Literature DB >> 22869592

The ATM protein: the importance of being active.

Yosef Shiloh1, Yael Ziv.   

Abstract

The ataxia telangiectasia mutated (ATM) protein kinase regulates the cellular response to deoxyribonucleic acid (DNA) double-strand breaks by phosphorylating numerous players in the extensive DNA damage response network. Two papers in this issue (Daniel et al. 2012. J. Cell Biol. http://dx.doi.org/10.1083/jcb201204035; Yamamoto et al. 2012. J. Cell Biol. http://dx.doi.org/10.1083/jcb201204098) strikingly show that, in mice, the presence of a catalytically inactive version of ATM is embryonically lethal. This is surprising because mice completely lacking ATM have a much more moderate phenotype. The findings impact on basic cancer research and cancer therapeutics.

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Year:  2012        PMID: 22869592      PMCID: PMC3413363          DOI: 10.1083/jcb.201207063

Source DB:  PubMed          Journal:  J Cell Biol        ISSN: 0021-9525            Impact factor:   10.539


Maintenance of genomic stability is essential for prevention of undue cell death or neoplasia (Cassidy and Venkitaraman, 2012). Critical DNA lesions, such as double-strand breaks (DSBs), activate the DNA damage response (DDR)—a widespread signaling network that involves DNA repair, activation of cell cycle checkpoints, and extensive modulation of gene expression and many metabolic pathways (Ciccia and Elledge, 2010; Hiom, 2010). DSBs are induced by ionizing radiation, radiomimetic chemicals, and endogenous oxygen radicals. They accompany replication fork stalling and are formed and resealed in meiotic recombination and the rearrangement of the antigen receptor genes during the development of the immune system. Major repair pathways for DSBs are error-prone nonhomologous end joining (NHEJ) or high-fidelity homologous recombination repair (HRR; Holthausen et al., 2010; Lieber, 2010). The broad, powerful signaling network evoked by DSBs begins with rapid accumulation at DSB sites of a large group of proteins dubbed “sensors” or “moderators” and continues with the activation of several protein kinases (“transducers”) with partially redundant functions that relay the signal to numerous downstream effectors, which are typically key players in the various DDR branches (Lovejoy and Cortez, 2009; Ciccia and Elledge, 2010; Lukas et al., 2011). The primary transducer of the DSB alarm is the serine-threonine kinase ataxia telangiectasia (A-T) mutated (ATM; Banin et al., 1998; Canman et al., 1998), which is activated in response to DSB induction (Bakkenist and Kastan, 2003) and goes on to phosphorylate a plethora of substrates (Matsuoka et al., 2007; Bensimon et al., 2010). ATM belongs to a conserved family of phosphoinositide 3-kinase–like protein kinases (PIKKs) that includes, among others, two other major DDR transducers: the catalytic subunit of the DNA-dependent protein kinase catalytic subunit (DNA-PKcs) and ATR (ataxia telangiectasia and Rad3 related). These three kinases maintain close functional relationships (Lovejoy and Cortez, 2009). Recent evidence suggests that ATM’s broad capacity as a protein kinase enables it to regulate other processes, such as oxidative stress levels (Guo et al., 2010), and play a role in cytoplasmic, non-DDR arenas, among them mitochondrial homeostasis (Yang et al., 2011; Valentin-Vega and Kastan, 2012; Valentin-Vega et al., 2012). Human germline mutations that abrogate cellular responses to DNA damage cause severe genomic instability syndromes (Jeppesen et al., 2011). The ATM gene is mutated in the genomic instability syndrome, A-T (Savitsky et al., 1995). A-T is characterized by progressive neurodegeneration, immunodeficiency, cancer predisposition, genomic instability, and sensitivity to DSB-inducing agents (McKinnon, 2012). The disease is caused by null ATM mutations, and the patients usually exhibit complete loss of the ATM protein (Gilad et al., 1996). Studies of ATM-dependent processes typically rely on human wild-type versus A-T cells, ATM knockdown using RNAi, reconstitution of ATM-deficient cells by ectopic expression of wild-type or kinase-dead ATM protein, or treating cultured cells with ATM inhibitors. Laboratories using these experimental systems have long felt that the physiological consequences of ATM loss as opposed to harboring inactive ATM may not be similar (Choi et al., 2010). The papers by Daniel et al. and Yamamoto et al. (both in this issue) provide solid evidence of this notion and mark a turning point in our view of ATM’s mode of function. Both works are based on manipulating the Atm gene in the mouse. Atm knockout mice have long been around. These mice exhibit most of the symptoms of A-T, including low body weight, sterility, radiosensitivity, and cancer predisposition, but neurodegeneration is considerably less marked in these animals compared with that observed in human A-T patients (Barlow et al., 1996; Elson et al., 1996; Xu et al., 1996; Borghesani et al., 2000). Thus, before cancer emergence and without exposure to radiation, the murine Atm−/− phenotype is relatively moderate. Using mutant Atm transgene expression in an Atm−/− background (Daniel et al., 2012) and via direct knockin (Yamamoto et al., 2012), the two groups generated new mouse strains that lack Atm activity; rather than being devoid of Atm, these animals express physiological levels of catalytically inactive (kinase dead) protein. Strikingly, in both laboratories, this genotype led to early embryonic lethality, with inherent genomic instability that was higher than that observed in Atm−/− animals (Fig. 1). Conditional expression of the mutant protein in the immune system reduced the efficiency of V(D)J (variable, diversity, and joining) recombination and immunoglobulin class switching—two processes that involve the NHEJ pathway of DSB repair and require active ATM for optimal function. However, this reduction was comparable to that caused by absence of Atm. Collectively, the data from both laboratories suggest that the HRR pathway of DSB repair, rather than NHEJ, may be affected to a greater extent by the presence of inactive Atm compared with the effect obtained after Atm loss.
Figure 1.

