嗜热 Galdieria(红藻纲)线粒体基因组快速进化的潜在原因和后果。

IF 3.4 Q1 Agricultural and Biological Sciences
Chung Hyun Cho, Seung In Park, Claudia Ciniglia, Eun Chan Yang, Louis Graf, Debashish Bhattacharya, Hwan Su Yoon
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引用次数: 0

摘要

背景:蓝藻属(Cyanidiophyceae)是一种早期分化的红藻,在酸性温泉周围的极端条件下生长茂盛。虽然这一物种群被视为了解嗜极真核生物的典范,但人们对其线粒体基因组(有丝分裂基因组)的分子进化却知之甚少:为了填补这一知识空白,我们测序了五个蓝藻代表支系的有丝分裂基因组,并确定了两大类,即 Galdieria 型(G-type)和 Cyanidium 型(C-type)。G 型有丝分裂基因组具有以下三个特征:(i)基因组大小和基因库存减少;(ii)独特蛋白质特性的进化,包括电荷、水力、稳定性、氨基酸组成和蛋白质大小;(iii)独特的 GC 含量和核苷酸偏斜。根据GC偏斜相关特征,我们推测单向DNA复制可能导致了G型有丝分裂基因组的快速进化:结论:G型有丝分裂基因组的高度分化很可能是由Galdieria物种所栖息的多种极端环境中的自然选择及其高度灵活的异养代谢所驱动的。我们推测,有丝分裂基因组的分化与适应之间的相互作用可能有助于解释秃杉属物种在多种极端生境中的优势地位。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Potential causes and consequences of rapid mitochondrial genome evolution in thermoacidophilic Galdieria (Rhodophyta).

Potential causes and consequences of rapid mitochondrial genome evolution in thermoacidophilic Galdieria (Rhodophyta).

Potential causes and consequences of rapid mitochondrial genome evolution in thermoacidophilic Galdieria (Rhodophyta).

Potential causes and consequences of rapid mitochondrial genome evolution in thermoacidophilic Galdieria (Rhodophyta).

Background: The Cyanidiophyceae is an early-diverged red algal class that thrives in extreme conditions around acidic hot springs. Although this lineage has been highlighted as a model for understanding the biology of extremophilic eukaryotes, little is known about the molecular evolution of their mitochondrial genomes (mitogenomes).

Results: To fill this knowledge gap, we sequenced five mitogenomes from representative clades of Cyanidiophyceae and identified two major groups, here referred to as Galdieria-type (G-type) and Cyanidium-type (C-type). G-type mitogenomes exhibit the following three features: (i) reduction in genome size and gene inventory, (ii) evolution of unique protein properties including charge, hydropathy, stability, amino acid composition, and protein size, and (iii) distinctive GC-content and skewness of nucleotides. Based on GC-skew-associated characteristics, we postulate that unidirectional DNA replication may have resulted in the rapid evolution of G-type mitogenomes.

Conclusions: The high divergence of G-type mitogenomes was likely driven by natural selection in the multiple extreme environments that Galdieria species inhabit combined with their highly flexible heterotrophic metabolism. We speculate that the interplay between mitogenome divergence and adaptation may help explain the dominance of Galdieria species in diverse extreme habitats.

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来源期刊
BMC Evolutionary Biology
BMC Evolutionary Biology 生物-进化生物学
CiteScore
5.80
自引率
0.00%
发文量
0
审稿时长
6 months
期刊介绍: BMC Evolutionary Biology is an open access, peer-reviewed journal that considers articles on all aspects of molecular and non-molecular evolution of all organisms, as well as phylogenetics and palaeontology.
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