Multilevel complex interactions between genetic, epigenetic and environmental factors in the aetiology of anomalies of dental development
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[1] I. Thesleff,et al. Reiterative signaling and patterning during mammalian tooth morphogenesis , 2000, Mechanisms of Development.
[2] S. Baig,et al. A novel missense mutation in the EDA gene associated with X-linked recessive isolated hypodontia , 2008, Journal of Human Genetics.
[3] R. N. Smith,et al. Tooth size in patients with supernumerary teeth and a control group measured by image analysis system. , 2005, Archives of oral biology.
[4] Isaac Salazar-Ciudad,et al. A gene network model accounting for development and evolution of mammalian teeth , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[5] T. Hart,et al. MMP-20 mutation in autosomal recessive pigmented hypomaturation amelogenesis imperfecta , 2005, Journal of Medical Genetics.
[6] H. Birkedal‐Hansen,et al. Enamelysin (Matrix Metalloproteinase 20)-deficient Mice Display an Amelogenesis Imperfecta Phenotype* , 2002, The Journal of Biological Chemistry.
[7] A. Fincham,et al. Amelogenin proteins of developing dental enamel. , 1997, Ciba Foundation symposium.
[8] P. Crawford,et al. Regional odontodysplasia: a bibliography. , 1989, Journal of oral pathology & medicine : official publication of the International Association of Oral Pathologists and the American Academy of Oral Pathology.
[9] Nobuyuki Itoh,et al. Regulation of Mammalian Tooth Cusp Patterning by Ectodin , 2005, Science.
[10] Ian M. Carr,et al. Mutations in CNNM4 Cause Jalili Syndrome, Consisting of Autosomal-Recessive Cone-Rod Dystrophy and Amelogenesis Imperfecta , 2009, American journal of human genetics.
[11] Paul G Blackwell,et al. The patterning of hypodontia in a group of young adults in Sheffield, UK. , 2005, Archives of oral biology.
[12] P. Sharpe,et al. The cutting-edge of mammalian development; how the embryo makes teeth , 2004, Nature Reviews Genetics.
[13] I. Thesleff,et al. Evidence for the role of the enamel knot as a control center in mammalian tooth cusp formation: non-dividing cells express growth stimulating Fgf-4 gene. , 1994, The International journal of developmental biology.
[14] G. Karsenty,et al. Cbfa1 is required for epithelial-mesenchymal interactions regulating tooth development in mice. , 1999, Development.
[15] G. Prescott,et al. Oral facial genetics , 1976 .
[16] M. Ota,et al. Lrp4 Modulates Extracellular Integration of Cell Signaling Pathways in Development , 2008, PloS one.
[17] J. Fearne,et al. Molar incisor hypomineralization: a study of aetiological factors in a group of UK children. , 2008, International journal of paediatric dentistry.
[18] R. Maas,et al. FGFs and BMP4 induce both Msx1-independent and Msx1-dependent signaling pathways in early tooth development. , 1998, Development.
[19] O. Elmasry,et al. Patent arterial duct , 2015 .
[20] G. B. Winter,et al. Enamel hypoplasia and anomalies of the enamel. , 1975, Dental clinics of North America.
[21] R. Maas,et al. The genetic control of early tooth development. , 1997, Critical reviews in oral biology and medicine : an official publication of the American Association of Oral Biologists.
[22] S. Keränen,et al. The life history of an embryonic signaling center: BMP-4 induces p21 and is associated with apoptosis in the mouse tooth enamel knot. , 1998, Development.
[23] T. Vartiainen,et al. Developing teeth as biomarker of dioxin exposure , 1999, The Lancet.
[24] K. Unsicker,et al. Cell Signaling and Growth Factors in Development , 2005 .
[25] S. Suga. Enamel Hypomineralization Viewed From the Pattern of Progressive Mineralization of Human and Monkey Developing Enamel , 1989, Advances in dental research.
[26] E. Beniash,et al. Decreased Mineral Content in MMP-20 Null Mouse Enamel is Prominent During the Maturation Stage , 2004, Journal of dental research.
[27] Thomas F. Lee. Genes and Disease , 1993 .
[28] G. B. Winter. Amelogenesis imperfecta with enamel opacities and taurodontism: an alternative diagnosis for 'idiopathic dental fluorosis' , 1996, British Dental Journal.
[29] Y. Chai,et al. Contents , 2007, Mechanisms of Development.
[30] H. Jung,et al. Genotype, phenotype, and developmental biology of molar tooth characters. , 2000, American journal of physical anthropology.
[31] B. Bäckman. Amelogenesis imperfecta--clinical manifestations in 51 families in a northern Swedish county. , 1988, Scandinavian journal of dental research.