Phenotypic comparison of mouse Mice expressing an inactive protein as their sole source of Atm die in utero (Daniel et al., 2012; Yamamoto et al. 2012). Heterozygotes resemble wild-type (WT) animals, indicating lack of a dominant-negative effect. HRR, homologous recombination repair; kd, kinase dead.

Phenotypic comparison of mouse Mice expressing an inactive protein as their sole source of Atm die in utero (Daniel et al., 2012; Yamamoto et al. 2012). Heterozygotes resemble wild-type (WT) animals, indicating lack of a dominant-negative effect. HRR, homologous recombination repair; kd, kinase dead. This dramatic phenotype is presumably caused by severe malfunction of the DDR, attesting once again to its importance in early development. The critical role of the DDR in development has been documented in the past (Phillips and McKinnon, 2007), but the novelty of the current studies lies in the profound difference between Atm loss and the presence of catalytically inactive Atm. The same likely applies in humans as well: A-T patients typically exhibit ATM loss, and in rare cases of catalytically inactive ATM in patients, its level is low enough to allow for viability. A similar observation was made recently by Zhang et al. (2011) with another member of the PIKK family—DNA-PKcs. This group found that mice expressing a mutant version of DNA-PKcs, lacking three phosphorylation sites associated with its activation, die shortly after birth as a result of bone marrow failure. It is interesting to note that in contrast to this, abolishing three phosphorylation sites in mouse Atm, whose equivalents in human ATM are phosphorylated during its activation (Bakkenist and Kastan, 2003; Kozlov et al., 2006), did not result in any discernible phenotype (Pellegrini et al., 2006; Daniel et al., 2008). It appears, therefore, that the presence of physiological levels of inactive Atm severely interferes with the DDR, certainly more than its absence. Why could this be? Although the exact mechanism of this phenomenon is unknown, some assumptions can be made. ATM is recruited to DSB sites (Andegeko et al., 2001) and is therefore present in the huge nuclear foci spanning these sites. Many ATM-mediated phosphorylations occur within these protein conglomerates. Importantly, the recruitment of kinase-dead Atm to sites of DNA damage was found by Daniel et al. (2012) and Yamamoto et al. (2012) to occur normally. It is possible that the presence of catalytically inactive Atm within these DDR hubs severely disturbs the ability of the cell to respond to the damage. Presumably, it interferes with the ordered temporal dynamics of events within these protein factories (Lukas et al., 2011). Deeper understanding of the spatial organization of these protein assemblies (Chapman et al., 2012) and the temporal hierarchy of events within them may elucidate ATM’s role not only as an enzyme but also as a protein moiety in these structures. Of note, ATM is a large protein of 3,056 residues, of which ∼10% constitute its active site. The regulatory functions of the remaining 90% of this polypeptide are largely elusive. In a broader sense, these studies convincingly show, at the organismal level, that loss of an enzyme versus having it residing inactive in the cell can be worlds apart. In this context, it would be interesting to monitor the development of malignancies in those animals expressing the mutant Atm in their lymphoid system. This is particularly important because the malignancies observed in Atm−/− mice, similar to A-T patients, are primarily lymphoid. The implications for ATM-related translational research are notable. ATM has naturally been considered a potential target to be inactivated in tumor cells to selectively sensitize them to radiotherapy (Begg et al., 2011; Basu et al., 2012; Golding et al., 2012). The advent of efficient ATM inhibitors (Hickson et al., 2004; Golding et al., 2009) has further spurred these hopes. The good news is that the effect of these inhibitors on cellular radiosensitivity (and, probably, general well being) might be more profound than previously estimated, provided that these small molecules could be targeted specifically into the malignant cells. On the other hand, exposure of normal, proliferating body tissues to ATM inhibitors may be undesirable, depending on the type of tissue. Such exposure of normal tissue to ATM inhibition, even if brief, could lead to substantial genomic instability—a potential driving force toward new malignancy.
  39 in total

