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Updated: Aug 15, 2026

In vitro Assembly of Semi-artificial Molecular Machine and its Use for Detection of DNA Damage
Published on: January 11, 2012
The life and death of DNA-PK
Spencer J Collis1, Theodore L DeWeese, Penelope A Jeggo
1Department of Radiation Oncology and Molecular Radiation Sciences, Johns Hopkins University, School of Medicine, Baltimore, MD 21231, USA. spencer.collis@cancer.org.uk
Abstract:
Double-strand breaks (DSBs) arise endogenously during normal cellular processes and exogenously by genotoxic agents such as ionizing radiation (IR). DSBs are one of the most severe types of DNA damage, which if left unrepaired are lethal to the cell. Several different DNA repair pathways combat DSBs, with nonhomologous end-joining (NHEJ) being one of the most important in mammalian cells. Competent NHEJ catalyses repair of DSBs by joining together and ligating two free DNA ends of little homology (microhomology) or DNA ends of no homology. The core components of mammalian NHEJ are the catalytic subunit of DNA protein kinase (DNA-PK(cs)), Ku subunits Ku70 and Ku80, Artemis, XRCC4 and DNA ligase IV. DNA-PK is a nuclear serine/threonine protein kinase that comprises a catalytic subunit (DNA-PK(cs)), with the Ku subunits acting as the regulatory element. It has been proposed that DNA-PK is a molecular sensor for DNA damage that enhances the signal via phosphorylation of many downstream targets. The crucial role of DNA-PK in the repair of DSBs is highlighted by the hypersensitivity of DNA-PK(-/-) mice to IR and the high levels of unrepaired DSBs after genotoxic insult. Recently, DNA-PK has emerged as a suitable genetic target for molecular therapeutics such as siRNA, antisense and novel inhibitory small molecules. This review encompasses the recent literature regarding the role of DNA-PK in the protection of genomic stability and focuses on how this knowledge has aided the development of specific DNA-PK inhibitors, via both small molecule and directed molecular targeting techniques. This review promotes the inhibition of DNA-PK as a valid approach to enhance the tumor-cell-killing effects of treatments such as IR.
Insights
DNA-PK is crucial for repairing DNA double-strand breaks (DSBs). Inhibiting DNA-PK can enhance cancer cell killing by treatments like ionizing radiation (IR).
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- DNA double-strand breaks (DSBs) are severe DNA damage, lethal if unrepaired.
- Non-homologous end-joining (NHEJ) is a primary mammalian pathway for DSB repair.
- DNA-dependent protein kinase (DNA-PK) is a key component of NHEJ and a sensor of DNA damage.
Purpose of the Study:
- To review the role of DNA-PK in maintaining genomic stability.
- To explore the development of DNA-PK inhibitors for therapeutic applications.
- To highlight DNA-PK inhibition as a strategy to enhance cancer treatment efficacy.
Main Methods:
- Literature review of recent research on DNA-PK function and inhibition.
- Analysis of DNA-PK's role in DNA repair pathways.
- Examination of therapeutic strategies targeting DNA-PK.
Main Results:
- DNA-PK is essential for efficient DSB repair via NHEJ.
- DNA-PK acts as a DNA damage sensor, signaling through phosphorylation.
- DNA-PK deficiency leads to genomic instability and hypersensitivity to genotoxic agents.
- Targeted inhibition of DNA-PK is a promising therapeutic strategy.
Conclusions:
- DNA-PK plays a vital role in protecting genomic integrity.
- Inhibitors of DNA-PK are being developed using small molecules and molecular targeting.
- Inhibiting DNA-PK can sensitize tumor cells to DNA-damaging therapies like IR.
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