A patient-derived olfactory stem cell disease model for ataxia-telangiectasia.
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M. Gatei | A. Mackay-Sim | N. Matigian | M. Lavin | Gautam Wali | Bernadette M Bellette | R. Sutharsan | M. Coulthard | S. Kozlov | K. Sinclair | C. Perry | J. Cochrane | Romal Stewart | Amanda Wraith-Kijas | G. Wali | Bernadette M. Bellette
[1] A. Mackay-Sim,et al. Neurogenesis in the Adult Olfactory Epithelium , 2015 .
[2] Richard L. Doty,et al. Handbook of Olfaction and Gustation , 2015 .
[3] A. Mackay-Sim. Concise Review: Patient‐Derived Olfactory Stem Cells: New Models for Brain Diseases , 2012, Stem cells.
[4] C. Wells,et al. Induced Pluripotent Stem Cells from Ataxia‐Telangiectasia Recapitulate the Cellular Phenotype , 2012, Stem cells translational medicine.
[5] David A. Williams,et al. Overcoming reprogramming resistance of Fanconi anemia cells. , 2012, Blood.
[6] P. Mckinnon. ATM and the molecular pathogenesis of ataxia telangiectasia. , 2012, Annual review of pathology.
[7] A. Mackay-Sim,et al. Altered Cell Cycle Dynamics in Schizophrenia , 2012, Biological Psychiatry.
[8] A. Mackay-Sim,et al. Characterization of Olfactory Stem Cells , 2011, Cell transplantation.
[9] F. Roman,et al. Isolating Nasal Olfactory Stem Cells from Rodents or Humans , 2011, Journal of visualized experiments : JoVE.
[10] John Quackenbush,et al. Variance of Gene Expression Identifies Altered Network Constraints in Neurological Disease , 2011, PLoS genetics.
[11] T. Dörk,et al. ATM Protein-dependent Phosphorylation of Rad50 Protein Regulates DNA Repair and Cell Cycle Control* , 2011, The Journal of Biological Chemistry.
[12] Christine A. Wells,et al. NRF2 Activation Restores Disease Related Metabolic Deficiencies in Olfactory Neurosphere-Derived Cells from Patients with Sporadic Parkinson's Disease , 2011, PloS one.
[13] K. Khanna,et al. ATM protein kinase: the linchpin of cellular defenses to stress , 2011, Cellular and Molecular Life Sciences.
[14] T. Suda,et al. Ataxia-telangiectasia mutated (ATM) deficiency decreases reprogramming efficiency and leads to genomic instability in iPS cells. , 2011, Biochemical and biophysical research communications.
[15] S. Jackson,et al. Dynamics of DNA damage response proteins at DNA breaks: a focus on protein modifications. , 2011, Genes & development.
[16] B. Loriod,et al. Olfactory Stem Cells, a New Cellular Model for Studying Molecular Mechanisms Underlying Familial Dysautonomia , 2010, PloS one.
[17] David J. Chen,et al. ATM-Dependent and -Independent Dynamics of the Nuclear Phosphoproteome After DNA Damage , 2010, Science Signaling.
[18] C. Wells,et al. Disease-specific, neurosphere-derived cells as models for brain disorders , 2010, Disease Models & Mechanisms.
[19] M. Lavin,et al. ATM Activation by Oxidative Stress , 2010, Science.
[20] Y. Yanagawa,et al. Ontogeny-recapitulating generation and tissue integration of ES cell–derived Purkinje cells , 2010, Nature Neuroscience.
[21] J. Ringe,et al. The human nose harbors a niche of olfactory ectomesenchymal stem cells displaying neurogenic and osteogenic properties. , 2010, Stem cells and development.
[22] Keiji Suzuki,et al. Autophosphorylation and ATM activation: Additional sites add to the complexity , 2010 .
[23] Anthony J. Davis,et al. Autophosphorylation at serine 1981 stabilizes ATM at DNA damage sites , 2009, The Journal of cell biology.
[24] J. Gautier,et al. PIKK-dependent phosphorylation of Mre11 induces MRN complex inactivation by disassembly from chromatin. , 2009, DNA repair.
[25] Manuel Serrano,et al. A p53-mediated DNA damage response limits reprogramming to ensure iPS cell genomic integrity , 2009, Nature.
[26] A. Consiglio,et al. Disease-corrected haematopoietic progenitors from Fanconi anaemia induced pluripotent stem cells , 2009, Nature.
[27] T. Dörk,et al. Human RAD50 deficiency in a Nijmegen breakage syndrome-like disorder. , 2009, American journal of human genetics.
