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单子叶植物天门冬目植物的端粒变异性

Telomere variability in the monocotyledonous plant order Asparagales.

作者信息

Sýkorová E, Lim K Y, Kunická Z, Chase M W, Bennett M D, Fajkus J, Leitch A R

机构信息

School of Biological Sciences, Queen Mary University of London, London E1 4NS, UK.

出版信息

Proc Biol Sci. 2003 Sep 22;270(1527):1893-904. doi: 10.1098/rspb.2003.2446.

Abstract

A group of monocotyledonous plants within the order Asparagales, forming a distinct clade in phylogenetic analyses, was reported previously to lack the 'typical' Arabidopsis-type telomere (TTTAGGG)(n). This stimulated us to determine what has replaced these sequences. Using slot-blot and fluorescent in situ hybridization (FISH) to species within this clade, our results indicate the following. 1. The typical Arabidopsis-type telomeric sequence has been partly or fully replaced by the human-type telomeric sequence (TTAGGG)(n). Species in Allium lack the human-type variant. 2. In most cases the human variant occurs along with a lower abundance of two or more variants of the minisatellite sequences (of seven types evaluated), usually these being the consensus telomeric sequence of Arabidopsis, Bombyx (TTAGG)(n) and Tetrahymena (TTGGGG)(n). FISH shows that the variants can occur mixed together at the telomere. 3. Telomerases generate products with a 6 base pair periodicity and when sequenced they reveal predominantly a reiterated human-type motif. These motifs probably form the 'true telomere' but the error rate of motif synthesis is higher compared with 'typical' plant telomerases. The data indicate that the Asparagales clade is unified by a mutation resulting in a switch from synthesis of Arabidopsis-like telomeres to a low-fidelity synthesis of human-like telomeres.

摘要

天门冬目内的一组单子叶植物,在系统发育分析中形成一个独特的进化枝,此前有报道称其缺乏“典型的”拟南芥型端粒(TTTAGGG)(n)。这促使我们去确定取代这些序列的是什么。通过对该进化枝内的物种进行狭缝杂交和荧光原位杂交(FISH),我们的结果表明如下。1. 典型的拟南芥型端粒序列已部分或完全被人型端粒序列(TTAGGG)(n)取代。葱属植物中的物种缺乏人型变体。2. 在大多数情况下,人型变体与较低丰度的两种或更多种小卫星序列变体(共评估了七种类型)同时出现,通常这些变体是拟南芥、家蚕(TTAGG)(n)和四膜虫(TTGGGG)(n)的共有端粒序列。FISH显示这些变体可在端粒处混合出现。3. 端粒酶产生具有6个碱基对周期性的产物,测序时它们主要揭示出一种重复的人型基序。这些基序可能构成“真正的端粒”,但与“典型的”植物端粒酶相比,基序合成的错误率更高。数据表明,天门冬目进化枝因一个突变而统一,该突变导致从合成拟南芥样端粒转变为低保真合成人样端粒。

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