Whole-exome sequencing identifies a mutation in the mitochondrial ribosome protein MRPL44 to underlie mitochondrial infantile cardiomyopathy

被引:78
作者
Carroll, Christopher J. [1 ]
Isohanni, Pirjo [1 ,2 ]
Poyhonen, Rosanna [1 ]
Euro, Liliya [1 ]
Richter, Uwe [1 ]
Brilhante, Virginia [1 ]
Gotz, Alexandra [1 ]
Lahtinen, Taina [1 ]
Paetau, Anders [3 ]
Pihko, Helena [2 ]
Battersby, Brendan J. [1 ,4 ]
Tyynismaa, Henna [1 ,5 ]
Suomalainen, Anu [1 ,6 ]
机构
[1] Univ Helsinki, Biomed Helsinki, Res Programs Unit, FIN-00290 Helsinki, Finland
[2] Univ Helsinki, Cent Hosp, Hosp Children & Adolescents, Dept Pediat Neurol, FIN-00290 Helsinki, Finland
[3] Univ Helsinki, Dept Pathol, FIN-00290 Helsinki, Finland
[4] Univ Helsinki, Inst Biomed, FIN-00290 Helsinki, Finland
[5] Univ Helsinki, Dept Med Genet, Haartman Inst, FIN-00290 Helsinki, Finland
[6] Univ Helsinki, Cent Hosp, Dept Neurol, FIN-00290 Helsinki, Finland
基金
芬兰科学院;
关键词
TRANSLATION; DEFICIENCY; SUBUNIT; ASSOCIATION; DEFECT; GENE; P53;
D O I
10.1136/jmedgenet-2012-101375
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Background The genetic complexity of infantile cardiomyopathies is remarkable, and the importance of mitochondrial translation defects as a causative factor is only starting to be recognised. We investigated the genetic basis for infantile onset recessive hypertrophic cardiomyopathy in two siblings. Methods and results Analysis of respiratory chain enzymes revealed a combined deficiency of complexes I and IV in the heart and skeletal muscle. Exome sequencing uncovered a homozygous mutation (L156R) in MRPL44 of both siblings. MRPL44 encodes a protein in the large subunit of the mitochondrial ribosome and is suggested to locate in close proximity to the tunnel exit of the yeast mitochondrial ribosome. We found severely reduced MRPL44 levels in the patient's heart, skeletal muscle and fibroblasts suggesting that the missense mutation affected the protein stability. In patient fibroblasts, decreased MRPL44 affected assembly of the large ribosomal subunit and stability of 16S rRNA leading to complex IV deficiency. Despite this assembly defect, de novo mitochondrial translation was only mildly affected in fibroblasts suggesting that MRPL44 may have a function in the assembly/stability of nascent mitochondrial polypeptides exiting the ribosome. Retroviral expression of wild-type MRPL44 in patient fibroblasts rescued the large ribosome assembly defect and COX deficiency. Conclusions These findings indicate that mitochondrial ribosomal subunit defects can generate tissue-specific manifestations, such as cardiomyopathy.
引用
收藏
页码:151 / 159
页数:9
相关论文
共 48 条
[1]   Mutations in COX10 result in a defect in mitochondrial heme A biosynthesis and account for multiple, early-onset clinical phenotypes associated with isolated COX deficiency [J].
Antonicka, H ;
Leary, SC ;
Agar, JN ;
Horvath, R ;
Kennaway, NG ;
Harding, CO ;
Jaksch, M ;
Shoubridge, EA .
HUMAN MOLECULAR GENETICS, 2003, 12 (20) :2693-2702
[2]   Mutations in COX15 produce a defect in the mitochondrial heme biosynthetic pathway, causing early-onset fatal hypertrophic cardiomyopathy [J].
Antonicka, H ;
Mattman, A ;
Carlson, CG ;
Glerum, DM ;
Hoffbuhr, KC ;
Leary, SC ;
Kennaway, NG ;
Shoubridge, EA .
AMERICAN JOURNAL OF HUMAN GENETICS, 2003, 72 (01) :101-114
[3]   The molecular basis for tissue specificity of the oxidative phosphorylation deficiencies in patients with mutations in the mitochondrial translation factor EFG1 [J].
