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共同进化:Cassandra 反转录转座子逐渐反映 5S rRNA 基因启动子突变。

Evolving Together: Cassandra Retrotransposons Gradually Mirror Promoter Mutations of the 5S rRNA Genes.

机构信息

Faculty of Biology, Technische Universität Dresden, 01069 Dresden, Germany.

Institut Botànic de Barcelona, IBB (CSIC-MCNB), 08038 Barcelona, Catalonia, Spain.

出版信息

Mol Biol Evol. 2024 Feb 1;41(2). doi: 10.1093/molbev/msae010.

Abstract

The 5S rRNA genes are among the most conserved nucleotide sequences across all species. Similar to the 5S preservation we observe the occurrence of 5S-related nonautonomous retrotransposons, so-called Cassandras. Cassandras harbor highly conserved 5S rDNA-related sequences within their long terminal repeats, advantageously providing them with the 5S internal promoter. However, the dynamics of Cassandra retrotransposon evolution in the context of 5S rRNA gene sequence information and structural arrangement are still unclear, especially: (1) do we observe repeated or gradual domestication of the highly conserved 5S promoter by Cassandras and (2) do changes in 5S organization such as in the linked 35S-5S rDNA arrangements impact Cassandra evolution? Here, we show evidence for gradual co-evolution of Cassandra sequences with their corresponding 5S rDNAs. To follow the impact of 5S rDNA variability on Cassandra TEs, we investigate the Asteraceae family where highly variable 5S rDNAs, including 5S promoter shifts and both linked and separated 35S-5S rDNA arrangements have been reported. Cassandras within the Asteraceae mirror 5S rDNA promoter mutations of their host genome, likely as an adaptation to the host's specific 5S transcription factors and hence compensating for evolutionary changes in the 5S rDNA sequence. Changes in the 5S rDNA sequence and in Cassandras seem uncorrelated with linked/separated rDNA arrangements. We place all these observations into the context of angiosperm 5S rDNA-Cassandra evolution, discuss Cassandra's origin hypotheses (single or multiple) and Cassandra's possible impact on rDNA and plant genome organization, giving new insights into the interplay of ribosomal genes and transposable elements.

摘要

5S rRNA 基因是所有物种中最保守的核苷酸序列之一。与我们观察到的 5S 保存相似,也会发生 5S 相关的非自主逆转录转座子,即所谓的 Cassandra。Cassandra 在其长末端重复序列中具有高度保守的 5S rDNA 相关序列,这为它们提供了有利的 5S 内部启动子。然而,Cassandra 逆转录转座子在 5S rRNA 基因序列信息和结构排列背景下的进化动态仍不清楚,特别是:(1)我们是否观察到 Cassandra 对高度保守的 5S 启动子的重复或逐渐驯化,以及(2)5S 组织的变化,如连接的 35S-5S rDNA 排列,是否会影响 Cassandra 的进化?在这里,我们提供了 Cassandra 序列与其相应的 5S rDNA 逐渐共同进化的证据。为了跟踪 5S rDNA 变异对 Cassandra TEs 的影响,我们研究了菊科,该科报道了高度可变的 5S rDNAs,包括 5S 启动子移位以及连接和分离的 35S-5S rDNA 排列。菊科中的 Cassandra 反映了其宿主基因组 5S rDNA 启动子突变,这可能是对宿主特定 5S 转录因子的一种适应,从而补偿了 5S rDNA 序列的进化变化。5S rDNA 序列和 Cassandra 的变化似乎与连接/分离的 rDNA 排列无关。我们将所有这些观察结果置于被子植物 5S rDNA-Cassandra 进化的背景下,讨论了 Cassandra 的起源假说(单一或多个)以及 Cassandra 对 rDNA 和植物基因组组织的可能影响,为核糖体基因和转座元件的相互作用提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cf67/10853983/0f14da456ca4/msae010f1.jpg

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