Plant Diversity ›› 2026, Vol. 48 ›› Issue (04): 734-746.DOI: 10.1016/j.pld.2026.03.005
• Articles • Previous Articles Next Articles
Wan Hua, Caixia Hana, Li Lia, Chunhua Zangb, Runzi Lib, Hong Niea, Jianbo Niea, Yong Shia, Chen Fenga, Jie Zhanga, Yixuan Kouc, Zhiyong Zhangc, Dengmei Fanb, Danqi Lia
Received:2025-11-03
Revised:2026-03-02
Accepted:2026-03-06
Online:2026-03-12
Published:2026-07-25
Contact:
Zhiyong Zhang,E-mail:pinus-rubus@163.com;Dengmei Fan,E-mail:dmf.625@163.com;Danqi Li,E-mail:lidq@lsbg.cn
Supported by:Wan Hua, Caixia Hana, Li Lia, Chunhua Zangb, Runzi Lib, Hong Niea, Jianbo Niea, Yong Shia, Chen Fenga, Jie Zhanga, Yixuan Kouc, Zhiyong Zhangc, Dengmei Fanb, Danqi Lia
通讯作者:
Zhiyong Zhang,E-mail:pinus-rubus@163.com;Dengmei Fan,E-mail:dmf.625@163.com;Danqi Li,E-mail:lidq@lsbg.cn
基金资助:Wan Hu, Caixia Han, Li Li, Chunhua Zang, Runzi Li, Hong Nie, Jianbo Nie, Yong Shi, Chen Feng, Jie Zhang, Yixuan Kou, Zhiyong Zhang, Dengmei Fan, Danqi Li. Local adaptation sustains genetic differentiation between two varieties of Chinese walnut (Juglans cathayensis) despite extensive hybridization in subtropical China[J]. Plant Diversity, 2026, 48(04): 734-746.
Wan Hu, Caixia Han, Li Li, Chunhua Zang, Runzi Li, Hong Nie, Jianbo Nie, Yong Shi, Chen Feng, Jie Zhang, Yixuan Kou, Zhiyong Zhang, Dengmei Fan, Danqi Li. Local adaptation sustains genetic differentiation between two varieties of Chinese walnut (Juglans cathayensis) despite extensive hybridization in subtropical China[J]. Plant Diversity, 2026, 48(04): 734-746.
| [1] Abbott, R., Albach, D., Ansell, S., et al., 2013. Hybridization and speciation. J. Evol. Biol. 26, 229-246. http://doi.org/10.1111/j.1420-9101.2012.02599.x. [2] Abbott, R.J., 2017. Plant speciation across environmental gradients and the occurrence and nature of hybrid zones. J. Syst. Evol. 55, 238-258. http://doi.org/10.1111/jse.12267. [3] Alexander, D.H., Lange, K., 2011. Enhancements to the ADMIXTURE algorithm for individual ancestry estimation. BMC Bioinf. 12, 246. http://doi.org/10.1186/1471-2105-12-246. [4] An, Z., John, E.K., Warren, L.P., et al., 2001. Evolution of Asian monsoons and phased uplift of the Himalaya-Tibetan plateau since Late Miocene times. Nature 411, 62-66. http://doi.org/10.1038/35075035. [5] Ao, H., Rohling, E.J., Li, X., et al., 2023. Northern hemisphere ice sheet expansion intensified Asian aridification and the winter monsoon across the mid-Pleistocene transition. Commun. Earth Environ. 4, 36. http://doi.org/10.1038/s43247-023-00686-9. [6] Bai, W.N., Wang, W.T., Zhang, D.Y., 2014. Contrasts between the phylogeographic patterns of chloroplast and nuclear DNA highlight a role for pollen-mediated gene flow in preventing population divergence in an East Asian temperate tree. Mol. Phylogenet. Evol. 81, 37-48. http://doi.org/10.1016/j.ympev.2014.08.024. [7] Bai, W.N., Wang, W.T., Zhang, D.Y., 2016. Phylogeographic breaks within Asian butternuts indicate the existence of a phytogeographic divide in East Asia. New Phytol. 209, 1757-1772. http://doi.org/10.1111/nph.13711. [8] Barraclough, T.G., 2024. Does selection favour the maintenance of porous species boundaries? J. Evol. Biol. 37, 616-627. http://doi.org/10.1093/jeb/voae030. [9] Bartrina, I., Otto, E., Strnad, M., et al., 2011. Cytokinin regulates the activity of reproductive meristems, flower organ size, ovule formation, and thus seed yield in Arabidopsis thaliana. Plant Cell 23, 69-80. http://doi.org/10.1105/tpc.110.079079. [10] Bernard, A., Lheureux, F., Dirlewanger, E., 2018. Walnut: past and future of genetic improvement. Tree Genet. Genomes 14, 1. http://doi.org/10.1007/s11295-017-1214-0. [11] Bock, D.G., Cai, Z., Elphinstone, C., et al., 2023. Genomics of plant speciation. Plant Commun. 