Gimble F S
Center for Genome Research, Institute of Biosciences and Technology, Texas A&M University System Health Science Center, 2121 West Holcombe Boulevard, Texas A&M University, Houston, TX 77030, USA.
Nucleic Acids Res. 2001 Oct 15;29(20):4215-23. doi: 10.1093/nar/29.20.4215.
Mobile introns and inteins self-propagate by 'homing', a gene conversion process initiated by site-specific homing endonucleases. The VMA intein, which encodes the PI-SceI endonuclease in Saccharomyces cerevisiae, is present in several different yeast strains. Surprisingly, a wild wine yeast (DH1-1A) contains not only the intein(+) allele, but also an inteinless allele that has not undergone gene conversion. To elucidate how these two alleles co-exist, we characterized the endonuclease encoded by the DH1-1A intein(+) allele and the target site in the intein(-) allele. Sequence analysis reveals seven mutations in the 31 bp recognition sequence, none of which occurs at positions that are individually critical for activity. However, binding and cleavage of the sequence by PI-SceI is reduced 10-fold compared to the S.cerevisiae target. The PI-SceI analog encoded by the DH1-1A intein(+) allele contains 11 mutations at residues in the endonuclease and protein splicing domains. None affects protein splicing, but one, a R417Q substitution, accounts for most of the decrease in DNA cleavage and DNA binding activity of the DH1-1A protein. Loss of activity in the DH1-1A endonuclease and target site provides one explanation for co-existence of the intein(+) and intein(-) alleles.
移动内含子和蛋白质内含子通过“归巢”进行自我传播,“归巢”是一种由位点特异性归巢内切核酸酶启动的基因转换过程。在酿酒酵母中编码PI-SceI内切核酸酶的VMA蛋白质内含子存在于几种不同的酵母菌株中。令人惊讶的是,一种野生酿酒酵母(DH1-1A)不仅含有蛋白质内含子(+)等位基因,还含有一个未经历基因转换的无蛋白质内含子等位基因。为了阐明这两个等位基因如何共存,我们对DH1-1A蛋白质内含子(+)等位基因编码的内切核酸酶和蛋白质内含子(-)等位基因中的靶位点进行了表征。序列分析揭示了31bp识别序列中的七个突变,其中没有一个发生在对活性至关重要的单个位置。然而,与酿酒酵母靶标相比,PI-SceI对该序列的结合和切割减少了10倍。DH1-1A蛋白质内含子(+)等位基因编码的PI-SceI类似物在内切核酸酶和蛋白质剪接结构域的残基处含有11个突变。没有一个影响蛋白质剪接,但其中一个,R417Q取代,是DH1-1A蛋白DNA切割和DNA结合活性下降的主要原因。DH1-1A内切核酸酶和靶位点活性的丧失为蛋白质内含子(+)和蛋白质内含子(-)等位基因的共存提供了一种解释。