The molecular tweezer CLR01 inhibits aberrant superoxide dismutase 1 (SOD1) self-assembly in vitro and in the G93A-SOD1 mouse model of ALS
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G. Bitan | T. Schrader | J. Loo | R. Malik | Christian I Corrales | P. Wongkongkathep | M. Spencer | F. Klärner | Helen Meng | Niki Sepanj | Ryan S. Atlasi | Martina Wiedau
[1] R. Malik,et al. Therapeutic Approaches Targeting Protein Aggregation in Amyotrophic Lateral Sclerosis , 2020, Frontiers in Molecular Neuroscience.
[2] G. Bitan,et al. Molecular Lysine Tweezers Counteract Aberrant Protein Aggregation , 2019, Front. Chem..
[3] Amira Mbarek,et al. Pharmaceutical Applications of Molecular Tweezers, Clefts and Clips , 2019, Molecules.
[4] G. Bitan,et al. Investigation of Anti-SOD1 Antibodies Yields New Structural Insight into SOD1 Misfolding and Surprising Behavior of the Antibodies Themselves. , 2018, ACS chemical biology.
[5] G. Bitan,et al. Native Top-Down Mass Spectrometry and Ion Mobility Spectrometry of the Interaction of Tau Protein with a Molecular Tweezer Assembly Modulator , 2018, Journal of The American Society for Mass Spectrometry.
[6] G. Bitan,et al. Using Molecular Tweezers to Remodel Abnormal Protein Self-Assembly and Inhibit the Toxicity of Amyloidogenic Proteins. , 2018, Methods in molecular biology.
[7] G. Bitan,et al. Inhibition of Mutant αB Crystallin‐Induced Protein Aggregation by a Molecular Tweezer , 2017, Journal of the American Heart Association.
[8] M. Chesselet,et al. A Molecular Tweezer Ameliorates Motor Deficits in Mice Overexpressing α-Synuclein , 2017, Neurotherapeutics.
[9] H. Sawada. Clinical efficacy of edaravone for the treatment of amyotrophic lateral sclerosis , 2017, Expert opinion on pharmacotherapy.
[10] E. Wanker,et al. Inhibition of Huntingtin Exon-1 Aggregation by the Molecular Tweezer CLR01. , 2017, Journal of the American Chemical Society.
[11] Blaine R. Roberts,et al. CuII(atsm) improves the neurological phenotype and survival of SOD1G93A mice and selectively increases enzymatically active SOD1 in the spinal cord , 2017, Scientific Reports.
[12] G. Bitan,et al. Molecular tweezers for lysine and arginine - powerful inhibitors of pathologic protein aggregation. , 2016, Chemical communications.
[13] H. Sweeney,et al. Osteopontin ablation ameliorates muscular dystrophy by shifting macrophages to a pro-regenerative phenotype , 2016, The Journal of cell biology.
[14] K. Nakashima,et al. Structural basis of Cu, Zn-superoxide dismutase amyloid fibril formation involves interaction of multiple peptide core regions. , 2016, Journal of biochemistry.
[15] Cassie S. Mitchell,et al. State of the field: An informatics-based systematic review of the SOD1-G93A amyotrophic lateral sclerosis transgenic mouse model , 2015, Amyotrophic lateral sclerosis & frontotemporal degeneration.
[16] G. Bitan,et al. Amyloid β-Protein Assembly: The Effect of Molecular Tweezers CLR01 and CLR03 , 2015, The journal of physical chemistry. B.
[17] R. Morimoto,et al. Proteasome Activation is a Mechanism for Pyrazolone Small Molecules Displaying Therapeutic Potential in Amyotrophic Lateral Sclerosis , 2014, ACS chemical neuroscience.
[18] G. Bitan,et al. Safety and pharmacological characterization of the molecular tweezer CLR01 – a broad-spectrum inhibitor of amyloid proteins’ toxicity , 2014, BMC Pharmacology and Toxicology.
[19] M. Ivanova,et al. Previously Published Works Ucla Title: Molecular Basis for Preventing Α-synuclein Aggregation by a Molecular Tweezer Aggregation by a Molecular Tweezer -synuclein Α Molecular Basis for Preventing , 2022 .
[20] G. Bitan,et al. Disrupting self-assembly and toxicity of amyloidogenic protein oligomers by "molecular tweezers" - from the test tube to animal models. , 2014, Current pharmaceutical design.
[21] G. Bitan,et al. Molecular Tweezers Targeting Transthyretin Amyloidosis , 2014, Neurotherapeutics.
[22] E. L. Guenther,et al. Aggregation-triggering segments of SOD1 fibril formation support a common pathway for familial and sporadic ALS , 2013, Proceedings of the National Academy of Sciences.
[23] N. Nichols,et al. Ventilatory control in ALS , 2013, Respiratory Physiology & Neurobiology.
[24] Robert H. Brown,et al. Amyotrophic lateral sclerosis: Problems and prospects , 2013, Annals of neurology.
[25] A. Chiò,et al. Global Epidemiology of Amyotrophic Lateral Sclerosis: A Systematic Review of the Published Literature , 2013, Neuroepidemiology.
[26] Greg D. Gale,et al. Protection of primary neurons and mouse brain from Alzheimer's pathology by molecular tweezers. , 2012, Brain : a journal of neurology.
[27] G. Bitan,et al. Comparison of three amyloid assembly inhibitors: the sugar scyllo-inositol, the polyphenol epigallocatechin gallate, and the molecular tweezer CLR01. , 2012, ACS chemical neuroscience.
