Natural history of genetically proven autosomal recessive Alport syndrome

被引:61
作者
Oka, Masafumi [1 ]
Nozu, Kandai [1 ]
Kaito, Hiroshi [1 ]
Fu, Xue Jun [1 ]
Nakanishi, Koichi [2 ]
Hashimura, Yuya [1 ]
Morisada, Naoya [1 ]
Yan, Kunimasa [3 ]
Matsuo, Masafumi [1 ]
Yoshikawa, Norishige [2 ]
Vorechovsky, Igor [4 ]
Iijima, Kazumoto [1 ]
机构
[1] Kobe Univ, Grad Sch Med, Dept Pediat, Chuo Ku, Kobe, Hyogo 6500017, Japan
[2] Wakayama Med Coll, Dept Pediat, Wakayama 640, Japan
[3] Kyorin Univ, Sch Med, Dept Pediat, Mitaka, Tokyo 181, Japan
[4] Univ Southampton, Fac Med, Southampton SO9 5NH, Hants, England
关键词
Autosomal recessive Alport syndrome; COL4A3; COL4A4; Type IV collagen alpha5; GENOTYPE-PHENOTYPE CORRELATIONS; BASEMENT-MEMBRANE NEPHROPATHY; GLOMERULAR-FILTRATION RATE; BENIGN FAMILIAL HEMATURIA; COL4A3/COL4A4; MUTATIONS; IV COLLAGEN; MOLECULAR ANALYSIS; GITELMANS-SYNDROME; RENAL-FAILURE; COL4A5; GENE;
D O I
10.1007/s00467-014-2797-4
中图分类号
R72 [儿科学];
学科分类号
100202 ;
摘要
Autosomal recessive Alport syndrome (ARAS) is a rare hereditary disease caused by homozygous or compound heterozygous mutations in either the COL4A3 or COL4A4 genes. Failure to diagnose ARAS cases is common, even if detailed clinical and pathological examinations are carried out. As the mutation detection rate for ARAS is unsatisfactory, we sought to develop more reliable diagnostic methods and provide a better description of the clinicopathological characteristics of this disorder. A retrospective analysis of 30 genetically diagnosed patients with ARAS in 24 pedigrees was conducted. The mutation detection strategy comprised three steps: (1) genomic DNA analysis using polymerase chain reaction (PCR) and direct sequencing; (2) mRNA analysis using reverse transcription (RT)-PCR to detect RNA processing abnormalities; (3) semi-quantitative PCR using capillary electrophoresis to detect large heterozygous deletions. Using the three-step analysis, we identified homozygous or compound heterozygous mutations in all patients. Interestingly, 20 % of our ARAS patients showed normal expression of alpha 5 in kidney tissue. The median age of developing end-stage renal disease was 21 years. The strategy described in this study improves the diagnosis for ARAS families. Although immunohistochemical analysis of alpha 5 can provide diagnostic information, normal distribution does not exclude the diagnosis of ARAS.
引用
收藏
页码:1535 / 1544
页数:10
相关论文
共 50 条
  • [41] Inheritance of an Autosomal Recessive Disorder, Gitelman's Syndrome, Across Two Generations in One Family
    Yagi, Hiroki
    Yahata, Kensei
    Usui, Takeshi
    Hasegawa, Chinatsu
    Seta, Koichi
    Sugawara, Akira
    INTERNAL MEDICINE, 2011, 50 (11) : 1211 - 1214
  • [42] Autosomal recessive long QT syndrome, type 1 in eight families from Saudi Arabia
    Bdier, Amnah Y.
    Al-Ghamdi, Saleh
    Verma, Prashant K.
    Dagriri, Khalid
    Alshehri, Bandar
    Jiman, Omamah A.
    Ahmed, Sherif E.
    Wilde, Arthur A. M.
    Bhuiyan, Zahurul A.
    Al-Aama, Jumana Y.
    MOLECULAR GENETICS & GENOMIC MEDICINE, 2017, 5 (05): : 592 - 601
  • [43] Autosomal dominant Marfan syndrome caused by a previously reported recessive FBN1 variant
    Overwater, Eline
    Efrat, Rifka
    Barge-Schaapveld, Daniela Q. C. M.
    Lakeman, Phillis
    Weiss, Marjan M.
    Maugeri, Alessandra
    van Tintelen, J. Peter
    Houweling, Arjan C.
    MOLECULAR GENETICS & GENOMIC MEDICINE, 2019, 7 (02):
  • [44] The Gene of Bloom's Syndrome: An Autosomal Recessive Disorder with Male Dominance
    Aslan, Deniz
    Ezgu, Fatih Suheyl
    GENETIC TESTING AND MOLECULAR BIOMARKERS, 2009, 13 (04) : 443 - 444
  • [45] Correlation of histopathological features and renal impairment in autosomal dominant Alport syndrome in Bull terriers
    Hood, JC
    Dowling, J
    Bertram, JF
    Young, RJ
    Huxtable, C
    Robinson, W
    Savige, J
    NEPHROLOGY DIALYSIS TRANSPLANTATION, 2002, 17 (11) : 1897 - 1908
  • [46] Perrault syndrome with growth hormone deficiency: a rare autosomal recessive disorder
    Agrawala, Ritesh K.
    Choudhury, Arun K.
    Mohanty, Binoy K.
    Baliarsinha, Anoj K.
    JOURNAL OF PEDIATRIC ENDOCRINOLOGY & METABOLISM, 2015, 28 (9-10) : 1005 - 1007
  • [47] A Newly Recognized Autosomal Recessive Syndrome Affecting Neurologic Function and Vision
    Salih, Mustafa A.
    Tzschach, Andreas
    Oystreck, Darren T.
    Hassan, Hamdy H.
    AlDrees, Abdulmajeed
    Elmalik, Salah A.
    El Khashab, Heba Y.
    Wienker, Thomas F.
    Abu-Amero, Khaled K.
    Bosley, Thomas M.
    AMERICAN JOURNAL OF MEDICAL GENETICS PART A, 2013, 161A (06) : 1207 - 1213
  • [48] Should We Diagnose Autosomal Dominant Alport Syndrome When There Is a Pathogenic Heterozygous COL4A3 or COL4A4 Variant?
    Savige, Judy
    KIDNEY INTERNATIONAL REPORTS, 2018, 3 (06): : 1239 - 1241
  • [49] Exon location of glycine substitutions impacts kidney survival in autosomal dominant Alport syndrome
    Pagniez, Marie-Sophie
    Fages, Victor
    Gatinois, Clemence
    Larrue, Romain
    Pottier, Nicolas
    Laboux, Timothee
    Lenain, Remi
    Grunewald, Olivier
    Robert, Thomas
    Rigothier, Claire
    Mesnard, Laurent
    Glowacki, Francois
    NEPHROLOGY DIALYSIS TRANSPLANTATION, 2025,
  • [50] Molecular Diagnosis of Rare Autosomal Recessive Escobar Syndrome in a Consanguineous Pakistani Family
    Sher, Gulab
    Naeem, Muhammad
    GENETIC TESTING AND MOLECULAR BIOMARKERS, 2018, 22 (12) : 714 - 718