Literature DB >> 23993194

Mutations in FBXL4, encoding a mitochondrial protein, cause early-onset mitochondrial encephalomyopathy.

Xiaowu Gai1, Daniele Ghezzi, Mark A Johnson, Caroline A Biagosch, Hanan E Shamseldin, Tobias B Haack, Aurelio Reyes, Mai Tsukikawa, Claire A Sheldon, Satish Srinivasan, Matteo Gorza, Laura S Kremer, Thomas Wieland, Tim M Strom, Erzsebet Polyak, Emily Place, Mark Consugar, Julian Ostrovsky, Sara Vidoni, Alan J Robinson, Lee-Jun Wong, Neal Sondheimer, Mustafa A Salih, Emtethal Al-Jishi, Christopher P Raab, Charles Bean, Francesca Furlan, Rossella Parini, Costanza Lamperti, Johannes A Mayr, Vassiliki Konstantopoulou, Martina Huemer, Eric A Pierce, Thomas Meitinger, Peter Freisinger, Wolfgang Sperl, Holger Prokisch, Fowzan S Alkuraya, Marni J Falk, Massimo Zeviani.   

Abstract

Whole-exome sequencing and autozygosity mapping studies, independently performed in subjects with defective combined mitochondrial OXPHOS-enzyme deficiencies, identified a total of nine disease-segregating FBXL4 mutations in seven unrelated mitochondrial disease families, composed of six singletons and three siblings. All subjects manifested early-onset lactic acidemia, hypotonia, and developmental delay caused by severe encephalomyopathy consistently associated with progressive cerebral atrophy and variable involvement of the white matter, deep gray nuclei, and brainstem structures. A wide range of other multisystem features were variably seen, including dysmorphism, skeletal abnormalities, poor growth, gastrointestinal dysmotility, renal tubular acidosis, seizures, and episodic metabolic failure. Mitochondrial respiratory chain deficiency was present in muscle or fibroblasts of all tested individuals, together with markedly reduced oxygen consumption rate and hyperfragmentation of the mitochondrial network in cultured cells. In muscle and fibroblasts from several subjects, substantially decreased mtDNA content was observed. FBXL4 is a member of the F-box family of proteins, some of which are involved in phosphorylation-dependent ubiquitination and/or G protein receptor coupling. We also demonstrate that FBXL4 is targeted to mitochondria and localizes in the intermembrane space, where it participates in an approximately 400 kDa protein complex. These data strongly support a role for FBXL4 in controlling bioenergetic homeostasis and mtDNA maintenance. FBXL4 mutations are a recurrent cause of mitochondrial encephalomyopathy onset in early infancy.
Copyright © 2013 The American Society of Human Genetics. Published by Elsevier Inc. All rights reserved.

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Year:  2013        PMID: 23993194      PMCID: PMC3769923          DOI: 10.1016/j.ajhg.2013.07.016

Source DB:  PubMed          Journal:  Am J Hum Genet        ISSN: 0002-9297            Impact factor:   11.025


  34 in total

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2.  Interactive visual analysis of SNP data for rapid autozygosity mapping in consanguineous families.

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Authors:  M Elstner; C Andreoli; T Klopstock; T Meitinger; H Prokisch
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Journal:  Genomics       Date:  1998-12-15       Impact factor: 5.736

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  58 in total

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2.  Fulminant Necrotizing Enterocolitis and Multiple Organ Dysfunction in a Toddler with Mitochondrial DNA Depletion Syndrome-13.

Authors:  Nicolas Nardi; François Proulx; Catherine Brunel-Guiton; Luc L Oligny; Nelson Piché; Grant A Mitchell; Jean Sébastien Joyal
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3.  Inhibiting cytosolic translation and autophagy improves health in mitochondrial disease.

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Review 5.  Discovery of mutations for Mendelian disorders.

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Journal:  Hum Genet       Date:  2016-04-11       Impact factor: 4.132

6.  Expanding the phenotypic spectrum of Succinyl-CoA ligase deficiency through functional validation of a new SUCLG1 variant.

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7.  Hyperammonemia as a Presenting Feature in Two Siblings with FBXL4 Variants.

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Review 8.  The emerging role of immune dysfunction in mitochondrial diseases as a paradigm for understanding immunometabolism.

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9.  N-acetylcysteine and vitamin E rescue animal longevity and cellular oxidative stress in pre-clinical models of mitochondrial complex I disease.

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10.  A novel HSD17B10 mutation impairing the activities of the mitochondrial RNase P complex causes X-linked intractable epilepsy and neurodevelopmental regression.

Authors:  Marni J Falk; Xiaowu Gai; Megumi Shigematsu; Elisa Vilardo; Ryuichi Takase; Elizabeth McCormick; Thomas Christian; Emily Place; Eric A Pierce; Mark Consugar; Howard B Gamper; Walter Rossmanith; Ya-Ming Hou
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