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High-throughput Screening for Chemical Modulators of Post-transcriptionally Regulated Genes
Published on: March 3, 2015
High throughput screening of small molecule libraries for modifiers of radiation responses
Kwanghee Kim1, Robert Damoiseaux, Andrew J Norris
1Department of Radiation Oncology, University of California at Los Angeles (UCLA), Los Angeles, California 90095-1714, USA.
Purpose:
An unbiased approach of drug discovery through high-throughput screening (HTS) of libraries of chemically defined and bioactive small molecule compounds was used to identify modulators of radiation injury with an emphasis on radioprotectors and mitigators rather than radiosensitisers. Assay system endpoints included radiation-induced genotoxicity and DNA damage in yeast and apoptosis in murine lymphocytes. Large-scale data mining of chemically diverse libraries identified agents that were effective with all endpoints. HTS of bioactive compound libraries against murine lymphocytes profiled tetracycline and fluoroquinolone antibiotics and cyclopiazonic acid as having activity, and structure-activity analysis showed a common pharmacophore. Purine nucleosides, the interferon inducer tilorone, and linoleic acid were also identified as potential mitigators of radiation damage that often were also radioprotective. Many of these compounds enhance DNA repair, have anti-inflammatory activity, and stimulate hematopoiesis. Selected compounds within these initial verified hits from both types of libraries identified potent mitigators of lethal whole body irradiation (WBI) in mice.
Conclusion:
In spite of the fact that in vitro HTS has limitations and is unable to fully recapitulate all aspects of the complex in vivo acute radiation response, it identified several classes of molecules that had activity as radioprotectors and radiomitigators of the hematopoietic system in vivo. In the future, addition of 3-dimensional (3-D) or stem cell cultures or pathway analysis, may improve the power of HTS, but our findings indicate that common, evolutionary conserved, canonical pathways can be identified that could be exploited to mitigate radiation-induced defects.
Insights
High-throughput screening identified novel radioprotectors and mitigators for radiation injury. These compounds, including antibiotics and nucleosides, show potential for protecting against lethal irradiation effects.
Area of Science:
- Pharmacology
- Radiation Biology
- Drug Discovery
Background:
- Radiation exposure poses significant health risks, necessitating the development of effective radioprotective and mitigating agents.
- Current therapeutic strategies for radiation injury are limited, highlighting the need for novel drug discovery approaches.
Purpose of the Study:
- To identify small molecule compounds that protect against or mitigate radiation injury using high-throughput screening (HTS).
- To focus on radioprotectors and mitigators, rather than radiosensitizers, for therapeutic applications.
- To investigate modulators of radiation-induced genotoxicity, DNA damage, and apoptosis.
Main Methods:
- Utilized high-throughput screening (HTS) of diverse chemical libraries against yeast and murine lymphocyte models.
- Assayed endpoints included radiation-induced genotoxicity, DNA damage, and apoptosis.
- Performed structure-activity relationship analysis to identify common pharmacophores.
Main Results:
- Identified tetracycline and fluoroquinolone antibiotics, cyclopiazonic acid, purine nucleosides, tilorone, and linoleic acid as active compounds.
- Observed that many identified compounds enhance DNA repair, possess anti-inflammatory activity, and stimulate hematopoiesis.
- Verified potent mitigation of lethal whole-body irradiation (WBI) in mice with selected compounds.
Conclusions:
- In vitro HTS successfully identified classes of molecules with radioprotective and radiomitigating activity for the hematopoietic system.
- Despite limitations, HTS revealed conserved biological pathways that can be targeted for mitigating radiation-induced damage.
- Future HTS improvements may involve 3-D cultures or pathway analysis for enhanced predictive power.
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