The genotypic and phenotypic spectrum of PIGA deficiency

被引:69
作者
Tarailo-Graovac, Maja [1 ,2 ,3 ]
Sinclair, Graham [3 ,4 ,6 ]
Stockler-Ipsiroglu, Sylvia [3 ,4 ,7 ]
Van Allen, Margot [2 ,7 ]
Rozmus, Jacob [5 ,7 ]
Shyr, Casper [1 ,2 ,3 ]
Biancheri, Roberta [8 ]
Oh, Tracey [2 ,7 ]
Sayson, Bryan [3 ,4 ]
Lafek, Mirafe [3 ,4 ]
Ross, Colin J. [1 ,2 ,3 ,7 ]
Robinson, Wendy P. [2 ,7 ]
Wasserman, Wyeth W. [1 ,2 ,3 ,7 ]
Rossi, Andrea [9 ]
van Karnebeek, Clara D. M. [1 ,3 ,4 ,7 ]
机构
[1] Ctr Mol Med & Therapeut, Vancouver, BC, Canada
[2] Univ British Columbia, Dept Med Genet, Vancouver, BC, Canada
[3] Treatable Intellectual Disabil Endeavour British, Vancouver, BC, Canada
[4] Univ British Columbia, Dept Pediat, Div Biochem Dis, BC Childrens Hosp, Vancouver, BC V6T 1W5, Canada
[5] Univ British Columbia, Dept Pediat, BC Childrens Hosp, Div Hematol Oncol & BMT, Vancouver, BC V6T 1W5, Canada
[6] Univ British Columbia, Dept Pathol, BC Childrens Hosp, Biochem Genet Lab, Vancouver, BC, Canada
[7] Child & Family Res Inst, Vancouver, BC, Canada
[8] John Radcliffe Hosp, Childrens Hosp Oxford, Dept Paediat Neurol, Oxford OX3 9DU, England
[9] Ist Giannina Gaslini, Dept Neuroradiol, I-16147 Genoa, Italy
来源
ORPHANET JOURNAL OF RARE DISEASES | 2015年 / 10卷
基金
加拿大健康研究院;
关键词
Intellectual disability; Epileptic encephalopathy; Hypotonia; Dysmorphism; Multi-organ involvement; Genomics; Intramyelin edema; Glycosylphosphatidylinositol; Lipoprotein lipase; Alkaline phosphatase; Iron; PAROXYSMAL-NOCTURNAL HEMOGLOBINURIA; GPI-ANCHOR DEFICIENCY; TRANSLATIONAL TERMINATION EFFICIENCY; CAUSE HYPERPHOSPHATASIA; SYNTHESIS PATHWAY; MUTATIONS; GENE; CELLS; METHYLATION; MAMMALS;
D O I
10.1186/s13023-015-0243-8
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Background: Phosphatidylinositol glycan biosynthesis class A protein (PIGA) is one of the enzymes involved in the biosynthesis of glycosylphosphatidylinositol (GPI) anchor proteins, which function as enzymes, adhesion molecules, complement regulators and co-receptors in signal transduction pathways. Until recently, only somatic PIGA mutations had been reported in patients with paroxysmal nocturnal hemoglobinuria (PNH), while germline mutations had not been observed, and were suspected to result in lethality. However, in just two years, whole exome sequencing (WES) analyses have identified germline PIGA mutations in male patients with XLIDD (X-linked intellectual developmental disorder) with a wide spectrum of clinical presentations. Methods and results: Here, we report on a new missense PIGA germline mutation [g.15342986C>T (p.S330N)] identified via WES followed by Sanger sequencing, in a Chinese male infant presenting with developmental arrest, infantile spasms, a pattern of lesion distribution on brain MRI resembling that typical of maple syrup urine disease, contractures, dysmorphism, elevated alkaline phosphatase, mixed hearing loss (a combination of conductive and sensorineural), liver dysfunction, mitochondrial complex I and V deficiency, and therapy-responsive dyslipidemia with confirmed lipoprotein lipase deficiency. X-inactivation studies showed skewing in the clinically unaffected carrier mother, and CD109 surface expression in patient fibroblasts was 57% of that measured in controls; together these data support pathogenicity of this mutation. Furthermore, we review all reported germline PIGA mutations (1 nonsense, 1 frameshift, 1 in-frame deletion, five missense) in 8 unrelated families. Conclusions: Our case further delineates the heterogeneous phenotype of this condition for which we propose the term 'PIGA deficiency'. While the phenotypic spectrum is wide, it could be classified into two types (severe and less severe) with shared hallmarks of infantile spasms with hypsarrhythmia on EEG and profound XLIDD. In severe PIGA deficiency, as described in our patient, patients also present with dysmorphic facial features, multiple CNS abnormalities, such as thin corpus callosum and delayed myelination, as well as hypotonia and elevated alkaline phosphatase along with liver, renal, and cardiac involvement; its course is often fatal. The less severe form of PIGA deficiency does not involve facial dysmorphism and multiple CNS abnormalities; instead, patients present with milder IDD, treatable seizures and generally a longer lifespan.
引用
收藏
页数:13
相关论文
共 46 条
[21]   The Phenotype of a Germline Mutation in PIGA: The Gene Somatically Mutated in Paroxysmal Nocturnal Hemoglobinuria [J].
