Factors contributing to organelle genomes size variation and the intracellular DNA transfer in Polygonaceae.

IF 3.5 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY BMC Genomics Pub Date : 2024-10-23 DOI:10.1186/s12864-024-10914-x
Yi Xiong, Xiong Lei, Yanli Xiong, Yingjie Liu, Zhixiao Dong, Junming Zhao, Qingqing Yu, Xiao Ma
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Abstract

The use of complete organelle genomes, including chloroplast and mitochondrial genomes, is a powerful molecular method for studying biological evolution and gene transfer. However, in the case of Polygonaceae, an important family with numerous edible, medicinal, and ornamental species, the mitochondrial genomes of only three species have been sequenced and analyzed. In this study, we present the mitochondrial and chloroplast genomes of two important Tibetan medicinal plants, Bistorta viviparum and B. macrophyllum. All the organelle genomes are assembled into a single circular structure and contain a common set of 32 protein-coding genes (PCGs). Some genes such as rps2 and ndhF were found to have high nucleotide polymorphism (Pi) in the chloroplast genomes, while cox1, mttB and rps12 showed pronounced Pi values in the mitochondrial genomes. Furthermore, our analysis revealed that most chloroplast genes and mitochondrial PCGs in Polygonaceae plants are under purifying selection. However, a few genes, including the chloroplast gene psaJ and the mitochondrial genes ccmFc, atp8 and nad4, showed positive selection in certain Polygonaceae plants, as indicated by a Ka/Ks ratio greater than one. Structural variation analysis revealed a wealth of differences between the mitochondrial genomes of five Polygonaceae species, with a particularly notable large-scale inversion observed between Reynoutria japonica and Fallopia aubertii. Furthermore, an analysis of the homologous sequences in the chloroplast and mitochondrial genomes revealed that the rps7 has been transferred from the chloroplast to the mitochondrial genome in all five Polygonaceae species. Finally, ecological niche models were constructed for B. viviparum and B. macrophyllum, indicating that mean annual temperature and altitude are the main climatic factors influencing the distribution of both species. Although the current distribution of B. viviparum is significantly wider than that of B. macrophyllum, projections suggest that the optimal growth ranges of both species will expand in the future, with B. macrophyllum potentially exceeding B. viviparum. This study not only contributes to the plastid genome database for Polygonaceae plants, but also provides theoretical insights into the adaptive evolution of these plants.

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蓼科植物细胞器基因组大小变化和细胞内 DNA 转移的因素。
利用完整的细胞器基因组,包括叶绿体和线粒体基因组,是研究生物进化和基因转移的一种强有力的分子方法。然而,蓼科是一个重要的科,有许多食用、药用和观赏物种,目前仅对三个物种的线粒体基因组进行了测序和分析。在本研究中,我们展示了两种重要的藏药用植物--大叶女贞(Bistorta viviparum)和大叶女贞(B. macrophyllum)的线粒体和叶绿体基因组。所有细胞器基因组都组装成一个环状结构,包含一组共同的 32 个蛋白质编码基因(PCGs)。在叶绿体基因组中,一些基因(如 rps2 和 ndhF)具有较高的核苷酸多态性(Pi),而在线粒体基因组中,cox1、mttB 和 rps12 则显示出明显的 Pi 值。此外,我们的分析表明,蓼科植物的大多数叶绿体基因和线粒体 PCGs 都处于净化选择过程中。然而,在某些蓼科植物中,包括叶绿体基因 psaJ 和线粒体基因 ccmFc、atp8 和 nad4 在内的少数基因表现出了正选择,表现为 Ka/Ks 比值大于 1。结构变异分析揭示了五个蓼科植物线粒体基因组之间的大量差异,其中在 Reynoutria japonica 和 Fallopia aubertii 之间观察到的大规模反转尤为显著。此外,对叶绿体基因组和线粒体基因组同源序列的分析表明,在所有五个蓼科植物中,rps7 已从叶绿体转移到线粒体基因组。最后,构建了B. viviparum和B. macrophyllum的生态位模型,表明年平均温度和海拔高度是影响这两个物种分布的主要气候因素。虽然目前大叶榕树的分布范围明显比小叶榕树广,但预测表明这两个物种的最佳生长范围在未来都将扩大,大叶榕树有可能超过小叶榕树。这项研究不仅为蓼科植物的质粒基因组数据库做出了贡献,还为这些植物的适应性进化提供了理论依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
BMC Genomics
BMC Genomics 生物-生物工程与应用微生物
CiteScore
7.40
自引率
4.50%
发文量
769
审稿时长
6.4 months
期刊介绍: BMC Genomics is an open access, peer-reviewed journal that considers articles on all aspects of genome-scale analysis, functional genomics, and proteomics. BMC Genomics is part of the BMC series which publishes subject-specific journals focused on the needs of individual research communities across all areas of biology and medicine. We offer an efficient, fair and friendly peer review service, and are committed to publishing all sound science, provided that there is some advance in knowledge presented by the work.
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