4, 100599. http://doi.org/10.1016/j.xplc.2023.100599. [12] Borthakur, D., Busov, V., Cao, X.H., et al., 2022. Current status and trends in forest genomics. For. Res. 2, 11. http://doi.org/10.48130/fr-2022-0011. [13] Bourgeois, Y.X.C., Warren, B.H., 2021. An overview of current population genomics methods for the analysis of whole-genome resequencing data in eukaryotes. Mol. Ecol. 30, 6036-6071. http://doi.org/10.1111/mec.15989. [14] Browning, S.R., Browning, B.L., 2007. Rapid and accurate haplotype phasing and missing-data inference for whole-genome association studies by use of localized haplotype clustering. Am. J. Hum. Genet. 81, 1084-1097. http://doi.org/10.1086/521987. [15] Campbell, Q., Bedford, J.A., Yu, Y., et al., 2025. Agricultural landscape genomics to increase crop resilience. Plant Commun. 6, 101260. http://doi.org/10.1016/j.xplc.2025.101260. [16] Cantalapiedra, C.P., Hernandez-Plaza, A., Letunic, I., et al., 2021. eggNOG-mapper v2: Functional annotation, orthology assignments, and domain prediction at the metagenomic scale. Mol. Biol. Evol. 38, 5825-5829. http://doi.org/10.1093/molbev/msab293. [17] Cao, Y., Almeida-Silva, F., Zhang, W.P., et al., 2023. Genomic insights into adaptation to karst limestone and incipient speciation in East Asian Platycarya spp. (Juglandaceae). Mol. Biol. Evol. 40, msad121. http://doi.org/10.1093/molbev/msad121. [18] Capblancq, T., Forester, B.R., 2021. Redundancy analysis: A Swiss Army Knife for landscape genomics. Methods Ecol. Evol. 12, 2298-2309. http://doi.org/10.1111/2041-210X.13722. [19] Chen, H., Patterson, N., Reich, D., 2010. Population differentiation as a test for selective sweeps. Genome Res. 20, 393-402. http://doi.org/10.1101/gr.100545.109. [20] Chen, S., Zhou, Y., Chen, Y., et al., 2018. fastp: an ultra-fast all-in-one FASTQ preprocessor. Bioinformatics 34, i884-i890. http://doi.org/10.1093/bioinformatics/bty560. [21] Coyne, J.A., Orr, H.A., 2004. Speciation. Sunderland, MA: Sinauer Associates. [22] Dai, X., Xiang, S., Zhang, Y., et al., 2024. Genomic evidence for evolutionary history and local adaptation of two endemic apricots: Prunus hongpingensis and P. zhengheensis. Hortic. Res. 11, uhad215. http://doi.org/10.1093/hr/uhad215. [23] Danecek, P., Auton, A., Abecasis, G., et al., 2011. The variant call format and VCFtools. Bioinformatics 27, 2156-2158. http://doi.org/10.1093/bioinformatics/btr330. [24] Dang, M., Zhou, H.J., Ye, H., et al., 2025. Reconstructing evolutionary history of Chinese walnuts (Juglans). J. Syst. Evol. 63, 612-628. http://doi.org/10.1111/jse.13153. [25] Dixon, P., 2003. VEGAN, a package of R functions for community ecology. J. Veg. Sci. 14, 927-930. http://doi.org/10.1111/j.1654-1103.2003.tb02228.x. [26] Doyle, J.J., Doyle, J.L., 1987. A rapid DNA isolation procedure for small quantities of fresh leaf tissue. Phytochemical Bull. 19, 11-15. [27] Excoffier, L., Dupanloup, I., Huerta-Sanchez, E., et al., 2013. Robust demographic inference from genomic and SNP data. PLoS Genet. 