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Alternative splicing of beta-tropomyosin pre-mRNA: multiple cis-elements can contribute to the use of the 5'- and 3'-splice sites of the nonmuscle/smooth muscle exon 6

机译:β-tropomyosinpre-mRNA的可变剪接:多个顺式元件可有助于使用非肌肉/平滑肌外显子的5'-和3'-剪接位点6

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摘要

We previously found that the splicing of exon 5 to exon 6 in the rat beta-TM gene required that exon 6 first be joined to the downstream common exon 8 (Helfman et al., Genes and Dev. 2, 1627-1638, 1988). Pre-mRNAs containing exon 5, intron 5 and exon 6 are not normally spliced in vitro. We have carried out a mutational analysis to determine which sequences in the pre-mRNA contribute to the inability of this precursor to be spliced in vitro. We found that mutations in two regions of the pre-mRNA led to activation of the 3'-splice site of exon 6, without first joining exon 6 to exon 8. First, introduction of a nine nucleotide poly U tract upstream of the 3'-splice site of exon 6 results in the splicing of exon 5 to exon 6 with as little as 35 nucleotides of exon 6. Second, introduction of a consensus 5'-splice site in exon 6 led to splicing of exon 5 to exon 6. Thus, three distinct elements can act independently to activate the use of the 3'-splice site of exon 6: (1) the sequences contained within exon 8 when joined to exon 6, (2) a poly U tract in intron 5, and (3) a consensus 5'-splice site in exon 6. Using biochemical assays, we have determined that these sequence elements interact with distinct cellular factors for 3'-splice site utilization. Although HeLa cell nuclear extracts were able to splice all three types of pre-mRNAs mentioned above, a cytoplasmic S100 fraction supplemented with SR proteins was unable to efficiently splice exon 5 to exon 6 using precursors in which exon 6 was joined to exon 8. We also studied how these elements contribute to alternative splice site selection using precursors containing the mutually exclusive, alternatively spliced cassette comprised of exons 5 through 8. Introduction of the poly U tract upstream of exon 6, and changing the 5'-splice site of exon 6 to a consensus sequence, either alone or in combination, facilitated the use of exon 6 in vitro, such that exon 6 was spliced more efficiently to exon 8. These data show that intron sequences upstream of an exon can contribute to the use of the downstream 5'-splice, and that sequences surrounding exon 6 can contribute to tissue-specific alternative splice site selection.
机译:我们先前发现,在大鼠beta-TM基因中将第5外显子剪接至第6外显子需要将第6外显子首先连接至下游共有第8外显子(Helfman等人,Genes and Dev。2,1627-1638,1988)。 。含有外显子5,内含子5和外显子6的pre-mRNA通常在体外不剪接。我们已经进行了突变分析,以确定前mRNA中的哪些序列导致该前体无法在体外剪接。我们发现前mRNA的两个区域中的突变导致外显子6的3'剪接位点活化,而没有先将外显子6连接到外显子8。首先,在3'上游引入了一个九个核苷酸的多U链。 -外显子6的剪接位点导致外显子5与外显子6的剪接少至外显子6的35个核苷酸。第二,在外显子6中引入共有5'剪接位点导致外显子5与外显子6剪接。因此,三个不同的元件可以独立发挥作用,以激活外显子6的3'剪接位点的使用:(1)与外显子6连接时,外显子8中包含的序列;(2)内含子5中的多U束;以及(3)外显子6中共有的5'-剪接位点。使用生化分析,我们确定这些序列元件与不同的细胞因子相互作用,可利用3'-剪接位点。尽管HeLa细胞核提取物能够剪接上述所有三种类型的pre-mRNA,但使用SR蛋白的胞质S100组分无法通过使用将6号外显子与8号外显子连接的前体有效地将5号外显子剪接至6号外显子。我们还研究了这些元素如何利用包含互斥的,选择性剪接的盒(由外显子5至8组成)的前体来促进选择性剪接位点的选择。引入外显子6上游的多U束,以及改变外显子6的5'剪接位点。无论是单独还是组合使用一个共有序列,均可促进体外使用第6外显子,从而使第6外显子更有效地剪接到第8外显子。这些数据表明,外显子上游的内含子序列可有助于下游的使用。 5'剪接,外显子6周围的序列可有助于组织特异性的替代剪接位点选择。

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