[28] M. Gearing,et al. Localization of a toxic form of superoxide dismutase 1 protein to pathologically affected tissues in familial ALS , 2012, Proceedings of the National Academy of Sciences.
[29] G. Bitan,et al. Modulating Self‐Assembly of Amyloidogenic Proteins as a Therapeutic Approach for Neurodegenerative Diseases: Strategies and Mechanisms , 2012, ChemMedChem.
[30] M. Ivanova,et al. A Novel “Molecular Tweezer” Inhibitor of α-Synuclein Neurotoxicity in Vitro and in Vivo , 2012, Neurotherapeutics.
[31] S. Ajroud‐Driss,et al. Familial amyotrophic lateral sclerosis, a historical perspective , 2011, Acta myologica : myopathies and cardiomyopathies : official journal of the Mediterranean Society of Myology.
[32] Thomas Schrader,et al. Lysine-specific molecular tweezers are broad-spectrum inhibitors of assembly and toxicity of amyloid proteins. , 2011, Journal of the American Chemical Society.
[33] R. Ferrante,et al. Pyrimidine-2,4,6-trione derivatives and their inhibition of mutant SOD1-dependent protein aggregation. Toward a treatment for amyotrophic lateral sclerosis. , 2011, Journal of medicinal chemistry.
[34] Jeffery N Agar,et al. Wild-type and mutant SOD1 share an aberrant conformation and a common pathogenic pathway in ALS , 2010, Nature Neuroscience.
[35] D. Otzen,et al. Strategies to increase the reproducibility of protein fibrillization in plate reader assays. , 2010, Analytical biochemistry.
[36] Peter T Lansbury,et al. Improving binding specificity of pharmacological chaperones that target mutant superoxide dismutase-1 linked to familial amyotrophic lateral sclerosis using computational methods. , 2010, Journal of medicinal chemistry.
[37] James Lani,et al. ANOVA (Analysis of Variance) , 2010 .
[38] P. Andersen,et al. Large-scale SOD1 mutation screening provides evidence for genetic heterogeneity in amyotrophic lateral sclerosis , 2009, Journal of Neurology, Neurosurgery & Psychiatry.
[39] S. Dunnett,et al. Tests to assess motor phenotype in mice: a user's guide , 2009, Nature Reviews Neuroscience.
[40] Julian P. Whitelegge,et al. Initiation and elongation in fibrillation of ALS-linked superoxide dismutase , 2008, Proceedings of the National Academy of Sciences.
[41] T. Schrader,et al. Molecular clip and tweezer introduce new mechanisms of enzyme inhibition. , 2008, Journal of the American Chemical Society.
[42] J. E. Kranz,et al. Design, power, and interpretation of studies in the standard murine model of ALS , 2008, Amyotrophic lateral sclerosis : official publication of the World Federation of Neurology Research Group on Motor Neuron Diseases.
[43] Avijit Chakrabartty,et al. Structure, folding, and misfolding of Cu,Zn superoxide dismutase in amyotrophic lateral sclerosis. , 2006, Biochimica et biophysica acta.
[44] T. Heiman-Patterson,et al. Background and gender effects on survival in the TgN(SOD1-G93A)1Gur mouse model of ALS , 2005, Journal of the Neurological Sciences.
[45] Michael D. Abràmoff,et al. Image processing with ImageJ , 2004 .
[46] Robert H. Brown,et al. Decreased Metallation and Activity in Subsets of Mutant Superoxide Dismutases Associated with Familial Amyotrophic Lateral Sclerosis* 210 , 2002, The Journal of Biological Chemistry.
[47] J. Valentine,et al. Evidence for a Novel Role of Copper-Zinc Superoxide Dismutase in Zinc Metabolism* , 2001, The Journal of Biological Chemistry.
[48] M. Gurney,et al. Formation of high molecular weight complexes of mutant Cu, Zn-superoxide dismutase in a mouse model for familial amyotrophic lateral sclerosis. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[49] D. Borchelt,et al. Variation in the biochemical/biophysical properties of mutant superoxide dismutase 1 enzymes and the rate of disease progression in familial amyotrophic lateral sclerosis kindreds. , 1999, Human molecular genetics.
[50] S. Saby,et al. Influence of water chlorination on the counting of bacteria with DAPI (4',6-diamidino-2-phenylindole) , 1997, Applied and environmental microbiology.
[51] M. Beal,et al. Motor neurons in Cu/Zn superoxide dismutase-deficient mice develop normally but exhibit enhanced cell death after axonal injury , 1996, Nature Genetics.
[52] M. Gurney,et al. Motor neuron degeneration in mice that express a human Cu,Zn superoxide dismutase mutation. , 1994, Science.
[53] J. Nadler,et al. The neuroprotective agent riluzole inhibits release of glutamate and aspartate from slices of hippocampal area CA1. , 1993, European journal of pharmacology.
[54] J. Haines,et al. Mutations in Cu/Zn superoxide dismutase gene are associated with familial amyotrophic lateral sclerosis , 1993, Nature.
[55] J. Valentine,et al. Null mutants of Saccharomyces cerevisiae Cu,Zn superoxide dismutase: characterization and spontaneous mutation rates , 1991, Journal of bacteriology.
[56] C. Scandella,et al. Amino Terminal Acetylation of Authentic Human Cu,Zn Superoxide Dismutase Produced in Yeast , 1987, Bio/Technology.
[57] D. Rogers,et al. SCREENING FOR AMYLOID WITH THE THIOFLAVIN-T FLUORESCENT METHOD. , 1965, American journal of clinical pathology.