A structural model for regulation of NHEJ by DNA-PKcs autophosphorylation.
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[1] C. Anderson,et al. Human cells contain a DNA-activated protein kinase that phosphorylates simian virus 40 T antigen, mouse p53, and the human Ku autoantigen , 1990, Molecular and cellular biology.
[2] D. Ramsden,et al. Ku Recruits the XRCC4-Ligase IV Complex to DNA Ends , 2000, Molecular and Cellular Biology.
[3] M. Story,et al. Artemis Is a Phosphorylation Target of ATM and ATR and Is Involved in the G2/M DNA Damage Checkpoint Response , 2004, Molecular and Cellular Biology.
[4] Martin Pelikan,et al. Ku and DNA-dependent Protein Kinase Dynamic Conformations and Assembly Regulate DNA Binding and the Initial Non-homologous End Joining Complex* , 2009, The Journal of Biological Chemistry.
[5] P. Jeggo,et al. The Greek Goddess, Artemis, reveals the secrets of her cleavage. , 2002, DNA repair.
[6] B. Monsarrat,et al. Cell nonhomologous end joining capacity controls SAF-A phosphorylation by DNA-PK in response to DNA double-strand breaks inducers , 2009, Cell cycle.
[7] John A. Tainer,et al. Nbs1 Flexibly Tethers Ctp1 and Mre11-Rad50 to Coordinate DNA Double-Strand Break Processing and Repair , 2009, Cell.
[8] M. Christmann,et al. Mechanisms of human DNA repair: an update. , 2003, Toxicology.
[9] S. Lees-Miller,et al. The DNA-dependent protein kinase interacts with DNA to form a protein-DNA complex that is disrupted by phosphorylation. , 2002, Biochemistry.
[10] T. Halazonetis,et al. Emerging common themes in regulation of PIKKs and PI3Ks , 2009, The EMBO journal.
[11] B. A. Ballif,et al. ATM and ATR Substrate Analysis Reveals Extensive Protein Networks Responsive to DNA Damage , 2007, Science.
[12] M. Lieber,et al. Tying loose ends: roles of Ku and DNA-dependent protein kinase in the repair of double-strand breaks. , 1997, Current opinion in genetics & development.
[13] William Arbuthnot Sir Lane,et al. Phosphorylation and Regulation of DNA Ligase IV Stability by DNA-dependent Protein Kinase* , 2004, Journal of Biological Chemistry.
[14] P. Jeggo,et al. The C Terminus of Ku80 Activates the DNA-Dependent Protein Kinase Catalytic Subunit , 1999, Molecular and Cellular Biology.
[15] Ralph Scully,et al. Role of mammalian Mre11 in classical and alternative non-homologous end joining , 2009, Nature Structural &Molecular Biology.
[16] David J. Chen,et al. Autophosphorylation of the DNA-dependent protein kinase catalytic subunit is required for rejoining of DNA double-strand breaks. , 2002, Genes & development.
[17] A. Fischer,et al. Cernunnos, a Novel Nonhomologous End-Joining Factor, Is Mutated in Human Immunodeficiency with Microcephaly , 2006, Cell.
[18] David J. Chen,et al. DNA-PK and ATM phosphorylation sites in XLF/Cernunnos are not required for repair of DNA double strand breaks. , 2008, DNA repair.
[19] Stephen P. Jackson,et al. Conserved modes of recruitment of ATM, ATR and DNA-PKcs to sites of DNA damage , 2005, Nature.
[20] S. Jackson,et al. XLF Interacts with the XRCC4-DNA Ligase IV Complex to Promote DNA Nonhomologous End-Joining , 2006, Cell.
[21] D. Chan,et al. DNA-dependent protein kinase phosphorylation sites in Ku 70/80 heterodimer. , 1999, Biochemistry.
[22] D. Durocher,et al. Xrcc4 physically links DNA end processing by polynucleotide kinase to DNA ligation by DNA ligase IV , 2004, The EMBO journal.