[32] R. Grosschedl,et al. TNF signaling via the ligand-receptor pair ectodysplasin and edar controls the function of epithelial signaling centers and is regulated by Wnt and activin during tooth organogenesis. , 2001, Developmental biology.
[33] T. Hart,et al. Identification of the enamelin (g.8344delG) mutation in a new kindred and presentation of a standardized ENAM nomenclature. , 2003, Archives of oral biology.
[34] W. E. Amerongen,et al. Cheese molars: a pilot study of the etiology of hypocalcifications in first permanent molars. , 1995, ASDC journal of dentistry for children.
[35] R N Smith,et al. Variability and patterning in permanent tooth size of four human ethnic groups. , 2009, Archives of oral biology.
[36] V. Chu,et al. Molar incisor hypomineralization in Hong Kong Chinese children. , 2008, International journal of paediatric dentistry.
[37] E. Fıratlı,et al. Phenotype of ENAM Mutations is Dosage-dependent , 2005, Journal of dental research.
[38] Yoshihiko Yamada,et al. Essential Roles of Ameloblastin in Maintaining Ameloblast Differentiation and Enamel Formation , 2006, Cells Tissues Organs.
[39] Alistair R. Evans,et al. Predicting evolutionary patterns of mammalian teeth from development , 2007, Nature.
[40] P. Sharpe,et al. Homeobox genes and orofacial development. , 1995, Connective tissue research.
[41] H. Luder,et al. Deletion of BMP7 affects the development of bones, teeth, and other ectodermal appendages of the orofacial complex. , 2009, Journal of experimental zoology. Part B, Molecular and developmental evolution.
[42] Claire Elcock,et al. The new Enamel Defects Index: testing and expansion. , 2006, European journal of oral sciences.
[43] G. Townsend,et al. Tooth size patterns in patients with hypodontia and supernumerary teeth. , 2009, Archives of oral biology.
[44] Y. Chai,et al. Antagonistic Actions of Msx1 and Osr2 Pattern Mammalian Teeth into a Single Row , 2009, Science.
[45] Hiroshi Masuya,et al. Enamelin (Enam) is essential for amelogenesis: ENU-induced mouse mutants as models for different clinical subtypes of human amelogenesis imperfecta (AI). , 2005, Human molecular genetics.
[46] A. Brook,et al. Enamel defects in extracted and exfoliated teeth from patients with Amelogenesis Imperfecta, measured using the extended enamel defects index and image analysis , 2009, Archives of oral biology.
[47] B. Hansson,et al. Epidemiologic study of idiopathic enamel hypomineralization in permanent teeth of Swedish children. , 1987, Community dentistry and oral epidemiology.
[48] D. Bowden,et al. Identification of a mutation in DLX3 associated with tricho-dento-osseous (TDO) syndrome. , 1998, Human molecular genetics.
[49] P. Sharpe,et al. Molecular Genetics of Tooth Morphogenesis and Patterning: The Right Shape in the Right Place , 1999, Journal of dental research.
[50] J. Perheentupa,et al. Clinical variation of autoimmune polyendocrinopathy-candidiasis-ectodermal dystrophy (APECED) in a series of 68 patients. , 1990, The New England journal of medicine.
[51] R. N. Smith,et al. Further Studies of a Model for the Etiology of Anomalies of Tooth Number and Size in Humans , 2002, Connective tissue research.
[52] A. Brook,et al. The aetiology of developmental defects of enamel: a prevalence and family study in East London, U.K. , 1998, Connective tissue research.
[53] M. Escamilla,et al. DLX3 mutation associated with autosomal dominant amelogenesis imperfecta with taurodontism , 2005, American journal of medical genetics. Part A.
[54] A. Vaahtokari,et al. Apoptosis in the developing tooth: association with an embryonic signaling center and suppression by EGF and FGF-4. , 1996, Development.
[55] J. Seidman,et al. A nonsense mutation in MSX1 causes Witkop syndrome. , 2001, American journal of human genetics.
[56] H. Ohshima,et al. Inhibition of Apoptosis in Early Tooth Development Alters Tooth Shape and Size , 2006, Journal of dental research.
[57] G. Klingberg,et al. Etiologic factors influencing the prevalence of demarcated opacities in permanent first molars in a group of Swedish children. , 2001, European journal of oral sciences.
[58] M. Ozdemir-Karatas,et al. MMP20 Active-site Mutation in Hypomaturation Amelogenesis Imperfecta , 2005, Journal of dental research.
