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Updated: Jun 12, 2025

High-throughput Screening for Chemical Modulators of Post-transcriptionally Regulated Genes
Published on: March 3, 2015
A First-in-Class High-Throughput Screen to Discover Modulators of the Alternative Lengthening of Telomeres (ALT)
Merrill M Froney1, Christian R Cook1, Alyssa M Cadiz1
1UNC Eshelman School of Pharmacy, Division of Chemical Biology and Medicinal Chemistry, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina 27599, United States.
Abstract:
Telomeres are a protective cap that prevents chromosome ends from being recognized as double-stranded breaks. In somatic cells, telomeres shorten with each cell division due to the end replication problem, which eventually leads to senescence, a checkpoint proposed to prevent uncontrolled cell growth. Tumor cells avoid telomere shortening by activating one of two telomere maintenance mechanisms (TMMs): telomerase reactivation or alternative lengthening of telomeres (ALT). TMMs are a viable target for cancer treatment as they are not active in normal, differentiated cells. Whereas there is a telomerase inhibitor currently undergoing clinical trials, there are no known ALT inhibitors in development, partially because the complex ALT pathway is still poorly understood. For cancers such as neuroblastoma and osteosarcoma, the ALT-positive status is associated with an aggressive phenotype and few therapeutic options. Thus, methods that characterize the key biological pathways driving ALT will provide important mechanistic insight. We have developed a first-in-class phenotypic high-throughput screen to identify small-molecule inhibitors of ALT. Our screen measures relative C-circle level, an ALT-specific biomarker, to detect changes in ALT activity induced by compound treatment. To investigate epigenetic mechanisms that contribute to ALT, we screened osteosarcoma and neuroblastoma cells against an epigenetic-targeted compound library. Hits included compounds that target chromatin-regulating proteins and DNA damage repair pathways. Overall, the high-throughput C-circle assay will help expand the repertoire of potential ALT-specific therapeutic targets and increase our understanding of ALT biology.
Insights
Researchers developed a new high-throughput screen to find drugs targeting the alternative lengthening of telomeres (ALT) pathway, a key mechanism in aggressive cancers like neuroblastoma and osteosarcoma.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Telomeres protect chromosome ends, but shorten in somatic cells, leading to senescence.
- Tumor cells utilize telomere maintenance mechanisms (TMMs), including telomerase reactivation or alternative lengthening of telomeres (ALT), to achieve immortality.
- ALT is prevalent in aggressive cancers like neuroblastoma and osteosarcoma, yet lacks specific inhibitors due to poor understanding of its complex pathways.
Purpose of the Study:
- To develop a high-throughput screening method for identifying small-molecule inhibitors of the ALT pathway.
- To investigate epigenetic mechanisms contributing to ALT.
- To discover novel therapeutic targets for ALT-positive cancers.
Main Methods:
- Developed a first-in-class phenotypic high-throughput screen utilizing C-circle levels as an ALT-specific biomarker.
- Screened osteosarcoma and neuroblastoma cells against an epigenetic-targeted compound library.
- Assessed compound-induced changes in ALT activity.
Main Results:
- Successfully established a high-throughput screen to measure ALT activity via C-circle levels.
- Identified compounds targeting chromatin-regulating proteins and DNA damage repair pathways as hits.
- Demonstrated the utility of the screen in identifying potential ALT inhibitors.
Conclusions:
- The developed high-throughput C-circle assay is a valuable tool for discovering ALT inhibitors.
- The screen provides mechanistic insights into ALT biology and epigenetic regulation.
- This approach will aid in expanding therapeutic targets for ALT-driven cancers.
Related Concept Videos
Telomeres and Telomerase
Replicative Cell Senescence

