拟南芥端粒酶 TERT-TR 复合物的特征。

IF 3.9 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Plant Molecular Biology Pub Date : 2024-05-14 DOI:10.1007/s11103-024-01461-w
Barbora Štefanovie, Leon P Jenner, Lucie Bozděchová, Petr Fajkus, Eva Sýkorová, Jiří Fajkus, Jan J Paleček
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引用次数: 0

摘要

大多数真核生物都利用端粒酶复合物来维持染色体末端。该复合体的核心由端粒酶逆转录酶(TERT)和端粒酶 RNA(TR)亚基组成。TERT反转录酶(RT)结构域利用TR模板序列合成端粒DNA。其他 TERT 结构域以不同方式参与这一过程。其中,TERT RNA结合结构域(TRBD)与特定的TR基序相互作用。利用酵母 3-杂交系统,我们展示了拟南芥(At)TRBD 和胚状体保守的 KRxR 矩阵在 TRBD 结构域之前的非结构连接体中与最近鉴定的 AtTR 亚基结合的关键作用。我们还展示了预测的 P4 干和假结 AtTR 结构的重要作用,并提供了 AtTRBD 与假结结合以及 KRxR 基团稳定与 P4 干结构相互作用的证据。因此,我们的研究结果首次揭示了植物端粒酶复合物的核心部分。
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Characterisation of the Arabidopsis thaliana telomerase TERT-TR complex.

Most eukaryotic organisms employ a telomerase complex for the maintenance of chromosome ends. The core of this complex is composed of telomerase reverse transcriptase (TERT) and telomerase RNA (TR) subunits. The TERT reverse transcriptase (RT) domain synthesises telomeric DNA using the TR template sequence. The other TERT domains contribute to this process in different ways. In particular, the TERT RNA-binding domain (TRBD) interacts with specific TR motif(s). Using a yeast 3-hybrid system, we show the critical role of Arabidopsis thaliana (At) TRBD and embryophyta-conserved KRxR motif in the unstructured linker preceding the TRBD domain for binding to the recently identified AtTR subunit. We also show the essential role of the predicted P4 stem and pseudoknot AtTR structures and provide evidence for the binding of AtTRBD to pseudoknot and KRxR motif stabilising interaction with the P4 stem structure. Our results thus provide the first insight into the core part of the plant telomerase complex.

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来源期刊
Plant Molecular Biology
Plant Molecular Biology 生物-生化与分子生物学
自引率
2.00%
发文量
95
审稿时长
1.4 months
期刊介绍: Plant Molecular Biology is an international journal dedicated to rapid publication of original research articles in all areas of plant biology.The Editorial Board welcomes full-length manuscripts that address important biological problems of broad interest, including research in comparative genomics, functional genomics, proteomics, bioinformatics, computational biology, biochemical and regulatory networks, and biotechnology. Because space in the journal is limited, however, preference is given to publication of results that provide significant new insights into biological problems and that advance the understanding of structure, function, mechanisms, or regulation. Authors must ensure that results are of high quality and that manuscripts are written for a broad plant science audience.
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