[59] S. King,et al. MSX1 and Orofacial Clefting with and without Tooth Agenesis , 2006, Journal of dental research.
[60] A. Brook,et al. Environmental causes of enamel defects. , 1997, Ciba Foundation symposium.
[61] C. Gibson,et al. Relationship of Phenotype and Genotype in X-Linked Amelogenesis Imperfecta , 2003, Connective tissue research.
[62] Yong Li,et al. A developmental comparison of matrix metalloproteinase-20 and amelogenin null mouse enamel. , 2006, European journal of oral sciences.
[63] Mark F. Teaford,et al. Development, Function and Evolution of Teeth: Tooth tissues: development and evolution , 2000 .
[64] P. Sharpe,et al. Tooth and jaw: molecular mechanisms of patterning in the first branchial arch. , 2003, Archives of oral biology.
[65] Peter J. Park,et al. Apc inhibition of Wnt signaling regulates supernumerary tooth formation during embryogenesis and throughout adulthood , 2009, Development.
[66] O. Klein,et al. Sprouty genes control diastema tooth development via bidirectional antagonism of epithelial-mesenchymal FGF signaling. , 2006, Developmental cell.
[67] J. T. Wright,et al. Mutation in kallikrein 4 causes autosomal recessive hypomaturation amelogenesis imperfecta , 2004, Journal of Medical Genetics.
[68] P. Overbeek,et al. The activation level of the TNF family receptor, Edar, determines cusp number and tooth number during tooth development. , 2004, Developmental biology.
[69] A. Berdal,et al. Expression pattern of Dlx3 during cell differentiation in mineralized tissues. , 2005, Bone.
[70] G. Robinson,et al. Differential and overlapping expression domains of Dlx-2 and Dlx-3 suggest distinct roles for Distal-less homeobox genes in craniofacial development , 1994, Mechanisms of Development.
[71] T. Hart,et al. Amelogenesis imperfecta phenotype-genotype correlations with two amelogenin gene mutations. , 2002, Archives of oral biology.
[72] M. Depew,et al. Physiological implications of DLX homeoproteins in enamel formation , 2008, Journal of cellular physiology.
[73] K. Kratochwil,et al. Pax9-deficient mice lack pharyngeal pouch derivatives and teeth and exhibit craniofacial and limb abnormalities. , 1998, Genes & development.
[74] R N Smith,et al. Tooth dimensions in hypodontia with a known PAX9 mutation. , 2009, Archives of oral biology.
[75] A. McMahon,et al. Shh signaling within the dental epithelium is necessary for cell proliferation, growth and polarization , 2002, Development.
[76] Yong Li,et al. Human and Mouse Enamel Phenotypes Resulting from Mutation or Altered Expression of AMEL, ENAM, MMP20 and KLK4 , 2008, Cells Tissues Organs.
[77] P. Sharpe,et al. Patterning of the murine dentition by homeobox genes. , 1998, European journal of oral sciences.
[78] P. Sharpe,et al. Transformation of tooth type induced by inhibition of BMP signaling. , 1998, Science.
[79] A. Brook,et al. Regional odontodysplasia: a clinical and histological evaluation. , 1986, Journal of the International Association of Dentistry for Children.
[80] Z. Lee,et al. FAM83H mutations in families with autosomal-dominant hypocalcified amelogenesis imperfecta. , 2008, American journal of human genetics.
[81] R. Balling,et al. Antagonistic Interactions between FGF and BMP Signaling Pathways: A Mechanism for Positioning the Sites of Tooth Formation , 1997, Cell.
[82] H. Lesot,et al. Epithelial histogenesis during tooth development. , 2009, Archives of oral biology.
[83] I. Thesleff,et al. The genetic basis of tooth development and dental defects , 2006, American journal of medical genetics. Part A.
[84] R. D'Souza,et al. Genes affecting tooth morphogenesis. , 2007, Orthodontics & craniofacial research.
[85] T. Pemberton,et al. A novel Gln358Glu mutation in ectodysplasin A associated with X‐linked dominant incisor hypodontia , 2007, American journal of medical genetics. Part A.
[86] A. Verloes,et al. The genetic basis of inherited anomalies of the teeth. Part 1: clinical and molecular aspects of non-syndromic dental disorders. , 2008, European journal of medical genetics.
[87] R. Maas,et al. Msx1 controls inductive signaling in mammalian tooth morphogenesis. , 1996, Development.
[88] G. Holmgren,et al. A nonsense mutation in the enamelin gene causes local hypoplastic autosomal dominant amelogenesis imperfecta (AIH2). , 2002, Human molecular genetics.
[89] A H Brook,et al. A unifying aetiological explanation for anomalies of human tooth number and size. , 1984, Archives of oral biology.
