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: Next-generation sequencing sheds light on Witkop's classification.

作者信息

Bloch-Zupan Agnes, Rey Tristan, Jimenez-Armijo Alexandra, Kawczynski Marzena, Kharouf Naji, Dure-Molla Muriel de La, Noirrit Emmanuelle, Hernandez Magali, Joseph-Beaudin Clara, Lopez Serena, Tardieu Corinne, Thivichon-Prince Béatrice, Dostalova Tatjana, Macek Milan, Alloussi Mustapha El, Qebibo Leila, Morkmued Supawich, Pungchanchaikul Patimaporn, Orellana Blanca Urzúa, Manière Marie-Cécile, Gérard Bénédicte, Bugueno Isaac Maximiliano, Laugel-Haushalter Virginie

机构信息

Université de Strasbourg, Faculté de Chirurgie Dentaire, Strasbourg, France.

Université de Strasbourg, Institut d'études avancées (USIAS), Strasbourg, France.

出版信息

Front Physiol. 2023 May 9;14:1130175. doi: 10.3389/fphys.2023.1130175. eCollection 2023.


DOI:10.3389/fphys.2023.1130175
PMID:37228816
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10205041/
Abstract

Amelogenesis imperfecta (AI) is a heterogeneous group of genetic rare diseases disrupting enamel development (Smith et al., Front Physiol, 2017a, 8, 333). The clinical enamel phenotypes can be described as hypoplastic, hypomineralized or hypomature and serve as a basis, together with the mode of inheritance, to Witkop's classification (Witkop, J Oral Pathol, 1988, 17, 547-553). AI can be described in isolation or associated with others symptoms in syndromes. Its occurrence was estimated to range from 1/700 to 1/14,000. More than 70 genes have currently been identified as causative. We analyzed using next-generation sequencing (NGS) a heterogeneous cohort of AI patients in order to determine the molecular etiology of AI and to improve diagnosis and disease management. Individuals presenting with so called "isolated" or syndromic AI were enrolled and examined at the Reference Centre for Rare Oral and Dental Diseases (O-Rares) using D4/phenodent protocol (www.phenodent.org). Families gave written informed consents for both phenotyping and molecular analysis and diagnosis using a dedicated NGS panel named GenoDENT. This panel explores currently simultaneously 567 genes. The study is registered under NCT01746121 and NCT02397824 (https://clinicaltrials.gov/). GenoDENT obtained a 60% diagnostic rate. We reported genetics results for 221 persons divided between 115 AI index cases and their 106 associated relatives from a total of 111 families. From this index cohort, 73% were diagnosed with non-syndromic amelogenesis imperfecta and 27% with syndromic amelogenesis imperfecta. Each individual was classified according to the AI phenotype. Type I hypoplastic AI represented 61 individuals (53%), Type II hypomature AI affected 31 individuals (27%), Type III hypomineralized AI was diagnosed in 18 individuals (16%) and Type IV hypoplastic-hypomature AI with taurodontism concerned 5 individuals (4%). We validated the genetic diagnosis, with class 4 (likely pathogenic) or class 5 (pathogenic) variants, for 81% of the cohort, and identified candidate variants (variant of uncertain significance or VUS) for 19% of index cases. Among the 151 sequenced variants, 47 are newly reported and classified as class 4 or 5. The most frequently discovered genotypes were associated with and for isolated AI. and genes were the most frequent genes identified for syndromic AI. Patients negative to the panel were resolved with exome sequencing elucidating for example the gene involved ie or digenic inheritance. NGS GenoDENT panel is a validated and cost-efficient technique offering new perspectives to understand underlying molecular mechanisms of AI. Discovering variants in genes involved in syndromic AI ( ) transformed patient overall care. Unravelling the genetic basis of AI sheds light on Witkop's AI classification.

