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.

Abstract

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.