[28] A. Vescovi,et al. DNA-damage response, survival and differentiation in vitro of a human neural stem cell line in relation to ATM expression , 2009, Cell Death and Differentiation.
[29] M. Lavin,et al. Ataxia-telangiectasia: from a rare disorder to a paradigm for cell signalling and cancer , 2008, Nature Reviews Molecular Cell Biology.
[30] Keith W. Caldecott,et al. Single-strand break repair and genetic disease , 2008, Nature Reviews Genetics.
[31] P. Jeggo,et al. ATM signaling facilitates repair of DNA double-strand breaks associated with heterochromatin. , 2008, Molecular cell.
[32] Pan Du,et al. lumi: a pipeline for processing Illumina microarray , 2008, Bioinform..
[33] Alan Mackay-Sim,et al. Fibroblast and Lymphoblast Gene Expression Profiles in Schizophrenia: Are Non-Neural Cells Informative? , 2008, PloS one.
[34] M. Lavin. Ataxia-telangiectasia: from a rare disorder to a paradigm for cell signalling and cancer , 2008, Nature Reviews Molecular Cell Biology.
[35] K. Caldecott,et al. DNA strand break repair and human genetic disease. , 2007, Annual review of genomics and human genetics.
[36] S. West,et al. Defective DNA Repair and Neurodegenerative Disease , 2007, Cell.
[37] M. Gatei,et al. Senataxin, defective in ataxia oculomotor apraxia type 2, is involved in the defense against oxidative DNA damage , 2007, The Journal of cell biology.
[38] B. A. Ballif,et al. ATM and ATR Substrate Analysis Reveals Extensive Protein Networks Responsive to DNA Damage , 2007, Science.
[39] Y. Shiloh,et al. ATM-mediated response to DNA double strand breaks in human neurons derived from stem cells. , 2007, DNA Repair.
[40] M. Lavin,et al. Involvement of novel autophosphorylation sites in ATM activation , 2006, The EMBO journal.
[41] M. Jurga,et al. Early appearance of stem/progenitor cells with neural-like characteristics in human cord blood mononuclear fraction cultured in vitro. , 2006, Experimental hematology.
[42] W. Kerr,et al. The thrombopoietin receptor, c-Mpl, is a selective surface marker for human hematopoietic stem cells , 2006, Journal of Translational Medicine.
[43] A. Mackay-Sim,et al. Multipotent stem cells from adult olfactory mucosa , 2005, Developmental dynamics : an official publication of the American Association of Anatomists.
[44] M. Kastan,et al. Phosphorylation of SMC1 is a critical downstream event in the ATM-NBS1-BRCA1 pathway. , 2004, Genes & development.
[45] Kai Rothkamm,et al. A Double-Strand Break Repair Defect in ATM-Deficient Cells Contributes to Radiosensitivity , 2004, Cancer Research.
[46] M. Kastan,et al. Analyzing cell cycle checkpoints after ionizing radiation. , 2004, Methods in molecular biology.
[47] M. Lavin,et al. Oxidative Stress Is Responsible for Deficient Survival and Dendritogenesis in Purkinje Neurons from Ataxia-Telangiectasia Mutated Mutant Mice , 2003, The Journal of Neuroscience.
[48] M. Kastan,et al. DNA damage activates ATM through intermolecular autophosphorylation and dimer dissociation , 2003, Nature.
[49] F. Gage,et al. Ataxia telangiectasia mutated is essential during adult neurogenesis. , 2001, Genes & development.
[50] V. Yamazaki,et al. A critical role for histone H2AX in recruitment of repair factors to nuclear foci after DNA damage , 2000, Current Biology.
[51] A. Mackay-Sim,et al. New techniques for biopsy and culture of human olfactory epithelial neurons. , 1998, Archives of otolaryngology--head & neck surgery.
[52] M. Lovett,et al. A single ataxia telangiectasia gene with a product similar to PI-3 kinase. , 1995, Science.
[53] M. Lavin,et al. Radiosensitivity in ataxia-telangiectasia: anomalies in radiation-induced cell cycle delay. , 1994, International journal of radiation biology.
[54] B. Windle,et al. High resolution visual mapping of stretched DNA by fluorescent hybridization , 1993, Nature Genetics.
[55] M. Leppert,et al. Localization of an ataxia-telangiectasia gene to chromosome 11q22–23 , 1988, Nature.
[56] E. Boder. Ataxia-telangiectasia: an overview. , 1985, Kroc Foundation series.
[57] M. Lavin,et al. Effect of ionizing radiation on DNA synthesis in ataxia telangiectasia cells. , 1980, Nucleic acids research.
[58] M. Lavin,et al. Identification of ataxia telangiectasia heterozygotes, a cancer prone population , 1978, Nature.