[90] M. Fukae,et al. Dentin Glycoprotein , 2005, Journal of Biological Chemistry.
[91] Masahito Watanabe,et al. IN MICE , 2009 .
[92] J. Simmer,et al. Enamel Formation and Amelogenesis Imperfecta , 2007, Cells Tissues Organs.
[93] P. Sharpe,et al. Mouse models of tooth abnormalities. , 2008, European journal of oral sciences.
[94] J. T. Wright. The molecular etiologies and associated phenotypes of amelogenesis imperfecta , 2006, American journal of medical genetics. Part A.
[95] L. Aine. Coeliac-type permanent-tooth enamel defects. , 1996, Annals of medicine.
[96] Jung‐Wook Kim,et al. Mutational analysis of candidate genes in 24 amelogenesis imperfecta families. , 2006, European journal of oral sciences.
[97] H. Lesot,et al. Phylogenetic memory of developing mammalian dentition. , 2006, Journal of experimental zoology. Part B, Molecular and developmental evolution.
[98] K. Christensen,et al. Complete sequencing shows a role for MSX1 in non-syndromic cleft lip and palate , 2003, Journal of medical genetics.
[99] I. Thesleff,et al. Stimulation of ectodermal organ development by Ectodysplasin-A1. , 2003, Developmental biology.
[100] Winter Gb,et al. Enamel hypoplasia and anomalies of the enamel. , 1975 .
[101] P. Krebsbach,et al. A Transgenic Animal Model Resembling Amelogenesis Imperfecta Related to Ameloblastin Overexpression* , 2003, Journal of Biological Chemistry.
[102] J. Simmer,et al. Enamelysin and kallikrein-4 mRNA expression in developing mouse molars. , 2002, European journal of oral sciences.
[103] E. Beniash,et al. Formation of the dentino-enamel interface in enamelysin (MMP-20)-deficient mouse incisors. , 2006, European journal of oral sciences.
[104] Lin He,et al. A novel missense mutation of the EDA gene in a Mongolian family with congenital hypodontia , 2006, Journal of Human Genetics.
[105] A. Brook,et al. Developmental arrest of permanent tooth germs following pulpal infection of deciduous teeth , 1975, British Dental Journal.
[106] A. Linde,et al. Induction and inhibition of hydroxyapatite formation by rat dentine phosphoprotein in vitro. , 1988, Archives of oral biology.
[107] P. Dehaseth,et al. Mechanistic Differences in Promoter DNA Melting by Thermus aquaticus and Escherichia coli RNA Polymerases* , 2005, Journal of Biological Chemistry.
[108] Alan Brook,et al. Defining new dental phenotypes using 3-D image analysis to enhance discrimination and insights into biological processes , 2009, Archives of oral biology.
[109] T. Hart,et al. Phenotypic Variation in FAM83H-associated Amelogenesis Imperfecta , 2009, Journal of dental research.
[110] A. Brook,et al. The development of a new index to measure enamel defects , 2001 .
[111] A. Brook,et al. Tooth dimensions in hypodontia patients, their unaffected relatives and a control group measured by a new image analysis system. , 2002, European journal of orthodontics.
[112] M. Snead,et al. Ectopic Expression of Dentin Sialoprotein during Amelogenesis Hardens Bulk Enamel* , 2007, Journal of Biological Chemistry.
[113] Richard H. Madden. Development, Function and Evolution of Teeth , 2001 .
[114] H. Slavkin. Tooth Development , 1995, Advances in dental research.
[115] E. F. Harris,et al. Morphogenetic fields within the human dentition: A new, clinically relevant synthesis of an old concept☆ , 2009, Archives of oral biology.
[116] A. Kulkarni,et al. Dentin Sialophosphoprotein Knockout Mouse Teeth Display Widened Predentin Zone and Develop Defective Dentin Mineralization Similar to Human Dentinogenesis Imperfecta Type III* , 2003, Journal of Biological Chemistry.
[117] A. Brook,et al. Enamel defects in the primary dentition of children born weighing less than 2000 g , 1990, British Dental Journal.
[118] L. Viriot,et al. Development of the Vestigial Tooth Primordia as Part of Mouse Odontogenesis , 2002, Connective tissue research.
[119] Nobuyuki Itoh,et al. Identification of a secreted BMP antagonist, ectodin, integrating BMP, FGF, and SHH signals from the tooth enamel knot. , 2003, Developmental biology.
[120] A. Holm,et al. Amelogenesis imperfecta: prevalence and incidence in a northern Swedish county. , 1986, Community dentistry and oral epidemiology.