Chloroplast genomic insights into adaptive evolution and rapid radiation in the genus Passiflora (Passifloraceae).

IF 4.3 2区 生物学 Q1 PLANT SCIENCES BMC Plant Biology Pub Date : 2025-02-13 DOI:10.1186/s12870-025-06210-9
Luiz Augusto Cauz-Santos, Zirlane Portugal da Costa, Mariela Analía Sader, Cássio van den Berg, Maria Lucia Carneiro Vieira
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Abstract

Chloroplasts are essential organelles in plants and eukaryotic algae, responsible for photosynthesis, fatty acid synthesis, amino acid production, and stress responses. The genus Passiflora, known for its species diversity and dynamic chloroplast (cp) genome evolution, serves as an excellent model for studying structural variations. This study investigates evolutionary relationships within Passiflora by sequencing 11 new chloroplast genomes, assessing selective pressures on cp genes, and comparing plastid and nuclear phylogenies. Passiflora cp genomes showed significant variations in size, gene content, and structure, ranging from 132,736 to 163,292 base pairs, especially in Decaloba. Structural rearrangements and species-specific repeat patterns were identified. Selective pressure tests revealed significant adaptive evolution in certain lineages, with several genes, including clpP and petL, under positive selection. Phylogenetic analyses confirmed the monophyly of subgenera Astrophea, Passiflora, and Decaloba, while Deidamioides appeared polyphyletic. Nuclear phylogenetic analysis based on 35S rDNA sequences supported the monophyly of Astrophea but showed inconsistencies within subgenus Passiflora compared to cp genome data. This study highlights the evolutionary complexity of Passiflora cp genomes, demonstrating significant structural variations and adaptive evolution. The findings underscore the effectiveness of plastid phylogenomics in resolving phylogenetic relationships and provide insights into adaptive mechanisms shaping cp genome diversity in angiosperms.

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叶绿体是植物和真核藻类的重要细胞器,负责光合作用、脂肪酸合成、氨基酸生产和应激反应。西番莲属因其物种多样性和叶绿体(cp)基因组的动态进化而闻名,是研究结构变异的绝佳模型。本研究通过对 11 个新的叶绿体基因组进行测序、评估 cp 基因的选择压力以及比较质体和核系统进化关系,来研究西番莲属的进化关系。西番莲的 cp 基因组在大小、基因含量和结构方面存在显著差异,从 132,736 到 163,292 碱基对不等,尤其是在十里香中。研究发现了结构重排和物种特异性重复模式。选择性压力测试表明,在某些品系中存在明显的适应性进化,包括 clpP 和 petL 在内的几个基因处于正选择状态。系统发育分析证实了Astrophea亚属、Passiflora亚属和Decaloba亚属的单系性,而Deidamioides似乎具有多系性。基于 35S rDNA 序列的核系统发生分析支持 Astrophea 的单系,但与 cp 基因组数据相比,发现西番莲亚属内部存在不一致。这项研究凸显了西番莲 cp 基因组进化的复杂性,显示出显著的结构变异和适应性进化。这些发现强调了质体系统组学在解析系统发育关系方面的有效性,并为塑造被子植物 cp 基因组多样性的适应机制提供了见解。
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来源期刊
BMC Plant Biology
BMC Plant Biology 生物-植物科学
CiteScore
8.40
自引率
3.80%
发文量
539
审稿时长
3.8 months
期刊介绍: BMC Plant Biology is an open access, peer-reviewed journal that considers articles on all aspects of plant biology, including molecular, cellular, tissue, organ and whole organism research.
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