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其侧翼内含子发生古老缺失后matK上选择作用的保守性。

Conservation of selection on matK following an ancient loss of its flanking intron.

作者信息

Duffy Aaron M, Kelchner Scot A, Wolf Paul G

机构信息

Department of Biology, Utah State University, Logan, UT 84322, USA.

出版信息

Gene. 2009 Jun 1;438(1-2):17-25. doi: 10.1016/j.gene.2009.02.006. Epub 2009 Feb 21.

DOI:10.1016/j.gene.2009.02.006
PMID:19236909
Abstract

The chloroplast gene trnK and its associated group II intron appear to be absent in a large and ancient clade that includes nearly 90% of fern species. However, the maturase protein encoded within the intron (matK) is still present and located on the boundary of a large-scale inversion. We surveyed the chloroplast genome sequence of clade-member Adiantum capillus-veneris for evidence of a still present but fragmented trnK intron. Lack of signature structural domains and sequence motifs in the genome indicate loss of the trnK intron through degradation in an ancestor of the clade. In plants, matK preferentially catalyzes splicing of the trnK intron, but may also have a generalist function, splicing other group II introns in the chloroplast genome. We therefore tested whether a shift in selective constraint has occurred after loss of the trnK intron. Using previously unavailable sequences for several ferns, we compared matK sequences of the intron-less fern clade to sequences from seed plants and ferns with the intron and found no significant differences in selection among lineages using multiple methods. We conclude that matK in ferns has maintained its apparently ancient and generalized function in chloroplasts, even after the loss of its co-evolved group II intron. Finally, we also present primers that will allow amplification and nucleotide sequencing of the phylogenetically useful matK gene in additional fern taxa.

摘要

叶绿体基因trnK及其相关的II类内含子在一个庞大且古老的分支中似乎缺失,该分支包含了近90%的蕨类植物物种。然而,内含子中编码的成熟酶蛋白(matK)仍然存在,并位于一个大规模倒位的边界上。我们对分支成员铁线蕨的叶绿体基因组序列进行了调查,以寻找仍然存在但已片段化的trnK内含子的证据。基因组中缺乏标志性的结构域和序列基序,表明trnK内含子在该分支的一个祖先中通过降解而丢失。在植物中,matK优先催化trnK内含子的剪接,但也可能具有一般性功能,即剪接叶绿体基因组中的其他II类内含子。因此,我们测试了trnK内含子丢失后是否发生了选择约束的转变。利用几种蕨类植物以前无法获得的序列,我们将无内含子蕨类植物分支的matK序列与种子植物和有内含子蕨类植物的序列进行了比较,并使用多种方法发现各谱系之间在选择上没有显著差异。我们得出结论,即使在其共同进化的II类内含子丢失后,蕨类植物中的matK在叶绿体中仍保持其明显古老且普遍的功能。最后,我们还提供了引物,这些引物将允许在其他蕨类分类群中扩增和对系统发育上有用的matK基因进行核苷酸测序。

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