Literature DB >> 9467005

Constitutive skipping of alternatively spliced exon 10 in the ATP7A gene abolishes Golgi localization of the menkes protein and produces the occipital horn syndrome.

M Qi1, P H Byers.   

Abstract

The ATP7A gene encodes a copper-transporting ATPase. Mutations in this gene result in two clinically distinct X-linked inherited disorders: Menkes disease and occipital horn syndrome (OHS). We identified a single exon skipping in the ATP7A transcript in cells from the affected proband, affected cousins and obligate carriers in a family with OHS. Genomic sequencing identified an A-->T transversion at the +3 position in the splice donor site of intron 10 (gtaaagt-->gttaagt) in all affected individuals and the obligate female carriers. This mutation results in the constitutive skipping of exon 10 and creates an in-frame deletion of transmembrane domains 3 and 4 (78 amino acids) in the mature transcript. The exon 10-skipped transcript is present in low amounts as an alternatively spliced product in normal individuals. Immunocytochemical assay shows that these two protein products have different subcellular distributions: the major form is concentrated in the perinuclear Golgi system while the minor form (as the only form in this family with OHS) is co-localized with the endoplasmic reticulum-resident BiP protein (GRP78). These findings indicate that endoplasmic reticulum localization only of a variant ATP7A protein is insufficient to effect normal copper transport.

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Year:  1998        PMID: 9467005     DOI: 10.1093/hmg/7.3.465

Source DB:  PubMed          Journal:  Hum Mol Genet        ISSN: 0964-6906            Impact factor:   6.150


  13 in total

1.  A semiautomated approach to gene discovery through expressed sequence tag data mining: discovery of new human transporter genes.

Authors:  Shoshana Brown; Jean L Chang; Wolfgang Sadée; Patricia C Babbitt
Journal:  AAPS PharmSci       Date:  2003

2.  A novel frameshift mutation in exon 23 of ATP7A (MNK) results in occipital horn syndrome and not in Menkes disease.

Authors:  S L Dagenais; A N Adam; J W Innis; T W Glover
Journal:  Am J Hum Genet       Date:  2001-06-26       Impact factor: 11.025

Review 3.  ATP7A-related copper transport diseases-emerging concepts and future trends.

Authors:  Stephen G Kaler
Journal:  Nat Rev Neurol       Date:  2011-01       Impact factor: 42.937

4.  Similar splice-site mutations of the ATP7A gene lead to different phenotypes: classical Menkes disease or occipital horn syndrome.

Authors:  L B Møller; Z Tümer; C Lund; C Petersen; T Cole; R Hanusch; J Seidel; L R Jensen; N Horn
Journal:  Am J Hum Genet       Date:  2000-03-17       Impact factor: 11.025

5.  Evidence for a Menkes-like protein with a nuclear targeting sequence.

Authors:  M C Reddy; S Majumdar; E D Harris
Journal:  Biochem J       Date:  2000-09-15       Impact factor: 3.857

Review 6.  Molecular pathogenesis of Wilson and Menkes disease: correlation of mutations with molecular defects and disease phenotypes.

Authors:  P de Bie; P Muller; C Wijmenga; L W J Klomp
Journal:  J Med Genet       Date:  2007-08-23       Impact factor: 6.318

7.  A comparison of the mutation spectra of Menkes disease and Wilson disease.

Authors:  Gloria Hsi; Diane W Cox
Journal:  Hum Genet       Date:  2003-10-25       Impact factor: 4.132

8.  Splice site mutations in the ATP7A gene.

Authors:  Tina Skjørringe; Zeynep Tümer; Lisbeth Birk Møller
Journal:  PLoS One       Date:  2011-04-11       Impact factor: 3.240

9.  Role of the P-Type ATPases, ATP7A and ATP7B in brain copper homeostasis.

Authors:  Jonathon Telianidis; Ya Hui Hung; Stephanie Materia; Sharon La Fontaine
Journal:  Front Aging Neurosci       Date:  2013-08-23       Impact factor: 5.750

Review 10.  Mottled Mice and Non-Mammalian Models of Menkes Disease.

Authors:  Małgorzata Lenartowicz; Wojciech Krzeptowski; Paweł Lipiński; Paweł Grzmil; Rafał Starzyński; Olga Pierzchała; Lisbeth Birk Møller
Journal:  Front Mol Neurosci       Date:  2015-12-18       Impact factor: 5.639

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