1.  ATM activation by oxidative stress.

Authors:  Zhi Guo; Sergei Kozlov; Martin F Lavin; Maria D Person; Tanya T Paull
Journal:  Science       Date:  2010-10-22       Impact factor: 47.728

2.  Autophosphorylation at serine 1987 is dispensable for murine Atm activation in vivo.

Authors:  Manuela Pellegrini; Arkady Celeste; Simone Difilippantonio; Rong Guo; Weidong Wang; Lionel Feigenbaum; André Nussenzweig
Journal:  Nature       Date:  2006-08-13       Impact factor: 49.962

Review 3.  The mechanism of double-strand DNA break repair by the nonhomologous DNA end-joining pathway.

Authors:  Michael R Lieber
Journal:  Annu Rev Biochem       Date:  2010       Impact factor: 23.643

4.  Inhibition of ATM kinase activity does not phenocopy ATM protein disruption: implications for the clinical utility of ATM kinase inhibitors.

Authors:  Serah Choi; Armin M Gamper; Jason S White; Christopher J Bakkenist
Journal:  Cell Cycle       Date:  2010-10-27       Impact factor: 4.534

Review 5.  DNA double-strand break repair and development.

Authors:  E R Phillips; P J McKinnon
Journal:  Oncogene       Date:  2007-12-10       Impact factor: 9.867

6.  ATM and ATR substrate analysis reveals extensive protein networks responsive to DNA damage.

Authors:  Shuhei Matsuoka; Bryan A Ballif; Agata Smogorzewska; E Robert McDonald; Kristen E Hurov; Ji Luo; Corey E Bakalarski; Zhenming Zhao; Nicole Solimini; Yaniv Lerenthal; Yosef Shiloh; Steven P Gygi; Stephen J Elledge
Journal:  Science       Date:  2007-05-25       Impact factor: 47.728

7.  Improved ATM kinase inhibitor KU-60019 radiosensitizes glioma cells, compromises insulin, AKT and ERK prosurvival signaling, and inhibits migration and invasion.

Authors:  Sarah E Golding; Elizabeth Rosenberg; Nicholas Valerie; Isa Hussaini; Mark Frigerio; Xiaoling F Cockcroft; Wei Yee Chong; Marc Hummersone; Laurent Rigoreau; Keith A Menear; Mark J O'Connor; Lawrence F Povirk; Timothy van Meter; Kristoffer Valerie
Journal:  Mol Cancer Ther       Date:  2009-10-06       Impact factor: 6.261

Review 8.  Common mechanisms of PIKK regulation.