[23] David J. Chen,et al. A DNA-PKcs mutation in a radiosensitive T-B- SCID patient inhibits Artemis activation and nonhomologous end-joining. , 2008, The Journal of clinical investigation.
[24] David J. Chen,et al. Ataxia Telangiectasia Mutated (ATM) Is Essential for DNA-PKcs Phosphorylations at the Thr-2609 Cluster upon DNA Double Strand Break* , 2007, Journal of Biological Chemistry.
[25] P. Clarke,et al. hnRNP-U is a specific DNA-dependent protein kinase substrate phosphorylated in response to DNA double-strand breaks. , 2009, Biochemical and biophysical research communications.
[26] R. Kornberg,et al. Structure of DNA‐dependent protein kinase: implications for its regulation by DNA , 1999, The EMBO journal.
[27] M. Mann,et al. Global, In Vivo, and Site-Specific Phosphorylation Dynamics in Signaling Networks , 2006, Cell.
[28] G. Chu,et al. Cernunnos/XLF promotes the ligation of mismatched and noncohesive DNA ends , 2007, Proceedings of the National Academy of Sciences.
[29] David J. Chen,et al. Solution structure of the C-terminal domain of Ku80 suggests important sites for protein-protein interactions. , 2004, Structure.
[30] K. Willison,et al. Electron microscopy and 3D reconstructions reveal that human ATM kinase uses an arm-like domain to clamp around double-stranded DNA , 2003, Oncogene.
[31] Qi Ding,et al. DNA-PK phosphorylation sites in XRCC4 are not required for survival after radiation or for V(D)J recombination. , 2003, DNA repair.
[32] P. Jeggo,et al. XLF-Cernunnos promotes DNA ligase IV–XRCC4 re-adenylation following ligation , 2008, Nucleic acids research.
[33] K. Schwarz,et al. DNA-PKcs regulates a single-stranded DNA endonuclease activity of Artemis. , 2010, DNA repair.
[34] D. Chan,et al. Utilization of Oriented Peptide Libraries to Identify Substrate Motifs Selected by ATM* , 2000, The Journal of Biological Chemistry.
[35] P. Pourquier,et al. The DNA polymerase λ is required for the repair of non-compatible DNA double strand breaks by NHEJ in mammalian cells , 2006, Nucleic acids research.
[36] Yunmei Ma,et al. The DNA-dependent Protein Kinase Catalytic Subunit Phosphorylation Sites in Human Artemis* , 2005, Journal of Biological Chemistry.
[37] S. Gygi,et al. Profiling of UV-induced ATM/ATR signaling pathways , 2007, Proceedings of the National Academy of Sciences.
[38] M. Mann,et al. Lysine Acetylation Targets Protein Complexes and Co-Regulates Major Cellular Functions , 2009, Science.
[39] S. Lees-Miller,et al. DNA-PK-dependent phosphorylation of Ku70/80 is not required for non-homologous end joining. , 2005, DNA repair.
[40] J. Turchi,et al. DNA-dependent conformational changes in the Ku heterodimer. , 2008, Biochemistry.
[41] S B Curtis,et al. Lethal and potentially lethal lesions induced by radiation--a unified repair model. , 1986, Radiation research.
[42] Erich A Nigg,et al. Phosphoproteome analysis of the human mitotic spindle. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[43] Qi Ding,et al. The DNA-Dependent Protein Kinase Catalytic Subunit Is Phosphorylated In Vivo on Threonine 3950, a Highly Conserved Amino Acid in the Protein Kinase Domain , 2006, Molecular and Cellular Biology.
[44] S. Lees-Miller,et al. Protein Phosphatases Regulate DNA-dependent Protein Kinase Activity* , 2001, The Journal of Biological Chemistry.
[45] Qi Ding,et al. Autophosphorylation-dependent remodeling of the DNA-dependent protein kinase catalytic subunit regulates ligation of DNA ends. , 2004, Nucleic acids research.
