High-Throughput Screening and Triage Assays Identify Small Molecules Targeting c-MYC in Cancer Cells

Author:

Kallal Lorena A.1,Waszkiewicz Anna1,Jaworski Jon-Paul2,Della Pietra Anthony3,Berrodin Tom3,Brady Pat4,Jurewicz Anthony J.1,Zeng Xin1,Payne Lisa5,Medina Jesús R.6,Doepner-Buser Carolyn7,Mangatt Biju3

Affiliation:

1. Screening, Profiling, and Mechanistic Biology, GlaxoSmithKline, Collegeville, PA, USA

2. Early Pipeline Project Management, GlaxoSmithKline, Collegeville, PA, USA

3. Oncology, GlaxoSmithKline, Collegeville, PA, USA

4. Computational Sciences, GlaxoSmithKline, Collegeville, PA, USA

5. Protein and Cell Sciences, GlaxoSmithKline, Collegeville, PA, USA

6. Chemistry, GlaxoSmithKline, Collegeville, PA, USA

7. Arvinas, New Haven, CT, 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.

Publisher

Elsevier BV

Subject

Molecular Medicine,Biochemistry,Analytical Chemistry,Biotechnology

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