Mutational spectrum of phenylalanine hydroxylase deficiency in the population resident in Catalonia:: genotype-phenotype correlation

被引:26
|
作者
Mallolas, J
Vilaseca, MA
Campistol, J
Lambruschini, N
Cambra, FJ
Estivill, X
Milà, M
机构
[1] Hosp Clin, Genet Lab, Serv Genet, Barcelona 08036, Spain
[2] Inst Invest Biomed August Pi & Sunyer, Barcelona, Spain
[3] Deut Hosp Clin, Unit Integrada Hosp St Joan, Barcelon Serv Neuropediat, Barcelona, Spain
[4] Deut Hosp Clin, Unit Integrada Hosp St Joan, Barcelon Serv Pediat, Barcelona, Spain
关键词
D O I
10.1007/s004390051132
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Hyperphenylalaninemia (HPA) is a group of diseases characterized by the persistent elevation of phenylalanine levels in tissues and biological fluids. It is an autosomal recessive disorder affecting 1 in 10,000 individuals in Caucasian populations and about 1 in 6,600 in Catalonia. We report the mutational spectrum of phenylalanine hydroxylase deficiency in the population living in Catalonia and the genotype-phenotype correlation. The molecular study was performed in 383 samples corresponding to 115 patients from 99 unrelated families and 268 relatives. We have characterized 90% of the mutant alleles; there were 57 different mutations, 49 of which have previously been described, 8 being novel mutations and two being large deletions. The 57 mutations detected corresponded to: five nonsense, seven frameshift, and eight splice defects, the remainder being missense mutations. These mutations cause 72 different genotypes in the 83 families characterized, confirming the mutational heterogeneity of phenylketonuria (PKU) in the Mediterranean population. according to our biochemical classification, our HPA population is composed of 40 PKU (35%), 36 variant PKU (31%), and 39 non-PKU HPA (34%). Mutations such as IVS10, A403 V, and E390G correlated as expected with the phenotype and the predicted residual activity in vitro. However, in four cases (165 T, V388 M, R261Q, and Y414 C), the observed metabolic phenotype was not consistent with the predicted genotypic effect. The identification of the mutations in the PAH gene and the genotype-phenotype correlation should facilitate the evaluation of metabolic phenotypes, diagnosis, implementation of optimal dietary therapy, and determination of prognosis in the patients and genetic counselling for the patient's relatives.
引用
收藏
页码:468 / 473
页数:6
相关论文
共 50 条
  • [21] Congenital Adrenal Hyperplasia Due to 21-Hydroxylase Deficiency: Genotype-Phenotype Correlation
    Mendes, Catarina
    Matos, Ines Vaz
    Ribeiro, Luis
    Oliveira, Maria Joao
    Cardoso, Helena
    Borges, Teresa
    ACTA MEDICA PORTUGUESA, 2015, 28 (01): : 56 - 62
  • [22] Congenital adrenal hyperplasia due to 21-hydroxylase deficiency: Genotype-phenotype correlation
    Fontes, Natacha
    Pereira, Marco
    Nascimento, Marta
    Oliveira, Eliana
    Espada, Filipa V.
    Fonseca, Marcelo
    REVISTA PORTUGUESA DE ENDOCRINOLOGIA DIABETES E METABOLISMO, 2012, 7 (02) : 8 - 12
  • [23] Genotype-phenotype correlations analysis of mutations in the phenylalanine hydroxylase (PAH) gene
    Bercovich, Dani
    Elimelech, Arava
    Zlotogora, Joel
    Korem, Sigal
    Yardeni, Tal
    Gal, Nurit
    Goldstein, Nurit
    Vilensky, Bela
    Segev, Roni
    Avraham, Smadar
    Loewenthal, Ron
    Schwartz, Gerard
    Anikster, Yair
    JOURNAL OF HUMAN GENETICS, 2008, 53 (05) : 407 - 418
  • [24] Genotype-Phenotype Correlation in Primary Carnitine Deficiency
    Rose, Emily C.
    di San Filippo, Cristina Amat
    Erlingsson, Uzochi C. Ndukwe
    Ardon, Orly
    Pasquali, Marzia
    Longo, Nicola
    HUMAN MUTATION, 2012, 33 (01) : 118 - 123
  • [25] Adenylosuccinate lyase deficiency; genotype-phenotype correlation
    Zikanova, M.
    Skopova, V.
    Hulkova, H.
    Krijt, J.
    Kmoch, S.
    FEBS JOURNAL, 2009, 276 : 355 - 355
  • [26] Genotype-phenotype correlation in primary carnitine deficiency
    Rose, Emily Cornforth
    Filippo, Cristina Amat di San
    Erlingsson, Uzochi C. N.
    Ardon, Orly
    Pasquali, Marzia
    Longo, Nicola
    MOLECULAR GENETICS AND METABOLISM, 2011, 102 (03) : 311 - 311
  • [27] Genotype-phenotype correlation in dihydropteridine reductase deficiency
    de Sanctis, L
    Alliaudi, C
    Spada, M
    Farrugia, R
    Cerone, R
    Biasucci, G
    Meli, C
    Zammarchi, E
    Coskun, T
    Blau, N
    Ponzone, A
    Dianzani, I
    JOURNAL OF INHERITED METABOLIC DISEASE, 2000, 23 (04) : 333 - 337
  • [28] Mutational analysis and genotype-phenotype correlation in patients with classic 21-hydroxylase deficiency from Transylvania (North-West Romania)
    Grigorescu-Sido, A
    Schulze, E
    Grigorescu-Sido, P
    Heinrich, U
    Nistor, T
    Duncea, I
    JOURNAL OF PEDIATRIC ENDOCRINOLOGY & METABOLISM, 2002, 15 (09): : 1505 - 1514
  • [29] Further expanding the mutational spectrum and investigation of genotype-phenotype correlation in 3M syndrome
    Simsek-Kiper, Pelin Ozlem
    Taskiran, Ekim
    Kosukcu, Can
    Arslan, Umut Ece
    Cormier-Daire, Valerie
    Gonc, Nazli
    Ozon, Alev
    Alikasifoglu, Ayfer
    Kandemir, Nurgun
    Utine, Gulen Eda
    Alanay, Yasemin
    Alikasifoglu, Mehmet
    Boduroglu, Koray
    AMERICAN JOURNAL OF MEDICAL GENETICS PART A, 2019, 179 (07) : 1157 - 1172
  • [30] Mutational Spectrum of the ZEB1 Gene in Corneal Dystrophies Supports a Genotype-Phenotype Correlation
    Lechner, Judith
    Dash, Durga P.
    Muszynska, Dorota
    Hosseini, Mohsen
    Segev, Fani
    George, Sonia
    Frazer, David G.
    Moore, Jonathan E.
    Kaye, Stephen B.
    Young, Terri
    Simpson, David A.
    Churchill, Amanda J.
    Heon, Elise
    Willoughby, Colin E.
    INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2013, 54 (05) : 3215 - 3223