Phylogenomics reveal extensive phylogenetic discordance due to incomplete lineage sorting following the rapid radiation of alpine butterflies (Papilionidae: Parnassius)

Author:

He Bo12ORCID,Zhao Youjie1,Su Chengyong1,Lin Gonghua2,Wang Yunliang1,Li Luyan3,Ma Junye3,Yang Qun34,Hao Jiasheng1

Affiliation:

1. College of Life Sciences Anhui Normal University Wuhu China

2. School of Life Sciences Jinggangshan University Ji'an China

3. State Key Laboratory of Palaeobiology and Stratigraphy, Center for Excellence in Life and Palaeoenvironment Nanjing Institute of Geology and Paleontology, Chinese Academy of Sciences Nanjing China

4. Nanjing College University of Chinese Academy of Sciences Nanjing China

Abstract

AbstractUnder rapid radiation, the earliest components of evolutionary divergence are often difficult to resolve, which were always driven by the characteristics of taxa and the limitations of alternative analytical methods. The origin and radiation of the alpine butterfly Parnassius, a high‐altitude mountainous insect group, can be attributed to the uplift of the Qinghai‐Tibet Plateau. Despite detailed phylogenetic analyses of the genus, deep phylogenetic relationships among the major subgenera remain recalcitrant. In this study, 102 individuals from 10 representative Parnassius species were sampled to resolve the phylogenetic relationships among subgenera based on nuclear and mitochondrial genome datasets. Gene‐tree/species‐tree conflicts were detected by concatenation and multispecies coalescent (MSC) approaches. We recovered a well‐supported species tree, despite these conflicts, and detected considerable phylogenetic discordance among genomic regions. The main explanation for the topological discordance among subgenera was extensive incomplete lineage sorting (ILS), whereas introgression events were not prominent. The origin and explosive radiation of Parnassius (i.e., rapid succession of speciation events) in the late Miocene associated with environmental events on the plateau led to short internal branches, thereby increasing ILS and topological conflicts, especially among closely related subgenera. Our results also suggested that MSC approaches (SNP and AFLP Package for Phylogenetic analysis [SNAPP] and SVDquartets) are accurate and superior to the concatenation approach; in particular, SVDquartets can explicitly accommodate gene‐tree/species‐tree conflicts caused by high ILS and demonstrate strong robustness. Finally, we explored the phylogenomic data by testing multiple sources of phylogenomic conflict to clarify the strengths and limitations of different approaches, while considering phylogenetic signal variation in mitochondrial loci. We anticipate that the phylogeny described here will be the backbone of future evolutionary studies of the genus and will provide insight into phylogenetic discordance due to rapid radiation.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Insect Science,Ecology, Evolution, Behavior and Systematics

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