SRp30c-dependent stimulation of survival motor neuron (SMN) exon 7 inclusion is facilitated by a direct interaction with hTra2β1

被引:114
作者
Young, PJ
DiDonato, CJ
Hu, D
Kothary, R
Androphy, EJ
Lorson, CL [1 ]
机构
[1] Arizona State Univ, Dept Biol, Tempe, AZ 85287 USA
[2] Ottawa Hlth Res Inst, Ottawa, ON K1H 8L6, Canada
[3] Univ Massachusetts, Sch Med, Dept Med, Worcester, MA 01605 USA
关键词
D O I
10.1093/hmg/11.5.577
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
Proximal spinal muscular atrophy (SMA) is caused by the homozygous loss of survival motor neuron (SMN1). SMN2, a nearly identical copy gene, is present in all SMA patients; however this gene cannot provide protection from disease due to the aberrant splicing of a critical exon. SMN1-derived transcripts are exclusively full-length, whereas SMN2-derived transcripts predominantly lack SMN exon 7. A single non-polymorphic nucleotide difference (C in SMN1; T in SMN2) is responsible for the alternative splicing patterns. We have previously shown that transient expression of an SR-like splicing factor, hTra2beta1, stimulates inclusion of exon 7 in SMN2-derived mini-gene transcripts through an interaction with the AG-rich exonic splice enhancer within exon 7. We now demonstrate that a second splicing factor, SRp30c, can stimulate SMN exon 7-inclusion and that this activity required the same AG-rich enhancer as hTra2beta1. SRp30c did not directly associate with SMN exon 7; rather its association with the exonic enhancer was mediated by a direct interaction with hTra2beta1. In the absence of the hTra2beta1 binding site, SRp30c failed to complex with SMN exon 7. Taken together, these results identify SRp30c as a modulator of SMN exon 7-inclusion and provide insight into the molecular regulation of this critical exon.
引用
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页码:577 / 587
页数:11
相关论文
共 38 条
  • [21] The human centromeric survival motor neuron gene (SMN2) rescues embryonic lethality in Smn-/- mice and results in a mouse with spinal muscular atrophy
    Monani, UR
    Sendtner, M
    Coovert, DD
    Parsons, DW
    Andreassi, C
    Le, TT
    Jablonka, S
    Schrank, B
    Rossol, W
    Prior, TW
    Morris, GE
    Burghes, AHM
    [J]. HUMAN MOLECULAR GENETICS, 2000, 9 (03) : 333 - 339
  • [22] The adenovirus E4-ORF4 splicing enhancer protein interacts with a subset of phosphorylated SR proteins
    Nilsson, CE
    Petersen-Mahrt, S
    Durot, C
    Shtrichman, R
    Krainer, AR
    Kleinberger, T
    Akusjärvi, G
    [J]. EMBO JOURNAL, 2001, 20 (04) : 864 - 871
  • [23] PEARN J, 1980, LANCET, V1, P919
  • [24] Schaal TD, 1999, MOL CELL BIOL, V19, P1705
  • [25] IDENTIFICATION AND CHARACTERIZATION OF 3 MEMBERS OF THE HUMAN SR FAMILY OF PRE-MESSENGER-RNA SPLICING FACTORS
    SCREATON, GR
    CACERES, JF
    MAYEDA, A
    BELL, MV
    PLEBANSKI, M
    JACKSON, DG
    BELL, JI
    KRAINER, AR
    [J]. EMBO JOURNAL, 1995, 14 (17) : 4336 - 4349
  • [26] Alternative splicing determines the intracellular localization of the novel nuclear protein Nop30 and its interaction with the splicing factor SRp30c
    Stoss, O
    Schwaiger, FW
    Cooper, TA
    Stamm, S
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (16) : 10951 - 10962
  • [27] Functions of SR and Tra2 proteins in Pre-mRNA splicing regulation
    Tacke, R
    Manley, JL
    [J]. PROCEEDINGS OF THE SOCIETY FOR EXPERIMENTAL BIOLOGY AND MEDICINE, 1999, 220 (02): : 59 - 63
  • [28] TIAN HC, 1995, MOL CELL BIOL, V15, P6291
  • [29] POSITIVE CONTROL OF PRE-MESSENGER-RNA SPLICING INVITRO
    TIAN, M
    MANIATIS, T
    [J]. SCIENCE, 1992, 256 (5054) : 237 - 240
  • [30] RBMY, a probable human spermatogenesis factor, and other hnRNP G proteins interact with Tra2β and affect splicing
    Venables, JP
    Elliott, DJ
    Makarova, OV
    Makarov, EM
    Cooke, HJ
    Eperon, IC
    [J]. HUMAN MOLECULAR GENETICS, 2000, 9 (05) : 685 - 694