Literature DB >> 15712228

Detection of alpha-galactosidase a mutations causing Fabry disease by denaturing high performance liquid chromatography.

Junaid Shabbeer1, Misi Robinson, Robert J Desnick.   

Abstract

Mutations in the alpha-galactosidase A (alpha-Gal A, GLA) gene cause Fabry disease, an X-linked recessive lysosomal storage disease. The majority of mutations are private, and confirmation of carrier status in females requires the definitive identification of a DNA mutation. In addition, knowledge of a family's mutation enables rapid and precise preimplantation and prenatal genetic testing. Here we report the development and use of DHPLC to rapidly and cost-effectively screen for alpha-Gal A mutations. Optimal DHPLC partial denaturing conditions for mutation detection were established for each PCR amplicon corresponding to the seven alpha-Gal A exons and their adjacent intronic/flanking sequences. At least five known mutations in each exon (45 in total) were screened by DHPLC to validate the method. Mutation detection was then performed in 14 affected males diagnosed by enzyme assay and 39 at-risk females, and the amplicons with abnormal DHPLC profiles were sequenced. In all affected males, and in 32 of the 39 at-risk females, four and 16 previously reported and 10 and 15 new mutations were identified, respectively. Sequencing all seven alpha-Gal A gene amplicons in the seven at-risk females who had normal DHPLC profiles excluded them as mutation carriers. Only one mutation (p.P362L) was not initially identified by its DHPLC profile, but in retrospect the profile was abnormal, emphasizing the need for experience in inspecting the profiles. In addition, this technique detected two new intronic polymorphisms, c.640-16A>G and c.1000-22C>T, with frequencies of 0.14 and 0.25 in both normal individuals and Fabry patients, respectively. This DHPLC method should improve the rapidity and cost-effectiveness of alpha-Gal A mutation identification in affected males and carrier females for Fabry disease. (c) 2005 Wiley-Liss, Inc.

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Year:  2005        PMID: 15712228     DOI: 10.1002/humu.20144

Source DB:  PubMed          Journal:  Hum Mutat        ISSN: 1059-7794            Impact factor:   4.878


  20 in total

1.  Functional analysis of variant lysosomal acid glycosidases of Anderson-Fabry and Pompe disease in a human embryonic kidney epithelial cell line (HEK 293 T).

Authors:  Hatim Y Ebrahim; Robert J Baker; Atul B Mehta; Derralynn A Hughes
Journal:  J Inherit Metab Dis       Date:  2011-10-05       Impact factor: 4.982

2.  The alpha-galactosidase A p.Arg118Cys variant does not cause a Fabry disease phenotype: data from individual patients and family studies.

Authors:  Susana Ferreira; Alberto Ortiz; Dominique P Germain; Miguel Viana-Baptista; António Caldeira-Gomes; Marta Camprecios; Maria Fenollar-Cortés; Ángel Gallegos-Villalobos; Diego Garcia; José Antonio García-Robles; Jesús Egido; Eduardo Gutiérrez-Rivas; José Antonio Herrero; Sebastián Mas; Raluca Oancea; Paloma Péres; Luis Manuel Salazar-Martín; Jesús Solera-Garcia; Helena Alves; Scott C Garman; João Paulo Oliveira
Journal:  Mol Genet Metab       Date:  2014-11-09       Impact factor: 4.797

3.  Enzyme assay and clinical assessment in subjects with a Chinese hotspot late-onset Fabry mutation (IVS4 + 919G→A).

Authors:  Hsiang-Yu Lin; Cheng-Hung Huang; Hsiao-Chi Yu; Kah-Wai Chong; Ju-Hui Hsu; Pi-Chang Lee; Kang-Hsiang Cheng; Chuan-Chi Chiang; Huey-Jane Ho; Shuan-Pei Lin; Shih-Jen Chen; Po-Kang Lin; Dau-Ming Niu
Journal:  J Inherit Metab Dis       Date:  2010-09-07       Impact factor: 4.982

4.  Frequency of Fabry disease in male and female haemodialysis patients in Spain.

Authors:  Paulo Gaspar; Julio Herrera; Daniel Rodrigues; Sebastián Cerezo; Rodrigo Delgado; Carlos F Andrade; Ramón Forascepi; Juan Macias; Maria D del Pino; Maria D Prados; Pilar R de Alegria; Gerardo Torres; Pedro Vidau; Maria C Sá-Miranda
Journal:  BMC Med Genet       Date:  2010-02-01       Impact factor: 2.103

5.  Fabry disease: progression of nephropathy, and prevalence of cardiac and cerebrovascular events before enzyme replacement therapy.

Authors:  Raphael Schiffmann; David G Warnock; Maryam Banikazemi; Jan Bultas; Gabor E Linthorst; Seymour Packman; Sven Asger Sorensen; William R Wilcox; Robert J Desnick
Journal:  Nephrol Dial Transplant       Date:  2009-02-13       Impact factor: 5.992

6.  Structure-function relationships in alpha-galactosidase A.

Authors:  Scott C Garman
Journal:  Acta Paediatr       Date:  2007-04       Impact factor: 2.299

7.  Fabry disease: GLA deletion alters a canonical splice site in a family with neuropsychiatric manifestations.

Authors:  Patrícia Varela; Gerson Carvalho; Renan Paulo Martin; João Bosco Pesquero
Journal:  Metab Brain Dis       Date:  2020-11-06       Impact factor: 3.584

Review 8.  Fabry's disease: an example of cardiorenal syndrome type 5.

Authors:  Aashish Sharma; Marco Sartori; Jose J Zaragoza; Gianluca Villa; Renhua Lu; Elena Faggiana; Alessandra Brocca; Luca Di Lullo; Sandro Feriozzi; Claudio Ronco
Journal:  Heart Fail Rev       Date:  2015-11       Impact factor: 4.214

9.  Structural characterization of mutant alpha-galactosidases causing Fabry disease.

Authors:  Kanako Sugawara; Kazuki Ohno; Seiji Saito; Hitoshi Sakuraba
Journal:  J Hum Genet       Date:  2008-07-17       Impact factor: 3.172

10.  Screening for pharmacological chaperones in Fabry disease.

Authors:  Sang-Hoon Shin; Gary J Murray; Stefanie Kluepfel-Stahl; Adele M Cooney; Jane M Quirk; Raphael Schiffmann; Roscoe O Brady; Christine R Kaneski
Journal:  Biochem Biophys Res Commun       Date:  2007-05-22       Impact factor: 3.575

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