
Biodiv Sci ›› 2026, Vol. 34 ›› Issue (6): 26152. DOI: 10.17520/biods.2026152 cstr: 32101.14.biods.2026152
• Original Papers: Genetic Diversity • Previous Articles Next Articles
Xing Kong1,2,3(
), Xiangqian Sun1,2,3(
), Benqin Zhao1,2,3(
), Xun Gong2(
), Jie Cai1(
), Jie Liu1,2,*(
)(
)
Received:2026-04-25
Accepted:2026-05-15
Online:2026-06-20
Published:2026-07-30
Contact:
*E-mail: liujie@mail.kib.ac.cn
Supported by:Xing Kong, Xiangqian Sun, Benqin Zhao, Xun Gong, Jie Cai, Jie Liu. Origin and dispersal history of Tibetan peach in the Third Pole[J]. Biodiv Sci, 2026, 34(6): 26152.
Fig. 1 Sample sites and occurrence points of Prunus mira. Occurrence data were obtained from the Plant Photo Bank of China (PPBC, http://ppbc.iplant.cn/), Chinese Virtual Herbarium (CVH, http://www.cvh.ac.cn/), Global Biodiversity Information Facility (GBIF, https://www.gbif.org/), and relevant literature.
Fig. 2 Phylogenetic relationships and population structure of Prunus mira as revealed by plastid genome data, different colors represent three clades (green represents Clade A; orange represents Clade B; red represents Clade C). (a) Haplotype network generated using the Templeton Crandall Singh (TCS) approach. Circle sizes reflect the relative frequencies of haplotypes, and the numbers of mutational steps between pairs of haplotypes are indicated along the connecting lines. (b) Maximum likelihood (ML) and Bayesian Inference (BI) phylogenetic tree. Branches of the three major clades are color-coded, with bootstrap values (BS > 95%) and posterior probabilities (PP > 0.95) shown at the corresponding nodes. (c) Principal component analysis (PCA) plot of haplotypes, illustrating genetic differentiation among the three clades. (d) Bayesian population assignment results from STRUCTURE at K = 2-4, where each individual is represented as a vertical bar partitioned into K colored segments representing membership coefficients. Outgroups: P. ferganensis, Prunus ferganensis; P. persica, Prunus persica; P. kansuensis, Prunus kansuensis; P. davidiana, Prunus davidiana; P. dulcis, Prunus dulcis; R. cymosa, Rosa cymosa.
Fig. 3 Geographical distribution of haplotypes of Prunus mira based on plastid genome data. The figure illustrates the spatial distribution patterns of haplotypes across species (a) and different clades, including Clade A (b), Clade B (c) and Clade C (d). Different colors within each pie chart represent distinct haplotype types, and the area of each pie chart is proportional to the sample size of the corresponding haplotype. The bars adjacent to each pie chart indicate the types and numbers of private haplotypes present in each population. Blue lines represent rivers. The map marks mountain ranges that act as a barrier according to Liu et al. (2022).
Fig. 4 Spatial interpolation of genetic diversity of Prunus mira using the inverse distance weighting (IDW) method based on different datasets. (a) and (b) present the haplotype diversity (Hd) and nucleotide diversity (π) of each population based on plastid genome data, respectively. (c) and (d) show the spatial distribution of Hd and π based on nuclear ribosomal DNA (nrDNA) sequences, respectively. Diversity values are represented by a color ramp ranging from blue (low) to red (high).
Fig. 5 Population demography and divergence times of different clades of Prunus mira based on plastid genome data. (a) Bayesian skyline plots for different clades. Solid lines represent the median estimates of effective population sizes, with light-shaded areas indicating the 95% highest posterior density intervals (HPD). The horizontal axis represents time, and the vertical axis represents the effective population size at different periods. Different colors denote distinct clades (green represents Clade A; orange represents Clade B; red represents Clade C). (b) Divergence time tree based on haplotypes. Numbers above nodes indicate divergence times (Ma), and blue bars at nodes and values in brackets represent the 95% HPD. The gray shaded areas represent the outgroups used, including species of Prunus (P.) and Rosa cymose (R. cymose), Rubus pedunculosus (R. pedunculosus), Dryas octopetala (D. octopetala), Boehmeria umbrosa (B. umbrosa), Ficus racemosa (F. racemosa), Malus pumila (M. pumila), Pyrus ussuriensis (P. ussuriensis), and Crataegus hupehensis (C. hupehensis). Black circles with numbers denote fossil calibration points. Pli, Pliocene; Ple, Pleistocene.
Fig. 6 Potential distribution areas of different clades of Prunus mira under different climatic periods. Each column represents a clade (Clade A, B, and C), and each row represents a climatic period (LGM, Contemporary, and Future). The color ramp from dark to light represents habitat suitability from high to low. LGM, Last Glacial Maximum; Contemporary, Contemporary (1970‒2000) climate scenarios; Future, Future (2081-2100) RCP8.5 high-emission scenario.
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