Authors:  Courtney A Lovejoy; David Cortez
Journal:  DNA Repair (Amst)       Date:  2009-05-21

Review 9.  The DNA damage response: making it safe to play with knives.

Authors:  Alberto Ciccia; Stephen J Elledge
Journal:  Mol Cell       Date:  2010-10-22       Impact factor: 17.970

10.  Multiple autophosphorylation sites are dispensable for murine ATM activation in vivo.

Authors:  Jeremy A Daniel; Manuela Pellegrini; Ji-Hoon Lee; Tanya T Paull; Lionel Feigenbaum; André Nussenzweig
Journal:  J Cell Biol       Date:  2008-12-01       Impact factor: 10.539

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  10 in total

1.  Genomically amplified Akt3 activates DNA repair pathway and promotes glioma progression.

Authors:  Kristen M Turner; Youting Sun; Ping Ji; Kirsi J Granberg; Brady Bernard; Limei Hu; David E Cogdell; Xinhui Zhou; Olli Yli-Harja; Matti Nykter; Ilya Shmulevich; W K Alfred Yung; Gregory N Fuller; Wei Zhang
Journal:  Proc Natl Acad Sci U S A       Date:  2015-03-03       Impact factor: 11.205

2.  Forward subtractive libraries containing genes transactivated by dexamethasone in ataxia-telangiectasia lymphoblastoid cells.

Authors:  Sara Biagiotti; Michele Menotta; Elisa Giacomini; Lucia Radici; Marzia Bianchi; Cristina Bozzao; Luciana Chessa; Mauro Magnani
Journal:  Mol Cell Biochem       Date:  2014-03-14       Impact factor: 3.396

3.  Phosphoproteomics reveals novel modes of function and inter-relationships among PIKKs in response to genotoxic stress.

Authors:  Sapir Schlam-Babayov; Ariel Bensimon; Michal Harel; Tamar Geiger; Ruedi Aebersold; Yael Ziv; Yosef Shiloh
Journal:  EMBO J       Date:  2020-11-20       Impact factor: 11.598

Review 4.  Tug of war between survival and death: exploring ATM function in cancer.

Authors:  Venturina Stagni; Veronica Oropallo; Giulia Fianco; Martina Antonelli; Irene Cinà; Daniela Barilà
Journal:  Int J Mol Sci       Date:  2014-03-27       Impact factor: 5.923

5.  ATM gene mutations in sporadic breast cancer patients from Brazil.

Authors:  Flavia Rotea Mangone; Elisabete C Miracca; Harriet E Feilotter; Lois M Mulligan; Maria Aparecida Nagai
Journal:  Springerplus       Date:  2015-01-15

Review 6.  Sensing Bacterial-Induced DNA Damaging Effects via Natural Killer Group 2 Member D Immune Receptor: From Dysbiosis to Autoimmunity and Carcinogenesis.

Authors:  J Luis Espinoza; Mika Minami
Journal:  Front Immunol       Date:  2018-01-25       Impact factor: 7.561

7.  Ataxia-Telangiectasia Mutated is located in cardiac mitochondria and impacts oxidative phosphorylation.

Authors:  Marguerite Blignaut; Ben Loos; Stanley W Botchway; Anthony W Parker; Barbara Huisamen
Journal:  Sci Rep       Date:  2019-03-18       Impact factor: 4.379

8.  ATM controls DNA repair and mitochondria transfer between neighboring cells.

Authors:  Sha Jin; Nils Cordes
Journal:  Cell Commun Signal       Date:  2019-11-08       Impact factor: 5.712

Review 9.  Ataxia Telangiectasia Mutated Protein Kinase: A Potential Master Puppeteer of Oxidative Stress-Induced Metabolic Recycling.

Authors:  Marguerite Blignaut; Sarah Harries; Amanda Lochner; Barbara Huisamen
Journal:  Oxid Med Cell Longev       Date:  2021-04-01       Impact factor: 6.543

10.  Shared Genetic Risk Factors Between Cancer and Cardiovascular Diseases.

Authors:  Aleksander Turk; Tanja Kunej
Journal:  Front Cardiovasc Med       Date:  2022-07-07
  10 in total

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