RT-qPCR). The HTS and follow-up assays successfully identified three compounds that specifically decreased c-MYC protein levels in cancer cells and phenocopied c-MYC siRNA in terms of cell growth inhibition and gene signatures. The HTS, triage, and three compounds identified are described.
Insights
Researchers developed a novel high-throughput screening (HTS) assay to find small-molecule inhibitors targeting the proto-oncogene c-MYC. This screening identified three compounds that effectively reduce c-MYC protein levels in cancer cells, offering potential new anticancer therapies.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- The proto-oncogene c-MYC is a challenging therapeutic target due to its structure and function.
- Targeting c-MYC is crucial for developing novel anticancer therapies.
Purpose of the Study:
- To design and implement a high-throughput screening (HTS) strategy for identifying small-molecule inhibitors of c-MYC.
- To discover compounds that specifically decrease c-MYC protein levels in cancer cells.
Main Methods:
- A novel HTS assay utilizing a dual antibody Förster/fluorescence resonance energy transfer (FRET) system to detect endogenous c-MYC protein.
- Miniaturization of assays to 1536-well plate format for screening approximately 2 million compounds.
- Development of follow-up assays including cellular toxicity, unstable protein reporter, cell cycle flow cytometry, cell growth, and RT-qPCR for compound qualification.
Main Results:
- Successful screening of the GlaxoSmithKline small-molecule collection.
- Identification of three compounds that specifically decrease c-MYC protein levels in cancer cells.
- The identified compounds mimicked c-MYC siRNA effects on cell growth inhibition and gene signatures.
Conclusions:
- The developed HTS strategy is effective for identifying c-MYC-targeting small-molecule inhibitors.
- Three promising compounds were identified that reduce c-MYC levels and inhibit cancer cell growth.
- These findings provide a foundation for developing new c-MYC-targeted anticancer drugs.