Johnston, Jennifer J. ;
Gropman, Andrea L. ;
Sapp, Julie C. ;
Teer, Jamie K. ;
Martin, Jodie M. ;
Liu, Cyndi F. ;
Yuan, Xuan ;
Ye, Zhaohui ;
Cheng, Linzhao ;
Brodsky, Robert A. ;
Biesecker, Leslie G. .
AMERICAN JOURNAL OF HUMAN GENETICS, 2012, 90 (02) :295-300
[22]   PIGA mutations cause early-onset epileptic encephalopathies and distinctive features [J].
Kato, Mitsuhiro ;
Saitsu, Hirotomo ;
Murakami, Yoshiko ;
Kikuchi, Kenjiro ;
Watanabe, Shuei ;
Iai, Mizue ;
Miya, Kazushi ;
Matsuura, Ryuki ;
Takayama, Rumiko ;
Ohba, Chihiro ;
Nakashima, Mitsuko ;
Tsurusaki, Yoshinori ;
Miyake, Noriko ;
Hamano, Shin-ichiro ;
Osaka, Hitoshi ;
Hayasaka, Kiyoshi ;
Kinoshita, Taroh ;
Matsumoto, Naomichi .
NEUROLOGY, 2014, 82 (18) :1587-1596
[23]   Glycosylphosphatidylinositol-anchor-deficient mice: Implications for clonal dominance of mutant cells in paroxysmal nocturnal hemoglobinuria [J].
Kawagoe, K ;
Kitamura, D ;
Okabe, M ;
Taniuchi, I ;
Ikawa, M ;
Watanabe, T ;
Kinoshita, T ;
Takeda, J .
BLOOD, 1996, 87 (09) :3600-3606
[24]   A general framework for estimating the relative pathogenicity of human genetic variants [J].
Kircher, Martin ;
Witten, Daniela M. ;
Jain, Preti ;
O'Roak, Brian J. ;
Cooper, Gregory M. ;
Shendure, Jay .
NATURE GENETICS, 2014, 46 (03) :310-+
[25]   PGAP2 Mutations, Affecting the GPI-Anchor-Synthesis Pathway, Cause Hyperphosphatasia with Mental Retardation Syndrome [J].
Krawitz, Peter M. ;
Murakami, Yoshiko ;
Riess, Angelika ;
Hietala, Marja ;
Krueger, Ulrike ;
Zhu, Na ;
Kinoshita, Taroh ;
Mundlos, Stefan ;
Hecht, Jochen ;
Robinson, Peter N. ;
Horn, Denise .
AMERICAN JOURNAL OF HUMAN GENETICS, 2013, 92 (04) :584-589
[26]   Mutations in PIGO, a Member of the GPI-Anchor-Synthesis Pathway, Cause Hyperphosphatasia with Mental Retardation [J].
Krawitz, Peter M. ;
Murakami, Yoshiko ;
Hecht, Jochen ;
Krueger, Ulrike ;
Holder, Susan E. ;
Mortier, Geert R. ;
Delle Chiaie, Barbara ;
De Baere, Elfride ;
Thompson, Miles D. ;
Roscioli, Tony ;
Kielbasa, Szymon ;
Kinoshita, Taroh ;
Mundlos, Stefan ;
Robinson, Peter N. ;
Horn, Denise .
AMERICAN JOURNAL OF HUMAN GENETICS, 2012, 91 (01) :146-151
[27]   Identity-by-descent filtering of exome sequence data identifies PIGV mutations in hyperphosphatasia mental retardation syndrome [J].
Krawitz, Peter M. ;
Schweiger, Michal R. ;
Roedelsperger, Christian ;
Marcelis, Carlo ;
Koelsch, Uwe ;
Meisel, Christian ;
Stephani, Friederike ;
Kinoshita, Taroh ;
Murakami, Yoshiko ;
Bauer, Sebastian ;
Isau, Melanie ;
Fischer, Axel ;
Dahl, Andreas ;
Kerick, Martin ;
Hecht, Jochen ;
Koehler, Sebastian ;
Jaeger, Marten ;
Gruenhagen, Johannes ;
de Condor, Birgit Jonske ;
Doelken, Sandra ;
Brunner, Han G. ;
Meinecke, Peter ;
Passarge, Eberhard ;
Thompson, Miles D. ;
Cole, David E. ;
Horn, Denise ;
Roscioli, Tony ;
Mundlos, Stefan ;
Robinson, Peter N. .
NATURE GENETICS, 2010, 42 (10) :827-829
[28]   Predicting the effects of coding non-synonymous variants on protein function using the SIFT algorithm [J].
Kumar, Prateek ;
Henikoff, Steven ;
Ng, Pauline C. .
NATURE PROTOCOLS, 2009, 4 (07) :1073-1082
[29]   A novel intellectual disability syndrome caused by GPI anchor deficiency due to homozygous mutations in PIGT [J].
Kvarnung, Malin ;
Nilsson, Daniel ;
Lindstrand, Anna ;
Korenke, G. Christoph ;
Chiang, Samuel C. C. ;
Blennow, Elisabeth ;
Bergmann, Markus ;
Stodberg, Tommy ;
Makitie, Outi ;
Anderlid, Britt-Marie ;
Bryceson, Yenan T. ;
Nordenskjold, Magnus ;
Nordgren, Ann .
JOURNAL OF MEDICAL GENETICS, 2013, 50 (08) :521-528
[30]   Aminoglycoside antibiotics mediate context-dependent suppression of termination codons in a mammalian translation system [J].
Manuvakhova, M ;
Keeling, K ;
Bedwell, DM .
RNA, 2000, 6 (07) :1044-1055