Literature DB >> 25804398

Twelve novel HGD gene variants identified in 99 alkaptonuria patients: focus on 'black bone disease' in Italy.

Martina Nemethova1, Jan Radvanszky1, Ludevit Kadasi1,2, David B Ascher3, Douglas E V Pires3, Tom L Blundell3, Berardino Porfirio4, Alessandro Mannoni5, Annalisa Santucci6, Lia Milucci6, Silvia Sestini7, Gianfranco Biolcati8, Fiammetta Sorge8, Caterina Aurizi8, Robert Aquaron9, Mohammed Alsbou10, Charles Marques Lourenço11, Kanakasabapathi Ramadevi12, Lakshminarayan R Ranganath13, James A Gallagher14, Christa van Kan15, Anthony K Hall16, Birgitta Olsson17, Nicolas Sireau18, Hana Ayoob18, Oliver G Timmis18, Kim-Hanh Le Quan Sang19, Federica Genovese20, Richard Imrich21, Jozef Rovensky21, Rangan Srinivasaraghavan22, Shruthi K Bharadwaj23, Ronen Spiegel24, Andrea Zatkova1.   

Abstract

Alkaptonuria (AKU) is an autosomal recessive disorder caused by mutations in homogentisate-1,2-dioxygenase (HGD) gene leading to the deficiency of HGD enzyme activity. The DevelopAKUre project is underway to test nitisinone as a specific treatment to counteract this derangement of the phenylalanine-tyrosine catabolic pathway. We analysed DNA of 40 AKU patients enrolled for SONIA1, the first study in DevelopAKUre, and of 59 other AKU patients sent to our laboratory for molecular diagnostics. We identified 12 novel DNA variants: one was identified in patients from Brazil (c.557T>A), Slovakia (c.500C>T) and France (c.440T>C), three in patients from India (c.469+6T>C, c.650-85A>G, c.158G>A), and six in patients from Italy (c.742A>G, c.614G>A, c.1057A>C, c.752G>A, c.119A>C, c.926G>T). Thus, the total number of potential AKU-causing variants found in 380 patients reported in the HGD mutation database is now 129. Using mCSM and DUET, computational approaches based on the protein 3D structure, the novel missense variants are predicted to affect the activity of the enzyme by three mechanisms: decrease of stability of individual protomers, disruption of protomer-protomer interactions or modification of residues in the region of the active site. We also present an overview of AKU in Italy, where so far about 60 AKU cases are known and DNA analysis has been reported for 34 of them. In this rather small group, 26 different HGD variants affecting function were described, indicating rather high heterogeneity. Twelve of these variants seem to be specific for Italy.

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Year:  2015        PMID: 25804398      PMCID: PMC4795215          DOI: 10.1038/ejhg.2015.60

Source DB:  PubMed          Journal:  Eur J Hum Genet        ISSN: 1018-4813            Impact factor:   4.246


  38 in total

1.  The nature of the defect in tyrosine metabolism in alcaptonuria.

Authors:  B N LA DU; V G ZANNONI; L LASTER; J E SEEGMILLER
Journal:  J Biol Chem       Date:  1958-01       Impact factor: 5.157

2.  A hierarchical approach to all-atom protein loop prediction.

Authors:  Matthew P Jacobson; David L Pincus; Chaya S Rapp; Tyler J F Day; Barry Honig; David E Shaw; Richard A Friesner
Journal:  Proteins       Date:  2004-05-01

3.  Identification of 11 Novel Homogentisate 1,2 Dioxygenase Variants in Alkaptonuria Patients and Establishment of a Novel LOVD-Based HGD Mutation Database.

Authors:  Andrea Zatkova; Tatiana Sedlackova; Jan Radvansky; Helena Polakova; Martina Nemethova; Robert Aquaron; Ismail Dursun; Jeannette L Usher; Ludevit Kadasi
Journal:  JIMD Rep       Date:  2011-10-20

4.  A quantitative assessment of alkaptonuria: testing the reliability of two disease severity scoring systems.

Authors:  Trevor F Cox; Lakshminarayan Ranganath
Journal:  J Inherit Metab Dis       Date:  2011-07-09       Impact factor: 4.982

5.  The molecular basis of alkaptonuria.

Authors:  J M Fernández-Cañón; B Granadino; D Beltrán-Valero de Bernabé; M Renedo; E Fernández-Ruiz; M A Peñalva; S Rodríguez de Córdoba
Journal:  Nat Genet       Date:  1996-09       Impact factor: 38.330

6.  Molecular defects in alkaptonuria.

Authors:  A Gehrig; S R Schmidt; C R Müller; S Srsen; K Srsnova; W Kress
Journal:  Cytogenet Cell Genet       Date:  1997

7.  Structural and functional analysis of mutations in alkaptonuria.

Authors:  J M Rodríguez; D E Timm; G P Titus; D Beltrán-Valero De Bernabé; O Criado; H A Mueller; S Rodríguez De Córdoba; M A Peñalva
Journal:  Hum Mol Genet       Date:  2000-09-22       Impact factor: 6.150

Review 8.  Alkaptonuria in Slovakia: thirty-two years of research on phenotype and genotype.