摘要
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/677e/10205041/02aa4cffe403/fphys-14-1130175-g005.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/677e/10205041/5f6a2b786388/fphys-14-1130175-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/677e/10205041/f3f52c094f1b/fphys-14-1130175-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/677e/10205041/b5d565ba919e/fphys-14-1130175-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/677e/10205041/85d709dcfec6/fphys-14-1130175-g004.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/677e/10205041/02aa4cffe403/fphys-14-1130175-g005.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/677e/10205041/5f6a2b786388/fphys-14-1130175-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/677e/10205041/f3f52c094f1b/fphys-14-1130175-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/677e/10205041/b5d565ba919e/fphys-14-1130175-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/677e/10205041/85d709dcfec6/fphys-14-1130175-g004.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/677e/10205041/02aa4cffe403/fphys-14-1130175-g005.jpg

相似文献

[1]
: Next-generation sequencing sheds light on Witkop's classification.

Front Physiol. 2023-5-9

[2]
Protocol GenoDENT: Implementation of a New NGS Panel for Molecular Diagnosis of Genetic Disorders with Orodental Involvement.

Methods Mol Biol. 2019

[3]
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J Appl Oral Sci. 2019-4-1

[4]
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J Med Genet. 2016-2

[5]
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[6]
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[7]
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[8]
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[9]
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[10]
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引用本文的文献

[1]
Genetic Screening of a Nonsyndromic Amelogenesis Imperfecta Patient Cohort Using a Custom smMIP Reagent for Selective Enrichment of Target Loci.

Hum Mutat. 2025-7-22

[2]
Identifying a Novel Causal FAM83H Variant for Autosomal Dominant Amelogenesis Imperfecta Using Exome-Sequencing.

Mol Genet Genomic Med. 2025-6

[3]
Oral health-related quality of life in Northland Māori children and adolescents with Polynesian amelogenesis imperfecta.

Front Dent Med. 2024-11-22

[4]
Dental Management of Genetic Dental Disorders: A Critical Review.

J Dent Res. 2025-4

[5]
Roles of calcium in ameloblasts during tooth development: A scoping review.

J Taibah Univ Med Sci. 2024-12-30

[6]
KMT2D regulates tooth enamel development.

bioRxiv. 2024-12-19

[7]
The intricacies of tooth enamel: Embryonic origin, development and human genetics.

J Struct Biol. 2024-12

[8]
A case of enamel renal syndrome from a novel genetic mutation, multidisciplinary management and long-term prognosis.

Ups J Med Sci. 2024

[9]
Full-mouth rehabilitation with lithium disilicate ceramic crowns in hypoplastic amelogenesis imperfecta: a case report and review of literature.

BMC Oral Health. 2024-9-27

[10]
Association of defects of enamel with polymorphisms in the vitamin D receptor and parathyroid hormone genes.

Braz Dent J. 2024

本文引用的文献

[1]
Enamel Phenotypes: Genetic and Environmental Determinants.

Genes (Basel). 2023-2-22

[2]
Defective claudin-10 causes a novel variation of HELIX syndrome through compromised tight junction strand assembly.

Genes Dis. 2021-7-13

[3]
Phenotypic and genetic spectrum of ATP6V1A encephalopathy: a disorder of lysosomal homeostasis.

Brain. 2022-8-27

[4]
WDR72 regulates vesicle trafficking in ameloblasts.

Sci Rep. 2022-2-18

[5]
Novel Mutations in and Cause Hypomaturation Amelogenesis Imperfecta.

J Pers Med. 2021-12-28

[6]
A genetic model for the secretory stage of dental enamel formation.

J Struct Biol. 2021-12

[7]
Molecular basis of mucopolysaccharidosis IVA (Morquio A syndrome): A review and classification of GALNS gene variants and reporting of 68 novel variants.

Hum Mutat. 2021-11

[8]
Identification of a Homozygous Mutation in a Heimler Syndrome Patient.

Genes (Basel). 2021-4-26

[9]
Maturation stage enamel defects in Odontogenesis-associated phosphoprotein (Odaph) deficient mice.

Dev Dyn. 2021-10

[10]
Natural human knockouts and Mendelian disorders: deep phenotyping in Italian isolates.

Eur J Hum Genet. 2021-8

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