5′ Exon replacement and repair by spliceosome-mediated RNA trans-splicing

被引:44
作者
Mansfield, SG
Clark, RH
Puttaraju, M
Kole, J
Cohn, JA
Mitchell, LG
Garcia-Blanco, MA
机构
[1] Intronn Inc, Gaithersburg, MD 20878 USA
[2] Duke Univ, Med Ctr, Dept Med, Durham, NC 27713 USA
关键词
CFTR; genetic disease; mRNA repair; SMaRT; trans-splicing;
D O I
10.1261/rna.5101903
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Spliceosome-mediated RNA trans-splicing (SMaRT) has been used previously to reprogram mutant endogenous CFTR and factor VIII mRNAs in human epithelial cell and tissue models and knockout mice, respectively. Those studies used 3' exon replacement (3'ER); a process in which the distal portion of RNA is reprogrammed. Here, we also show that the 5' end of mRNA can be completely rewritten by 5'ER. For proof-of-concept, and to test whether 5'ER could generate functional CFTR, we generated a mutant minigene target containing CFTR exons 10-24 (DeltaF508) and a mini-intron 10, and a pretrans-splicing molecule (targeted to intron 10) containing CFTR exons 1-10 (+F508), and tested these two constructs in 293T cells for anion efflux transport. Cells cotransfected with target and PTM showed a consistent increase in anion efflux, but there was no response in control cells that received PTM or target alone. Using a LacZ reporter system to accurately quantify trans-splicing efficiency, we tested several unique PTM designs. These studies provided two important findings as follows: (1) efficient trans-splicing can be achieved by binding the PTM to different locations in the target, and (2) relatively few changes in PTM design can have a profound impact on trans-splicing activity. Tethering the PTM close to the target 3' splice site (as opposed to the donor site) and inserting an intron in the PTM coding resulted in a 65-fold enhancement of LacZ activity. These studies, demonstrate that (1) SMaRT can be used to reprogram the 5' end of mRNA, and (2) efficiency can be improved substantially.
引用
收藏
页码:1290 / 1297
页数:8
相关论文
共 30 条
[1]   EXON RECOGNITION IN VERTEBRATE SPLICING [J].
BERGET, SM .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1995, 270 (06) :2411-2414
[2]   Phenotype correction of hemophilia A mice by spliceosome-mediated RNA trans-splicing [J].
Chao, HJ ;
Mansfield, SG ;
Bartel, RC ;
Hiriyanna, S ;
Mitchell, LG ;
Garcia-Blanco, M ;
Walsh, CE .
NATURE MEDICINE, 2003, 9 (08) :1015-1019
[3]   A GENERIC INTRON INCREASES GENE-EXPRESSION IN TRANSGENIC MICE [J].
CHOI, T ;
HUANG, M ;
GORMAN, C ;
JAENISCH, R .
MOLECULAR AND CELLULAR BIOLOGY, 1991, 11 (06) :3070-3074
[4]  
CHOWRIRA BM, 1994, J BIOL CHEM, V269, P25856
[5]   The RNA-binding protein TIA-1 is a novel mammalian splicing regulator acting through intron sequences adjacent to a 5′ splice site [J].
Del Gato-Konczak, F ;
Bourgeois, CF ;
Le Guiner, C ;
Kister, L ;
Gesnel, MC ;
Stévenin, J ;
Breathnach, R .
MOLECULAR AND CELLULAR BIOLOGY, 2000, 20 (17) :6287-6299
[6]  
GARCIABLANCO MA, 2000, GENE THER REGUL, V1, P141
[7]   Co-transcriptional splicing of pre-messenger RNAs: considerations for the mechanism of alternative splicing [J].
Goldstrohm, AC ;
Greenleaf, AL ;
Garcia-Blanco, MA .
GENE, 2001, 277 (1-2) :31-47
[8]   ENHANCED TRANSLATION OF CHIMERIC MESSENGER-RNAS CONTAINING A PLANT VIRAL UNTRANSLATED LEADER SEQUENCE [J].
JOBLING, SA ;
GEHRKE, L .
NATURE, 1987, 325 (6105) :622-625
[9]   A TRANS-SPLICED LEADER SEQUENCE ON ACTIN MESSENGER-RNA IN C-ELEGANS [J].
KRAUSE, M ;
HIRSH, D .
CELL, 1987, 49 (06) :753-761
[10]   Ribozyme-mediated repair of sickle β-globin mRNAs in erythrocyte precursors [J].
Lan, N ;
Howrey, RP ;
Lee, SW ;
Smith, CA ;
Sullenger, BA .
SCIENCE, 1998, 280 (5369) :1593-1596