Dopachrome tautomerase variants in patients with oculocutaneous albinism
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I. Jackson | P. Pennamen | D. Lacombe | S. Javerzat | Angèle Tingaud-Sequeira | E. Lasseaux | B. Arveiler | J. Kaplan | M. Keighren | I. Gazova | S. Marlin | V. Michaud | Souad Gherbi Halem | C. Delevoye | L. McKie | C. Plaisant
[1] P. Pennamen,et al. BLOC1S5 pathogenic variants cause a new type of Hermansky–Pudlak syndrome , 2020, Genetics in Medicine.
[2] E. Lasseaux,et al. ALBINISM: AN UNDERDIAGNOSED CONDITION. , 2019, The Journal of investigative dermatology.
[3] S. Cross,et al. Missense Mutations in the Human Nanophthalmos Gene TMEM98 Cause Retinal Defects in the Mouse. , 2019, Investigative ophthalmology & visual science.
[4] Z. Zhong,et al. Comprehensive analysis of spectral distribution of a large cohort of Chinese patients with non‐syndromic oculocutaneous albinism facilitates genetic diagnosis , 2019, Pigment cell & melanoma research.
[5] A. Lotery,et al. Oral levodopa rescues retinal morphology and visual function in a murine model of human albinism , 2019, Pigment cell & melanoma research.
[6] R. Guillery,et al. Conversations with Ray Guillery on albinism: linking Siamese cat visual pathway connectivity to mouse retinal development , 2019, The European journal of neuroscience.
[7] N. Schalij-Delfos,et al. The Phenotypic Spectrum of Albinism. , 2018, Ophthalmology.
[8] Zengqiang Yuan,et al. Central role of autophagic UVRAG in melanogenesis and the suntan response , 2018, Proceedings of the National Academy of Sciences.
[9] D. Beis,et al. Identification of Novel Melanin Synthesis Inhibitors From Crataegus pycnoloba Using an in Vivo Zebrafish Phenotypic Assay , 2018, Front. Pharmacol..
[10] P. Pennamen,et al. Molecular characterization of a series of 990 index patients with albinism , 2018, Pigment cell & melanoma research.
[11] T. Heskes,et al. Additive Dose Response Models: Explicit Formulation and the Loewe Additivity Consistency Condition , 2017, bioRxiv.
[12] M. Soler‐Lopez,et al. Structure and Function of Human Tyrosinase and Tyrosinase-Related Proteins. , 2018, Chemistry.
[13] Delphine S Prieur,et al. Retinal axon guidance at the midline: Chiasmatic misrouting and consequences , 2017, Developmental neurobiology.
[14] Gao T. Wang,et al. Molecular outcomes, clinical consequences, and genetic diagnosis of Oculocutaneous Albinism in Pakistani population , 2017, Scientific Reports.
[15] A. Webster,et al. The zebrafish eye—a paradigm for investigating human ocular genetics , 2017, Eye.
[16] K. Niwa,et al. Data on melanin production in B16F1 melanoma cells in the presence of emu oil , 2016, Data in brief.
[17] Bale,et al. Standards and Guidelines for the Interpretation of Sequence Variants: A Joint Consensus Recommendation of the American College of Medical Genetics and Genomics and the Association for Molecular Pathology , 2015, Genetics in Medicine.
[18] M. Lattig,et al. Oculocutaneous albinism (OCA) in Colombia: first molecular screening of the TYR and OCA2 genes in South America. , 2014, Journal of dermatological science.
[19] I. Han,et al. Keratinocyte-derived Laminin-332 Protein Promotes Melanin Synthesis via Regulation of Tyrosine Uptake* , 2014, The Journal of Biological Chemistry.
[20] Wei Li,et al. Increasing the complexity: new genes and new types of albinism , 2014, Pigment cell & melanoma research.
[21] John Bradbury,et al. Recessive mutations in SLC38A8 cause foveal hypoplasia and optic nerve misrouting without albinism. , 2013, American journal of human genetics.
[22] E. Naumova,et al. L-Dopa and the Albino Riddle: Content of L-Dopa in the Developing Retina of Pigmented and Albino Mice , 2013, PloS one.
[23] S. Riazuddin,et al. Molecular genetic studies and delineation of the oculocutaneous albinism phenotype in the Pakistani population , 2012, Orphanet Journal of Rare Diseases.
[24] H. Ihn,et al. Oculocutaneous albinism type 3: a Japanese girl with novel mutations in TYRP1 gene. , 2011, Journal of dermatological science.