[46] David J. Chen,et al. Cell Cycle Dependence of DNA-dependent Protein Kinase Phosphorylation in Response to DNA Double Strand Breaks* , 2005, Journal of Biological Chemistry.
[47] C. Delteil,et al. Interplay between Ku, Artemis, and the DNA-dependent Protein Kinase Catalytic Subunit at DNA Ends* , 2006, Journal of Biological Chemistry.
[48] David J. Chen,et al. Requirement for the Kinase Activity of Human DNA-Dependent Protein Kinase Catalytic Subunit in DNA Strand Break Rejoining , 1999, Molecular and Cellular Biology.
[49] Phoebe L Stewart,et al. Cryo-EM structure of the DNA-dependent protein kinase catalytic subunit at subnanometer resolution reveals alpha helices and insight into DNA binding. , 2008, Structure.
[50] S. Elledge,et al. A quantitative atlas of mitotic phosphorylation , 2008, Proceedings of the National Academy of Sciences.
[51] W. Dynan,et al. Geometry of a complex formed by double strand break repair proteins at a single DNA end: recruitment of DNA-PKcs induces inward translocation of Ku protein. , 1999, Nucleic acids research.
[52] T. Blundell,et al. Structural analysis of DNA-PKcs: modelling of the repeat units and insights into the detailed molecular architecture. , 2004, Journal of structural biology.
[53] Florian Gnad,et al. Large-scale Proteomics Analysis of the Human Kinome , 2009, Molecular & Cellular Proteomics.
[54] Laurence H Pearl,et al. Three-dimensional structure and regulation of the DNA-dependent protein kinase catalytic subunit (DNA-PKcs). , 2005, Structure.
[55] Yunmei Ma,et al. Hairpin Opening and Overhang Processing by an Artemis/DNA-Dependent Protein Kinase Complex in Nonhomologous End Joining and V(D)J Recombination , 2002, Cell.
[56] Richard Harris,et al. The 3D solution structure of the C-terminal region of Ku86 (Ku86CTR). , 2004, Journal of molecular biology.
[57] L. Pearl,et al. Electron microscopy studies on DNA recognition by DNA-PK. , 2004, Micron.
[58] L. Blanco,et al. Limited terminal transferase in human DNA polymerase μ defines the required balance between accuracy and efficiency in NHEJ , 2009, Proceedings of the National Academy of Sciences.
[59] Timothy Woods,et al. Autophosphorylation of the Catalytic Subunit of the DNA-Dependent Protein Kinase Is Required for Efficient End Processing during DNA Double-Strand Break Repair , 2003, Molecular and Cellular Biology.
[60] A. Tomkinson,et al. Interactions of the DNA Ligase IV-XRCC4 Complex with DNA Ends and the DNA-dependent Protein Kinase* , 2000, The Journal of Biological Chemistry.
[61] C. Delteil,et al. Coordinated assembly of Ku and p460 subunits of the DNA-dependent protein kinase on DNA ends is necessary for XRCC4-ligase IV recruitment. , 2003, Journal of molecular biology.
[62] Jeroen Krijgsveld,et al. Lys-N and trypsin cover complementary parts of the phosphoproteome in a refined SCX-based approach. , 2009, Analytical chemistry.
[63] Burkhard Jakob,et al. Autophosphorylation of DNA-PKCS regulates its dynamics at DNA double-strand breaks , 2007, The Journal of cell biology.
[64] David J. Chen,et al. Identification of a Coiled Coil in Werner Syndrome Protein That Facilitates Multimerization and Promotes Exonuclease Processivity* , 2010, The Journal of Biological Chemistry.
[65] John A Tainer,et al. Bridging the solution divide: comprehensive structural analyses of dynamic RNA, DNA, and protein assemblies by small-angle X-ray scattering. , 2010, Current opinion in structural biology.
