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Updated: Oct 13, 2025

Author Spotlight: Deciphering the Role of ATM in Ataxia-Telangiectasia and the Associated Cerebellar Degeneration
Published on: December 27, 2024
ATM Kinase Dead: From Ataxia Telangiectasia Syndrome to Cancer
Sabrina Putti1, Alessandro Giovinazzo1, Matilde Merolle1
1Institute of Biochemistry and Cell Biology, IBBC-CNR, Campus Adriano Buzzati Traverso, Via Ercole Ramarini, 32, Monterotondo Scalo, 00015 Rome, Italy.
Abstract:
ATM is one of the principal players of the DNA damage response. This protein exerts its role in DNA repair during cell cycle replication, oxidative stress, and DNA damage from endogenous events or exogenous agents. When is activated, ATM phosphorylates multiple substrates that participate in DNA repair, through its phosphoinositide 3-kinase like domain at the 3'end of the protein. The absence of ATM is the cause of a rare autosomal recessive disorder called Ataxia Telangiectasia characterized by cerebellar degeneration, telangiectasia, immunodeficiency, cancer susceptibility, and radiation sensitivity. There is a correlation between the severity of the phenotype and the mutations, depending on the residual activity of the protein. The analysis of patient mutations and mouse models revealed that the presence of inactive ATM, named ATM kinase-dead, is more cancer prone and lethal than its absence. ATM mutations fall into the whole gene sequence, and it is very difficult to predict the resulting effects, except for some frequent mutations. In this regard, is necessary to characterize the mutated protein to assess if it is stable and maintains some residual kinase activity. Moreover, the whole-genome sequencing of cancer patients with somatic or germline mutations has highlighted a high percentage of ATM mutations in the phosphoinositide 3-kinase domain, mostly in cancer cells resistant to classical therapy. The relevant differences between the complete absence of ATM and the presence of the inactive form in in vitro and in vivo models need to be explored in more detail to predict cancer predisposition of A-T patients and to discover new therapies for ATM-associated cancer cells. In this review, we summarize the multiple discoveries from humans and mouse models on ATM mutations, focusing into the inactive versus null ATM.
Insights
The Ataxia Telangiectasia (ATM) protein is crucial for DNA repair. Inactive ATM mutations, unlike complete absence, increase cancer risk and lethality, necessitating further research for targeted therapies.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- ATM protein is central to the DNA damage response, vital for DNA repair during cell replication and stress.
- Deficiency in ATM causes Ataxia Telangiectasia (A-T), a rare disorder linked to neurodegeneration, immunodeficiency, and cancer susceptibility.
- The severity of A-T phenotypes correlates with specific ATM mutations and residual protein activity.
Purpose of the Study:
- To review human and mouse model discoveries concerning ATM mutations.
- To focus on the functional differences between inactive (kinase-dead) and absent (null) ATM.
- To explore ATM's role in cancer predisposition and therapy resistance.
Main Methods:
- Analysis of patient mutations and established mouse models.
- Whole-genome sequencing of cancer patients.
- In vitro and in vivo experimental models.
Main Results:
- Inactive ATM (kinase-dead) is associated with higher cancer proneness and lethality compared to complete ATM absence.
- ATM mutations are frequently found in the phosphoinositide 3-kinase domain, particularly in therapy-resistant cancer cells.
- Predicting the impact of novel ATM mutations is challenging due to their widespread distribution across the gene.
Conclusions:
- Characterizing mutated ATM proteins for stability and residual kinase activity is essential.
- Further investigation into the distinct effects of inactive versus null ATM is crucial for predicting cancer risk in A-T patients.
- Understanding these differences may lead to novel therapeutic strategies for ATM-associated cancers.
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