[25] F. Proudlock,et al. Erratum: Structural grading of foveal hypoplasia using spectral-domain optical coherence tomography: A predictor of visual acuity? (Ophthalmology (2011) 118 (1653-1160)) , 2011 .
[26] Mervyn G. Thomas,et al. Structural grading of foveal hypoplasia using spectral-domain optical coherence tomography a predictor of visual acuity? , 2011, Ophthalmology.
[27] S. Ekker,et al. Lessons from morpholino-based screening in zebrafish , 2011, Briefings in functional genomics.
[28] A. Ciccodicola,et al. Molecular and clinical characterization of albinism in a large cohort of Italian patients. , 2011, Investigative ophthalmology & visual science.
[29] Niels Morling,et al. Genetic determinants of hair and eye colours in the Scottish and Danish populations , 2009, BMC Genetics.
[30] J. Volff,et al. Pigmentary function and evolution of tyrp1 gene duplicates in fish , 2009, Pigment cell & melanoma research.
[31] M. Tixier-Boichard,et al. Genetic analysis of local Vietnamese chickens provides evidence of gene flow from wild to domestic populations , 2009, BMC Genetics.
[32] R. Spritz,et al. Comprehensive analysis of oculocutaneous albinism among non-Hispanic caucasians shows that OCA1 is the most prevalent OCA type. , 2008, The Journal of investigative dermatology.
[33] J. Lupski,et al. Inhibition of neural crest migration underlies craniofacial dysmorphology and Hirschsprung's disease in Bardet–Biedl syndrome , 2008, Proceedings of the National Academy of Sciences.
[34] Karen Brondum-Nielsen,et al. Oculocutaneous albinism , 2007, Orphanet journal of rare diseases.
[35] R. Boissy,et al. A role for tyrosinase-related protein 1 in 4-tert-butylphenol-induced toxicity in melanocytes: Implications for vitiligo. , 2006, The American journal of pathology.
[36] C. Rooryck,et al. Oculocutaneous albinism with TYRP1 gene mutations in a Caucasian patient. , 2006, Pigment cell research.
[37] I. Jackson,et al. Regulation of pigmentation in zebrafish melanophores. , 2006, Pigment cell research.
[38] F Beermann,et al. Genetics of pigment cells: lessons from the tyrosinase gene family. , 2006, Histology and histopathology.
[39] L. Montoliu,et al. Ectopic expression of tyrosine hydroxylase in the pigmented epithelium rescues the retinal abnormalities and visual function common in albinos in the absence of melanin , 2006, Journal of neurochemistry.
[40] Keith C. Cheng,et al. SLC24A5, a Putative Cation Exchanger, Affects Pigmentation in Zebrafish and Humans , 2005, Science.
[41] J. Dowling,et al. Identification of Zebrafish Insertional Mutants With Defects in Visual System Development and Function , 2005, Genetics.
[42] S. Sivasubbu,et al. Functional genomics tools for the analysis of zebrafish pigment. , 2004, Pigment cell research.
[43] L. Montoliu,et al. A transgenic mouse model with inducible Tyrosinase gene expression using the tetracycline (Tet-on) system allows regulated rescue of abnormal chiasmatic projections found in albinism. , 2004, Pigment cell research.
[44] Friedrich Beermann,et al. Melanocytes and Pigmentation Are Affected in Dopachrome Tautomerase Knockout Mice , 2004, Molecular and Cellular Biology.
[45] I. Jackson,et al. The retinal pigmented epithelium is required for development and maintenance of the mouse neural retina , 1995, Current Biology.
[46] I. Jackson,et al. Structure of the mouse tyrosinase-related protein-2/dopachrome tautomerase (Tyrp2/Dct) gene and sequence of two novel slaty alleles. , 1995, Genomics.
[47] N. Copeland,et al. A second tyrosinase‐related protein, TRP‐2, maps to and is mutated at the mouse slaty locus. , 1992, The EMBO journal.
[48] W. Oetting,et al. Non-random distribution of missense mutations within the human tyrosinase gene in type I (tyrosinase-related) oculocutaneous albinism. , 1991, Molecular biology & medicine.
[49] I. Jackson,et al. The molecular basis of brown, an old mouse mutation, and of an induced revertant to wild type. , 1990, Genetics.
[50] I. Jackson,et al. Identification of the albino mutation of mouse tyrosinase by analysis of an in vitro revertant. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[51] B. Kwon,et al. Conserved cysteine to serine mutation in tyrosinase is responsible for the classical albino mutation in laboratory mice. , 1990, Nucleic acids research.