Antonicka, Hana ;
Sasarman, Florin ;
Kennaway, Nancy G. ;
Shoubridge, Eric A. .
HUMAN MOLECULAR GENETICS, 2006, 15 (11) :1835-1846
[4]   Mutant NDUFV2 subunit of mitochondrial complex I causes early onset hypertrophlic cardiomyopathy and encephalopathy [J].
Bénit, P ;
Beugnot, R ;
Chretien, D ;
Giurgea, I ;
De Lonlay-Debeney, P ;
Issartel, JP ;
Corral-Debrinski, M ;
Kerscher, S ;
Rustin, P ;
Rötig, A ;
Munnich, A .
HUMAN MUTATION, 2003, 21 (06) :582-586
[5]  
Berardo A, 2011, Acta Myol, V30, P9
[6]   Molecular Diagnosis of Infantile Mitochondrial Disease with Targeted Next-Generation Sequencing [J].
Calvo, Sarah E. ;
Compton, Alison G. ;
Hershman, Steven G. ;
Lim, Sze Chern ;
Lieber, Daniel S. ;
Tucker, Elena J. ;
Laskowski, Adrienne ;
Garone, Caterina ;
Liu, Shangtao ;
Jaffe, David B. ;
Christodoulou, John ;
Fletcher, Janice M. ;
Bruno, Damien L. ;
Goldblatt, Jack ;
DiMauro, Salvatore ;
Thorburn, David R. ;
Mootha, Vamsi K. .
SCIENCE TRANSLATIONAL MEDICINE, 2012, 4 (118)
[7]   Mitochondrial ribosomal protein S36 delays cell cycle progression in association with p53 modification and p21WAF1/CIP1 expression [J].
Chen, Yeong-Chang ;
Chang, Meng-Ya ;
Shiau, Ai-Li ;
Yo, Yi-Te ;
Wu, Chao-Liang .
JOURNAL OF CELLULAR BIOCHEMISTRY, 2007, 100 (04) :981-990
[8]   TMEM70 mutations cause isolated ATP synthase deficiency and neonatal mitochondrial encephalocardiomyopathy [J].
Cizkova, Alena ;
Stranecky, Viktor ;
Mayr, Johannes A. ;
Tesarova, Marketa ;
Havlickova, Vendula ;
Paul, Jan ;
Ivanek, Robert ;
Kuss, Andreas W. ;
Hansikova, Hana ;
Kaplanova, Vilma ;
Vrbacky, Marek ;
Hartmannova, Hana ;
Noskova, Lenka ;
Honzik, Tomas ;
Drahota, Zdenek ;
Magner, Martin ;
Hejzlarova, Katerina ;
Sperl, Wolfgang ;
Zeman, Jiri ;
Houstek, Josef ;
Kmoch, Stanislav .
NATURE GENETICS, 2008, 40 (11) :1288-1290
[9]   The X-linked gene G4.5 is responsible for different infantile dilated cardiomyopathies [J].
DAdamo, P ;
Fassone, L ;
Gedeon, A ;
Janssen, EAM ;
Bione, S ;
Bolhuis, PA ;
Barth, PG ;
Wilson, M ;
Haan, E ;
Orstavik, KH ;
Patton, MA ;
Green, AJ ;
Zammarchi, E ;
Donati, MA ;
Toniolo, D .
AMERICAN JOURNAL OF HUMAN GENETICS, 1997, 61 (04) :862-867
[10]   Toward genotype phenotype correlations in GFM1 mutations [J].
Galmiche, Louise ;
Serre, Valerie ;
Beinat, Marine ;
Zossou, Raissa ;
Assouline, Zahra ;
Lebre, Anne-Sophie ;
Chretien, Florence ;
Shenhav, Ruthie ;
Zeharia, Avraham ;
Saada, Ann ;
Vedrenne, Vanessa ;
Boddaert, Nathalie ;
de Lonlay, Pascale ;
Rio, Marlene ;
Munnich, Arnold ;
Roetig, Agnes .
MITOCHONDRION, 2012, 12 (02) :242-247