Target intelligence / Profile preview

Radiation damage

Molecular classification
Other (pathophysiological process; not a receptor/enzyme/transporter)
01

Overview

Radiation damage encompasses the direct deposition of energy into biomolecules (e.g., DNA/RNA/proteins) and the indirect generation of reactive species via radiolysis of water and enzymatic sources, leading to base damage, single-strand breaks, double-strand breaks (including complex/clustered lesions), protein and lipid modifications, and membrane reorganization. Key cellular responses engage the DNA damage response kinases ATM, ATR, and DNA-PK through MRN-mediated sensing, orchestrating repair pathways such as homologous recombination and nonhomologous end joining; failure or overload of these systems results in cell death or mutagenesis. Indirect effects predominate in aqueous tissues, with hydroxyl radicals and related ROS/RNS mediating much of the injury, while high-LET radiation produces more complex, locally clustered damage with increased lethality and repair resistance. Sphingolipid and lipid-raft signaling, notably ceramide generation via acid sphingomyelinase, modulate membrane platforms and stress responses after irradiation, influencing bystander effects and therapy responses.

Other names
radiation-induced damageradiation-induced DNA damageionizing-radiation damagebiomolecular radiation damage
02

Mechanism of action

Radiosensitizers: inhibit DNA repair (e.g., PARP inhibition) to convert radiation-induced SSBs into lethal DSBs or exacerbate DSB repair defects; increase oxygen effect to stabilize DNA radicals. Radioprotectors: scavenge free radicals from water radiolysis or modulate signaling to reduce ROS-mediated damage to DNA and membranes.

03

Biological functions

DNA damage and repair signaling (e.g., induction of SSBs/DSBs and activation of ATM/ATR/DNA-PK pathways)Oxidative stress and free-radical chemistry (ROS/RNS from radiolysis of water, NADPH oxidase, NOS)Cell death pathways (apoptosis/necrosis) following complex DSBs and clustered damageMembrane/lipid raft remodeling and sphingolipid signaling (ceramide generation)
04

Disease associations

Cancer initiation and progression via mutagenesis and genomic instabilityNormal-tissue injury in radiotherapy (deterministic effects) and stochastic late effects (second malignancies)Inflammation and bystander effects in irradiated tissues
05

Safety considerations

Off-target normal-tissue toxicity driven by indirect radical damage and complex DSBs; high-LET radiation causes dense, clustered, harder-to-repair damageLong-term stochastic risks (secondary cancers) from persistent or misrepaired lesions
06

Interacting drugs

Radiosensitizers

7 more in the full profile.

07

Biomarkers

γH2AX foci as a marker of DNA DSBs after irradiationPhosphorylated ATM/ATR/DNA-PK activation markers and MRN complex recruitment as indicators of DDR engagementOxidative stress markers (e.g., 8-oxo-dG) reflecting ROS-mediated damage

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