Gene Mutation in MicroRNA Target Sites of CFTR Gene: A Novel Pathogenetic Mechanism in Cystic Fibrosis?

被引:68
作者
Amato, Felice [1 ,2 ]
Seia, Manuela [3 ]
Giordano, Sonia [1 ,2 ]
Elce, Ausilia [1 ,2 ]
Zarrilli, Federica [1 ,2 ,4 ]
Castaldo, Giuseppe [1 ,2 ]
Tomaiuolo, Rossella [1 ,2 ]
机构
[1] CEINGE Biotecnol Avanzate, Naples, Italy
[2] Univ Naples Federico II, Dipartimento Med Mol & Biotecnol Med, Naples, Italy
[3] Fdn IRCCS Ca Granda Osped Maggiore Policlin Mangi, Med Genet Lab, Milan, Italy
[4] Univ Molise, Dipartimento Biosci & Terr, Isernia, Italy
关键词
TRANSMEMBRANE CONDUCTANCE REGULATOR; EPIDEMIOLOGY;
D O I
10.1371/journal.pone.0060448
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
070301 [无机化学]; 070403 [天体物理学]; 070507 [自然资源与国土空间规划学]; 090105 [作物生产系统与生态工程];
摘要
Cystic fibrosis (CF) is the most frequent lethal genetic disorder among Caucasians. It depends on alterations of a chloride channel expressed by most epithelial cells and encoded by CFTR gene. Also using scanning techniques to analyze the whole coding regions of CFTR gene, mutations are not identified in up to 10% of CF alleles, and such figure increases in CFTR-related disorders (CFTR-RD). Other gene regions may be the site of causing-disease mutations. We searched for genetic variants in the 1500 bp of CFTR 39 untranslated region, typical target of microRNA (miRNA) posttranscriptional gene regulation, in either CF patients with the F508del homozygous genotype and different clinical expression (n = 20), CF (n = 32) and CFTR-RD (n = 43) patients with one or none mutation after CFTR scanning and in controls (n = 50). We identified three SNPs, one of which, the c.*1043A>C, was located in a region predicted to bind miR-433 and miR-509-3p. Such mutation was peculiar of a CFTR-RD patient that had Congenital Bilateral Absence of Vas Deferens (CBAVD), diffuse bronchiectasis, a borderline sweat chloride test and the heterozygous severe F508del mutation on the other allele. The expression analysis demonstrated that the c.*1043A>C increases the affinity for miR-509-3p and slightly decreases that for the miR-433. Both miRNAs cause in vitro a reduced expression of CFTR protein. Thus, the c.*1043A>C may act as a mild CFTR mutation enhancing the affinity for inhibitory miRNAs as a novel pathogenetic mechanism in CF.
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页数:6
相关论文
共 13 条
[1]
Extensive Molecular Analysis of Patients Bearing CFTR-Related Disorders [J].
Amato, Felice ;
Bellia, Chiara ;
Cardillo, Giuseppe ;
Castaldo, Giuseppe ;
Ciaccio, Marcello ;
Elce, Ausilia ;
Lembo, Francesca ;
Tomaiuolo, Rossella .
JOURNAL OF MOLECULAR DIAGNOSTICS, 2012, 14 (01) :81-89
[2]
Comprehensive cystic fibrosis mutation epidemiology and haplotype characterization in a southern Italian population [J].
Castaldo, G ;
Polizzi, A ;
Tomaiuolo, R ;
Cazeneuve, C ;
Girodon, E ;
Santostasi, T ;
Salvatore, D ;
Raia, V ;
Rigillo, N ;
Goossens, M ;
Salvatore, F .
ANNALS OF HUMAN GENETICS, 2005, 69 :15-24
[3]
Molecular diagnostics: between chips and customized medicine [J].
Castaldo, Giuseppe ;
Lembo, Francesca ;
Tomaiuolo, Rossella .
CLINICAL CHEMISTRY AND LABORATORY MEDICINE, 2010, 48 (07) :973-982
[4]
Consensus on the use and interpretation of cystic fibrosis mutation analysis in clinical practice [J].
Castellani, C. ;
Cuppens, H. ;
Macek, M., Jr. ;
Cassinian, J. J. ;
Kerern, E. ;
Durie, P. ;
Tullis, E. ;
Assael, B. M. ;
Bombieri, C. ;
Brown, A. ;
Casals, T. ;
Claustres, M. ;
Cutting, G. R. ;
Dequeker, E. ;
Dodge, J. ;
Doull, I. ;
Farrell, P. ;
Ferec, C. ;
Girodon, E. ;
Johannesson, M. ;
Kerem, B. ;
Knowles, M. ;
Munck, A. ;
Pignatti, P. F. ;
Radojkovic, D. ;
Rizzotti, P. ;
Schwarz, M. ;
Stuhnnann, M. ;
Tzetis, M. ;
Zielenski, J. ;
Elborn, J. S. .
JOURNAL OF CYSTIC FIBROSIS, 2008, 7 (03) :179-196
[5]
A SNP in a let-7 microRNA Complementary Site in the KRAS 3′ Untranslated Region Increases Non-Small Cell Lung Cancer Risk [J].
Chin, Lena J. ;
Ratner, Elena ;
Leng, Shuguang ;
Zhai, Rihong ;
Nallur, Sunitha ;
Babar, Imran ;
Muller, Roman-Ulrich ;
Straka, Eva ;
Su, Li ;
Burki, Elizabeth A. ;
Crowell, Richard E. ;
Patel, Rajeshvari ;
Kulkarni, Trupti ;
Homer, Robert ;
Zelterman, Daniel ;
Kidd, Kenneth K. ;
Zhu, Yong ;
Christiani, David C. ;
Belinsky, Steven A. ;
Slack, Frank J. ;
Weidhaas, Joanne B. .
CANCER RESEARCH, 2008, 68 (20) :8535-8540
[6]
microRNA regulation of expression of the cystic fibrosis transmembrane conductance regulator gene [J].
Gillen, Austin E. ;
Gosalia, Nehal ;
Leir, Shih-Hsing ;
Harris, Ann .
BIOCHEMICAL JOURNAL, 2011, 438 :25-32
[7]
The role of site accessibility in microRNA target recognition [J].
Kertesz, Michael ;
Iovino, Nicola ;
Unnerstall, Ulrich ;
Gaul, Ulrike ;
Segal, Eran .
NATURE GENETICS, 2007, 39 (10) :1278-1284
[8]
CYSTIC-FIBROSIS TRANSMEMBRANE CONDUCTANCE REGULATOR AND THE ETIOLOGY AND PATHOGENESIS OF CYSTIC-FIBROSIS [J].
MCINTOSH, I ;
CUTTING, GR .
FASEB JOURNAL, 1992, 6 (10) :2775-2782
[9]
Synergistic Post-Transcriptional Regulation of the Cystic Fibrosis Transmembrane conductance Regulator (CFTR) by miR-101 and miR-494 Specific Binding [J].
Megiorni, Francesca ;
Cialfi, Samantha ;
Dominici, Carlo ;
Quattrucci, Serena ;
Pizzuti, Antonio .
PLOS ONE, 2011, 6 (10)
[10]
Genotype-phenotype correlation in cystic fibrosis: The role of modifier genes [J].
Salvatore, F ;
Scudiero, O ;
Castaldo, G .
AMERICAN JOURNAL OF MEDICAL GENETICS, 2002, 111 (01) :88-95