Literature DB >> 22882926

Exome sequencing identifies compound heterozygous PKHD1 mutations as a cause of autosomal recessive polycystic kidney disease.

Da Zhang1, Lin Lu, Hong-Bo Yang, Mei Li, Hao Sun, Zheng-Pei Zeng, Xin-Ping Li, Wei-Bo Xia, Xiao-Ping Xing.   

Abstract

BACKGROUND: Autosomal recessive polycystic kidney disease (ARPKD) is a rare inherited disease, which is a disorder with multiple organ involvement, mainly the kidney and liver. It is caused by mutations in the PKHD1 gene. Here, we reported the clinical characteristics of a case with ARPKD and analyze the genetic features of this patient as well as of his father using targeted exome sequencing and Sanger sequencing.
METHODS: Genomic DNA was extracted from peripheral blood leukocytes obtained from a patient with ARPKD. The mutations were identified using exome sequencing and confirmed by Sanger sequencing.
RESULTS: The patient was diagnosed as ARPKD based on ultrasonography and abdominal computed tomography which showed polycystic changes, multiple calcinosis of both kidneys, and multiple dilated bile ducts of the liver. Compound heterozygous PKHD1 gene mutations A979G and G5935A, which lead to substitution of an asparagine for an aspartate at amino acid 327 (N327D) and a glycine for an arginine at amino acid 1979 (G1979R) respectively, were identified using targeted exome sequencing and confirmed by Sanger sequencing for the patient. In addition, the father of the patient was identified to be a carrier of heterozygous A979G mutation of this gene.
CONCLUSIONS: We identified that the compound heterozygous PKHD1 gene mutations are the molecular basis of the patient with ARPKD. Targeted exome sequencing is suitable for genetic diagnosis of single-gene inherited diseases like ARPKD in which the pathogenic gene is a large.

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Year:  2012        PMID: 22882926

Source DB:  PubMed          Journal:  Chin Med J (Engl)        ISSN: 0366-6999            Impact factor:   2.628


  6 in total

1.  Clinical characteristics and mutation analysis of three Chinese children with autosomal recessive polycystic kidney disease.

Authors:  Shu-Ping Liu; Jie Ding; Fang Wang; Yan-Qin Zhang; Jin-Tang Ye
Journal:  World J Pediatr       Date:  2014-08-15       Impact factor: 2.764

2.  Genetic analysis of the PKHD1 gene with long-rang PCR sequencing.

Authors:  Yong-Qing Tong; Bei Liu; Chao-Hong Fu; Hong-Yun Zheng; Jian Gu; Hang Liu; Hong-Bo Luo; Yan Li
Journal:  J Huazhong Univ Sci Technolog Med Sci       Date:  2016-10-18

Review 3.  Polycystin-1: a master regulator of intersecting cystic pathways.

Authors:  Sorin V Fedeles; Anna-Rachel Gallagher; Stefan Somlo
Journal:  Trends Mol Med       Date:  2014-01-31       Impact factor: 11.951

4.  Cost-effective PKHD1 genetic testing for autosomal recessive polycystic kidney disease.

Authors:  Paola Krall; Cristina Pineda; Patricia Ruiz; Laia Ejarque; Teresa Vendrell; Juan Antonio Camacho; Santiago Mendizábal; Artur Oliver; José Ballarín; Roser Torra; Elisabet Ars
Journal:  Pediatr Nephrol       Date:  2013-10-27       Impact factor: 3.714

5.  Expanding the mutation spectrum in 130 probands with ARPKD: identification of 62 novel PKHD1 mutations by sanger sequencing and MLPA analysis.

Authors:  Salvatore Melchionda; Teresa Palladino; Stefano Castellana; Mario Giordano; Elisa Benetti; Patrizia De Bonis; Leopoldo Zelante; Luigi Bisceglia
Journal:  J Hum Genet       Date:  2016-05-26       Impact factor: 3.172

6.  Intragenic duplication in the PKHD1 gene in autosomal recessive polycystic kidney disease.

Authors:  Jun Miyazaki; Mayuko Ito; Haruki Nishizawa; Takema Kato; Yukito Minami; Hidehito Inagaki; Tamae Ohye; Masafumi Miyata; Hiroko Boda; Yuka Kiriyama; Makoto Kuroda; Takao Sekiya; Hiroki Kurahashi; Takuma Fujii
Journal:  BMC Med Genet       Date:  2015-10-26       Impact factor: 2.103

  6 in total

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