Literature DB >> 22200994

Mutation screening of 75 candidate genes in 152 complex I deficiency cases identifies pathogenic variants in 16 genes including NDUFB9.

Tobias B Haack1, Florence Madignier, Martina Herzer, Eleonora Lamantea, Katharina Danhauser, Federica Invernizzi, Johannes Koch, Martin Freitag, Rene Drost, Ingo Hillier, Birgit Haberberger, Johannes A Mayr, Uwe Ahting, Valeria Tiranti, Agnes Rötig, Arcangela Iuso, Rita Horvath, Marketa Tesarova, Ivo Baric, Graziella Uziel, Boris Rolinski, Wolfgang Sperl, Thomas Meitinger, Massimo Zeviani, Peter Freisinger, Holger Prokisch.   

Abstract

BACKGROUND: Mitochondrial complex I deficiency is the most common cause of mitochondrial disease in childhood. Identification of the molecular basis is difficult given the clinical and genetic heterogeneity. Most patients lack a molecular definition in routine diagnostics.
METHODS: A large-scale mutation screen of 75 candidate genes in 152 patients with complex I deficiency was performed by high-resolution melting curve analysis and Sanger sequencing. The causal role of a new disease allele was confirmed by functional complementation assays. The clinical phenotype of patients carrying mutations was documented using a standardised questionnaire.
RESULTS: Causative mutations were detected in 16 genes, 15 of which had previously been associated with complex I deficiency: three mitochondrial DNA genes encoding complex I subunits, two mitochondrial tRNA genes and nuclear DNA genes encoding six complex I subunits and four assembly factors. For the first time, a causal mutation is described in NDUFB9, coding for a complex I subunit, resulting in reduction in NDUFB9 protein and both amount and activity of complex I. These features were rescued by expression of wild-type NDUFB9 in patient-derived fibroblasts.
CONCLUSION: Mutant NDUFB9 is a new cause of complex I deficiency. A molecular diagnosis related to complex I deficiency was established in 18% of patients. However, most patients are likely to carry mutations in genes so far not associated with complex I function. The authors conclude that the high degree of genetic heterogeneity in complex I disorders warrants the implementation of unbiased genome-wide strategies for the complete molecular dissection of mitochondrial complex I deficiency.

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Year:  2011        PMID: 22200994     DOI: 10.1136/jmedgenet-2011-100577

Source DB:  PubMed          Journal:  J Med Genet        ISSN: 0022-2593            Impact factor:   6.318


  36 in total

1.  Complex I assembly function and fatty acid oxidation enzyme activity of ACAD9 both contribute to disease severity in ACAD9 deficiency.

Authors:  Manuel Schiff; Birgit Haberberger; Chuanwu Xia; Al-Walid Mohsen; Eric S Goetzman; Yudong Wang; Radha Uppala; Yuxun Zhang; Anuradha Karunanidhi; Dolly Prabhu; Hana Alharbi; Edward V Prochownik; Tobias Haack; Johannes Häberle; Arnold Munnich; Agnes Rötig; Robert W Taylor; Robert D Nicholls; Jung-Ja Kim; Holger Prokisch; Jerry Vockley
Journal:  Hum Mol Genet       Date:  2015-02-26       Impact factor: 6.150

2.  MIEF1 Microprotein Regulates Mitochondrial Translation.

Authors:  Annie Rathore; Qian Chu; Dan Tan; Thomas F Martinez; Cynthia J Donaldson; Jolene K Diedrich; John R Yates; Alan Saghatelian
Journal:  Biochemistry       Date:  2018-09-14       Impact factor: 3.162

Review 3.  NDUFS6 related Leigh syndrome: a case report and review of the literature.

Authors:  Cécile Rouzier; Annabelle Chaussenot; Konstantina Fragaki; Valérie Serre; Samira Ait-El-Mkadem; Christian Richelme; Véronique Paquis-Flucklinger; Sylvie Bannwarth
Journal:  J Hum Genet       Date:  2019-04-04       Impact factor: 3.172

4.  The architecture of the mammalian respirasome.

Authors:  Jinke Gu; Meng Wu; Runyu Guo; Kaige Yan; Jianlin Lei; Ning Gao; Maojun Yang
Journal:  Nature       Date:  2016-09-29       Impact factor: 49.962

5.  Exome sequencing of patients with histiocytoid cardiomyopathy reveals a de novo NDUFB11 mutation that plays a role in the pathogenesis of histiocytoid cardiomyopathy.

Authors:  Bahig M Shehata; Caitlin A Cundiff; Kevin Lee; Ankit Sabharwal; Mukesh Kumar Lalwani; Angela K Davis; Vartika Agrawal; Sridhar Sivasubbu; Glen J Iannucci; Greg Gibson
Journal:  Am J Med Genet A       Date:  2015-04-29       Impact factor: 2.802

6.  Widening the Heterogeneity of Leigh Syndrome: Clinical, Biochemical, and Neuroradiologic Features in a Patient Harboring a NDUFA10 Mutation.

Authors:  Francesca Minoia; Marta Bertamino; Paolo Picco; Mariasavina Severino; Andrea Rossi; Chiara Fiorillo; Carlo Minetti; Claudia Nesti; Filippo Maria Santorelli; Maja Di Rocco
Journal:  JIMD Rep       Date:  2017-03-01

7.  Accessory subunits are integral for assembly and function of human mitochondrial complex I.

Authors:  David A Stroud; Elliot E Surgenor; Luke E Formosa; Boris Reljic; Ann E Frazier; Marris G Dibley; Laura D Osellame; Tegan Stait; Traude H Beilharz; David R Thorburn; Agus Salim; Michael T Ryan
Journal:  Nature       Date:  2016-09-14       Impact factor: 49.962

8.  Mitochondrial Protein Interaction Mapping Identifies Regulators of Respiratory Chain Function.

Authors:  Brendan J Floyd; Emily M Wilkerson; Mike T Veling; Catie E Minogue; Chuanwu Xia; Emily T Beebe; Russell L Wrobel; Holly Cho; Laura S Kremer; Charlotte L Alston; Katarzyna A Gromek; Brendan K Dolan; Arne Ulbrich; Jonathan A Stefely; Sarah L Bohl; Kelly M Werner; Adam Jochem; Michael S Westphall; Jarred W Rensvold; Robert W Taylor; Holger Prokisch; Jung-Ja P Kim; Joshua J Coon; David J Pagliarini
Journal:  Mol Cell       Date:  2016-08-04       Impact factor: 17.970

9.  Assembly factors for the membrane arm of human complex I.

Authors:  Byron Andrews; Joe Carroll; Shujing Ding; Ian M Fearnley; John E Walker
Journal:  Proc Natl Acad Sci U S A       Date:  2013-11-04       Impact factor: 11.205

10.  Atomic structure of the entire mammalian mitochondrial complex I.

Authors:  Karol Fiedorczuk; James A Letts; Gianluca Degliesposti; Karol Kaszuba; Mark Skehel; Leonid A Sazanov
Journal:  Nature       Date:  2016-09-05       Impact factor: 49.962

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