[66] S. Brunak,et al. Quantitative Phosphoproteomics Reveals Widespread Full Phosphorylation Site Occupancy During Mitosis , 2010, Science Signaling.
[67] S. West,et al. Involvement of human polynucleotide kinase in double‐strand break repair by non‐homologous end joining , 2002, The EMBO journal.
[68] J. Hoeijmakers,et al. Different types of V(D)J recombination and end‐joining defects in DNA double‐strand break repair mutant mammalian cells , 2002, European journal of immunology.
[69] P L Stewart,et al. Cryo-EM imaging of the catalytic subunit of the DNA-dependent protein kinase. , 1998, Journal of molecular biology.
[70] Y. Hosoi,et al. A phosphatidylinositol 3‐kinase inhibitor wortmannin induces radioresistant DNA synthesis and sensitizes cells to bleomycin and ionizing radiation , 1998, International journal of cancer.
[71] David J. Chen,et al. Ku recruits XLF to DNA double‐strand breaks , 2008, EMBO reports.
[72] D. Chan,et al. DNA‐dependent protein kinase catalytic subunit: a target for an ICE‐like protease in apoptosis. , 1996, The EMBO journal.
[73] E. Friedberg,et al. DNA Repair and Mutagenesis , 2006 .
[74] M. Lieber,et al. Interaction of DNA‐dependent protein kinase with DNA and with Ku: biochemical and atomic‐force microscopy studies , 1997, The EMBO journal.
[75] Jimmy K. Eng,et al. Quantitative Phosphoproteomic Analysis of T Cell Receptor Signaling Reveals System-Wide Modulation of Protein-Protein Interactions , 2009, Science Signaling.
[76] S. Jackson,et al. The DNA-dependent protein kinase: Requirement for DNA ends and association with Ku antigen , 1993, Cell.
[77] G. Sapkota,et al. Identification of in vitro and in vivo phosphorylation sites in the catalytic subunit of the DNA-dependent protein kinase. , 2002, The Biochemical journal.
[78] G. Jiang,et al. Exonuclease Function of Human Mre11 Promotes Deletional Nonhomologous End Joining* , 2009, The Journal of Biological Chemistry.
[79] N. Curtin,et al. Preclinical evaluation of a potent novel DNA-dependent protein kinase inhibitor NU7441. , 2006, Cancer research.
[80] F Chen,et al. The three-dimensional structure of the C-terminal DNA-binding domain of human Ku70. , 2001, The Journal of biological chemistry.
[81] Yunmei Ma,et al. The Artemis:DNA-PKcs endonuclease cleaves DNA loops, flaps, and gaps. , 2005, DNA repair.
[82] Benjamin P. C. Chen,et al. DNA double-strand break formation upon UV-induced replication stress activates ATM and DNA-PKcs kinases. , 2009, Journal of molecular biology.
[83] P. Jeggo. Identification of genes involved in repair of DNA double-strand breaks in mammalian cells. , 1998, Radiation research.
[84] B. L. Sibanda,et al. Crystal Structure of DNA-PKcs Reveals a Large Open-Ring Cradle Comprised of HEAT Repeats , 2009, Nature.
[85] Qi Ding,et al. trans Autophosphorylation at DNA-Dependent Protein Kinase's Two Major Autophosphorylation Site Clusters Facilitates End Processing but Not End Joining , 2007, Molecular and Cellular Biology.
[86] Pablo Chacón,et al. Visualization of DNA‐induced conformational changes in the DNA repair kinase DNA‐PKcs , 2003, The EMBO journal.
[87] J. Wang,et al. DNA looping by Ku and the DNA-dependent protein kinase. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[88] C. Sonntag. Free-Radical-Induced DNA Damage and Its Repair: A Chemical Perspective , 2006 .
[89] J. Walker,et al. Structure of the Ku heterodimer bound to DNA and its implications for double-strand break repair , 2001, Nature.
[90] P. Jeggo,et al. DNA‐PK autophosphorylation facilitates Artemis endonuclease activity , 2006, The EMBO journal.
