Literature DB >> 24830959

A labor- and cost-effective non-optical semiconductor (Ion Torrent) next-generation sequencing of the SLC12A3 and CLCNKA/B genes in Gitelman's syndrome patients.

Beatriz Tavira1, Juan Gómez1, Fernando Santos2, Helena Gil3, Victoria Alvarez1, Eliecer Coto4.   

Abstract

Gitelman's syndrome (GS) is a rare recessive disorder caused by mutations in the renal salt-handling genes SLC12A3 and CLCNKB. Our aim was to develop a next-generation sequencing (NGS) procedure for these genes based on two-tubes multiplex amplification of DNA pools and semiconductor sequencing with the Ion Torrent Personal Genome Machine (PGM). We created one pool with DNA from 20 GS patients previously Sanger sequenced for the coding exons of SLC12A3. A total of 13 mutations present in 11 of these patients were used as control variants to validate the NGS procedure. The full coding sequence of SLC12A3, CLCNKB and CLCNKA was amplified in only two Ampliseq tubes and processed and sequenced with the PGM. Large SLC12A3 and CLCNKB deletions were ascertained through multiplex ligation-dependent probe amplification in some patients. With the exception of the SLC12A3 exon 9, all the amplicons were successfully read and 12 of the 13 control variants were detected. The analysis of CLCNKB showed four putative mutations in the GS pool that were further assigned to specific patients. Two patients were heterozygous compounds for a single-nucleotide mutation and a large deletion at SLC12A3 or CLCNKB. We reported a NGS procedure that would facilitate the rapid and cost-effective large-scale screening of the three renal salt-handling genes. In addition to characterize the mutational spectrum of GS patients, the described procedure would facilitate the rapid and cost-effective screening of these genes at a population scale.

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Year:  2014        PMID: 24830959     DOI: 10.1038/jhg.2014.37

Source DB:  PubMed          Journal:  J Hum Genet        ISSN: 1434-5161            Impact factor:   3.172


  20 in total

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2.  Spectrum of mutations in Gitelman syndrome.

Authors:  Rosa Vargas-Poussou; Karin Dahan; Diana Kahila; Annabelle Venisse; Eva Riveira-Munoz; Huguette Debaix; Bernard Grisart; Franck Bridoux; Robert Unwin; Bruno Moulin; Jean-Philippe Haymann; Marie-Christine Vantyghem; Claire Rigothier; Bertrand Dussol; Michel Godin; Hubert Nivet; Laurence Dubourg; Ivan Tack; Anne-Paule Gimenez-Roqueplo; Pascal Houillier; Anne Blanchard; Olivier Devuyst; Xavier Jeunemaitre
Journal:  J Am Soc Nephrol       Date:  2011-03-17       Impact factor: 10.121

3.  A novel mutation in the chloride channel gene, CLCNKB, as a cause of Gitelman and Bartter syndromes.

Authors:  Israel Zelikovic; Raymonde Szargel; Ali Hawash; Valentina Labay; Ihab Hatib; Nadine Cohen; Farid Nakhoul
Journal:  Kidney Int       Date:  2003-01       Impact factor: 10.612

4.  Rapid detection of the ACMG/ACOG-recommended 23 CFTR disease-causing mutations using ion torrent semiconductor sequencing.

Authors:  Aaron M Elliott; Joy Radecki; Bellal Moghis; Xiang Li; Anja Kammesheidt
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5.  Clinical presentation of genetically defined patients with hypokalemic salt-losing tubulopathies.

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6.  Non optical semi-conductor next generation sequencing of the main cardiac QT-interval duration genes in pooled DNA samples.

Authors:  Juan Gómez; Julian R Reguero; César Morís; Victoria Alvarez; Eliecer Coto
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7.  A new mutation (intron 9 +1 G>T) in the SLC12A3 gene is linked to Gitelman syndrome in Gypsies.

Authors:  Eliecer Coto; Julian Rodriguez; Nikola Jeck; Victoria Alvarez; Rosario Stone; Cesar Loris; Luis M Rodriguez; Michel Fischbach; Hannsjörg W Seyberth; Fernando Santos
Journal:  Kidney Int       Date:  2004-01       Impact factor: 10.612

8.  Gitelman's variant of Bartter's syndrome, inherited hypokalaemic alkalosis, is caused by mutations in the thiazide-sensitive Na-Cl cotransporter.

Authors:  D B Simon; C Nelson-Williams; M J Bia; D Ellison; F E Karet; A M Molina; I Vaara; F Iwata; H M Cushner; M Koolen; F J Gainza; H J Gitleman; R P Lifton
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Authors:  Edgar A Otto; Gokul Ramaswami; Sabine Janssen; Moumita Chaki; Susan J Allen; Weibin Zhou; Rannar Airik; Toby W Hurd; Amiya K Ghosh; Matthias T Wolf; Bernd Hoppe; Thomas J Neuhaus; Detlef Bockenhauer; David V Milford; Neveen A Soliman; Corinne Antignac; Sophie Saunier; Colin A Johnson; Friedhelm Hildebrandt
Journal:  J Med Genet       Date:  2010-11-10       Impact factor: 6.318

10.  Towards clinical molecular diagnosis of inherited cardiac conditions: a comparison of bench-top genome DNA sequencers.

Authors:  Xinzhong Li; Andrew J Buckton; Samuel L Wilkinson; Shibu John; Roddy Walsh; Tomas Novotny; Iveta Valaskova; Manu Gupta; Laurence Game; Paul J R Barton; Stuart A Cook; James S Ware
Journal:  PLoS One       Date:  2013-07-04       Impact factor: 3.240

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  5 in total

1.  A Next-Generation Sequencing of the NOTCH3 and HTRA1 Genes in CADASIL Patients.

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Journal:  J Mol Neurosci       Date:  2015-05-01       Impact factor: 3.444

2.  New SLC12A3 disease causative mutation of Gitelman's syndrome.

Authors:  Teresa Grillone; Miranda Menniti; Francesco Bombardiere; Marco Flavio Michele Vismara; Stefania Belviso; Fernanda Fabiani; Nicola Perrotti; Rodolfo Iuliano; Emma Colao
Journal:  World J Nephrol       Date:  2016-11-06

3.  Digenetic inheritance of SLC12A3 and CLCNKB genes in a Chinese girl with Gitelman syndrome.

Authors:  Yuanmei Kong; Ke Xu; Ke Yuan; Jianfang Zhu; Weiyue Gu; Li Liang; Chunlin Wang
Journal:  BMC Pediatr       Date:  2019-04-18       Impact factor: 2.125

4.  A new approach based on targeted pooled DNA sequencing identifies novel mutations in patients with Inherited Retinal Dystrophies.

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5.  Pushing the Boundaries: Forensic DNA Phenotyping Challenged by Single-Cell Sequencing.

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  5 in total

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