Authors:  Stefan Srsen; Clemens R Müller; Andreas Fregin; Klara Srsnova
Journal:  Mol Genet Metab       Date:  2002-04       Impact factor: 4.797

9.  Rapid detection methods for five HGO gene mutations causing alkaptonuria.

Authors:  A Zatkova; A Chmelikova; H Polakova; E Ferakova; L Kadasi
Journal:  Clin Genet       Date:  2003-02       Impact factor: 4.438

10.  SNAP: predict effect of non-synonymous polymorphisms on function.

Authors:  Yana Bromberg; Burkhard Rost
Journal:  Nucleic Acids Res       Date:  2007-05-25       Impact factor: 16.971

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  33 in total

1.  mCSM-PPI2: predicting the effects of mutations on protein-protein interactions.

Authors:  Carlos H M Rodrigues; Yoochan Myung; Douglas E V Pires; David B Ascher
Journal:  Nucleic Acids Res       Date:  2019-07-02       Impact factor: 16.971

2.  Prediction of impacts of mutations on protein structure and interactions: SDM, a statistical approach, and mCSM, using machine learning.

Authors:  Arun Prasad Pandurangan; Tom L Blundell
Journal:  Protein Sci       Date:  2019-11-25       Impact factor: 6.725

3.  mmCSM-AB: guiding rational antibody engineering through multiple point mutations.

Authors:  Yoochan Myung; Douglas E V Pires; David B Ascher
Journal:  Nucleic Acids Res       Date:  2020-07-02       Impact factor: 16.971

4.  Total Shoulder Reverse Arthroplasty in Alkaptonuria: An Effective Option to Treat a Complication of a Rare Disease.

Authors:  Carolina Tiago Afonso; Susana Pinto; Miguel Freitas; Diana Pedrosa; Afonso Ruano
Journal:  J Orthop Case Rep       Date:  2022-01

5.  SDM: a server for predicting effects of mutations on protein stability.

Authors:  Arun Prasad Pandurangan; Bernardo Ochoa-Montaño; David B Ascher; Tom L Blundell
Journal:  Nucleic Acids Res       Date:  2017-07-03       Impact factor: 16.971

6.  Interactive alkaptonuria database: investigating clinical data to improve patient care in a rare disease.

Authors:  Vittoria Cicaloni; Ottavia Spiga; Giovanna Maria Dimitri; Rebecca Maiocchi; Lia Millucci; Daniela Giustarini; Giulia Bernardini; Andrea Bernini; Barbara Marzocchi; Daniela Braconi; Annalisa Santucci
Journal:  FASEB J       Date:  2019-08-28       Impact factor: 5.834

7.  mCSM-AB: a web server for predicting antibody-antigen affinity changes upon mutation with graph-based signatures.

Authors:  Douglas E V Pires; David B Ascher
Journal:  Nucleic Acids Res       Date:  2016-05-23       Impact factor: 16.971

8.  Variant Analysis of Alkaptonuria Families with Significant Founder Effect in Jordan.

Authors:  Raida Khalil; Dema Ali; Nesrin Mwafi; Arwa Alsaraireh; Loiy Obeidat; Eman Albsoul; Ibrahim Al Sbou'
Journal:  Biomed Res Int       Date:  2021-03-11       Impact factor: 3.411

9.  Mycobacterium tuberculosis whole genome sequencing and protein structure modelling provides insights into anti-tuberculosis drug resistance.

Authors:  Jody Phelan; Francesc Coll; Ruth McNerney; David B Ascher; Douglas E V Pires; Nick Furnham; Nele Coeck; Grant A Hill-Cawthorne; Mridul B Nair; Kim Mallard; Andrew Ramsay; Susana Campino; Martin L Hibberd; Arnab Pain; Leen Rigouts; Taane G Clark
Journal:  BMC Med       Date:  2016-03-23       Impact factor: 8.775

10.  Variation in Human Cytochrome P-450 Drug-Metabolism Genes: A Gateway to the Understanding of Plasmodium vivax Relapses.

Authors:  Ana Carolina Rios Silvino; Gabriel Luiz Costa; Flávia Carolina Faustino de Araújo; David Benjamin Ascher; Douglas Eduardo Valente Pires; Cor Jesus Fernandes Fontes; Luzia Helena Carvalho; Cristiana Ferreira Alves de Brito; Tais Nobrega Sousa
Journal:  PLoS One       Date:  2016-07-28       Impact factor: 3.240

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