[91] E. Fielden,et al. Primary Free Radical Processes in DNA , 1993 .
[92] Jean Cadet,et al. Oxidation of the sugar moiety of DNA by ionizing radiation or bleomycin could induce the formation of a cluster DNA lesion , 2007, Proceedings of the National Academy of Sciences.
[93] D. Chan,et al. The DNA-dependent Protein Kinase Is Inactivated by Autophosphorylation of the Catalytic Subunit (*) , 1996, The Journal of Biological Chemistry.
[94] D. H. Larsen,et al. Site-specific Phosphorylation Dynamics of the Nuclear Proteome during the DNA Damage Response* , 2010, Molecular & Cellular Proteomics.
[95] S. Smerdon,et al. A Supramodular FHA/BRCT-Repeat Architecture Mediates Nbs1 Adaptor Function in Response to DNA Damage , 2009, Cell.
[96] S. Lees-Miller,et al. DNA-PK: the means to justify the ends? , 2008, Advances in immunology.
[97] Laurence H Pearl,et al. Three-dimensional structure of the human DNA-PKcs/Ku70/Ku80 complex assembled on DNA and its implications for DNA DSB repair. , 2006, Molecular cell.
[98] K. Sakaguchi,et al. Human DNA-activated protein kinase phosphorylates serines 15 and 37 in the amino-terminal transactivation domain of human p53 , 1992, Molecular and cellular biology.
[99] D. Chan,et al. Werner syndrome protein is regulated and phosphorylated by DNA-dependent protein kinase. , 2001, The Journal of biological chemistry.
[100] L. Pearl,et al. Structural model of full‐length human Ku70–Ku80 heterodimer and its recognition of DNA and DNA‐PKcs , 2007, EMBO reports.
[101] Laura A. Sullivan,et al. Global Survey of Phosphotyrosine Signaling Identifies Oncogenic Kinases in Lung Cancer , 2007, Cell.
[102] M. Jovanović,et al. Identification of DNA-PKcs phosphorylation sites in XRCC4 and effects of mutations at these sites on DNA end joining in a cell-free system. , 2004, DNA repair.
[103] S. Lees-Miller,et al. Autophosphorylation of DNA-Dependent Protein Kinase Regulates DNA End Processing and May Also Alter Double-Strand Break Repair Pathway Choice , 2005, Molecular and Cellular Biology.
[104] J. Tainer,et al. Structural dynamics in DNA damage signaling and repair. , 2010, Current opinion in structural biology.
[105] M. Mann,et al. Kinase-selective enrichment enables quantitative phosphoproteomics of the kinome across the cell cycle. , 2008, Molecular cell.
[106] K. Schwarz,et al. Single-stranded DNA ligation and XLF-stimulated incompatible DNA end ligation by the XRCC4-DNA ligase IV complex: influence of terminal DNA sequence , 2007, Nucleic acids research.
[107] S. Soubeyrand,et al. Threonines 2638/2647 in DNA-PK are essential for cellular resistance to ionizing radiation. , 2003, Cancer research.
[108] Yunmei Ma,et al. DNA-PKcs Dependence of Artemis Endonucleolytic Activity, Differences between Hairpins and 5′ or 3′ Overhangs* , 2006, Journal of Biological Chemistry.
[109] David J. Chen,et al. The DNA-dependent Protein Kinase Catalytic Activity Regulates DNA End Processing by Means of Ku Entry into DNA* , 1999, The Journal of Biological Chemistry.
[110] M. Jasin,et al. Distinct effects of DNA-PKcs and Artemis inactivation on signal joint formation in vivo. , 2008, Molecular immunology.
[111] S. Jackson,et al. Mapping of protein-protein interactions within the DNA-dependent protein kinase complex. , 1999, Nucleic acids research.
[112] J. Sgouros,et al. Molecular Characterization of a Human DNA Kinase* , 1999, The Journal of Biological Chemistry.