9, e1003905. http://doi.org/10.1371/journal.pgen.1003905. [28] Fairfax, K.C., Landeryou, T., Rabone, M., et al., 2022. Genome-wide insights into adaptive hybridisation across the Schistosoma haematobium group in West and Central Africa. PLoS Negl. Trop. Dis. 16, e0010088. http://doi.org/10.1371/journal.pntd.0010088. [29] Feng, J., Dan, X., Cui, Y., et al., 2024. Integrating evolutionary genomics of forest trees to inform future tree breeding amid rapid climate change. Plant Commun. 5, 101044. http://doi.org/10.1016/j.xplc.2024.101044. [30] Filipe, J.C., Rymer, P.D., Byrne, M., et al., 2022. Signatures of natural selection in a foundation tree along Mediterranean climatic gradients. Mol. Ecol. 31, 1735-1752. http://doi.org/10.1111/mec.16351. [31] Forester, B.R., Lasky, J.R., Wagner, H.H., et al., 2018. Comparing methods for detecting multilocus adaptation with multivariate genotype-environment associations. Mol. Ecol. 27, 2215-2233. http://doi.org/10.1111/mec.14584. [32] Fouet, C., Kamdem, C., Gamez, S., et al., 2017. Genomic insights into adaptive divergence and speciation among malaria vectors of the Anopheles nili group. Evol. Appl. 10, 897-906. http://doi.org/10.1111/eva.12492. [33] Frankel, L.E., Ane, C., 2023. Summary tests of introgression are highly sensitive to rate variation across lineages. Syst. Biol. 72, 1357-1369. https://doi.org/10.1093/sysbio/syad056. [34] Freedman, A.H., Harrigan, R.J., Zhen, Y., et al., 2023. Evidence for ecotone speciation across an African rainforest-savanna gradient. Mol. Ecol. 32, 2287-2300. http://doi.org/10.1111/mec.16867. [35] Frichot, E., Francois, O., 2015. LEA: An R package for landscape and ecological association studies. Methods Ecol. Evol. 6, 925-929. http://doi.org/10.1111/2041-210X.12382. [36] Gao, F., Ming, C., Hu, W., et al., 2016. New software for the fast estimation of population recombination rates (FastEPRR) in the genomic era. G3-Genes Genom. Genet. 6, 1563-1571. http://doi.org/10.1534/g3.116.028233. [37] Gao, J., Liu, Z.L., Zhao, W., et al., 2021. Combined genotype and phenotype analyses reveal patterns of genomic adaptation to local environments in the subtropical oak Quercus acutissima. J. Syst. Evol. 59, 541-556. http://doi.org/10.1111/jse.12568. [38] Geng, F.D., Lei, M.F., Zhang, N.Y., et al., 2024. Demographic complexity within walnut species provides insights into the heterogeneity of geological and climatic fluctuations in East Asia. J. Syst. Evol. 62, 1037-1053. http://doi.org/10.1111/jse.13061. [39] Gompert, Z., Alex Buerkle, C., 2010. introgress: a software package for mapping components of isolation in hybrids. Mol. Ecol. Resour. 10, 378-384. http://doi.org/10.1111/j.1755-0998.2009.02733.x. [40] Gompert, Z., Buerkle, C.A., 2011. Bayesian estimation of genomic clines. Mol. Ecol. 20, 2111-2127. http://doi.org/10.1111/j.1365-294X.2011.05074.x. [41] Gompert, Z., Buerkle, C.A., 2012. bgc: Software for Bayesian estimation of genomic clines. Mol. Ecol. Resour. 12, 1168-1176. http://doi.org/10.1111/1755-0998.12009.x. [42] Gompert, Z., Mandeville, E.G., Buerkle, C.A., 2017. Analysis of population genomic data from hybird zones. Annu. Rev. Ecol. Evol. S. 48, 207-229. http://doi.org/10.1146/annurev-ecolsys-110316-022652. [43] Goudet, J., 2005. hierfstat, a package for R to compute and test hierarchical F-statistics. Mol. Ecol. Notes 5, 184-186. http://doi.org/10.1111/j.1471-8286.2004.00828.x. [44] Guo, J.F., Zhao, W., Andersson, B., et al., 2023a. Genomic clines across the species boundary between a hybrid pine and its progenitor in the eastern Tibetan Plateau. Plant Commun. 4, 100574. http://doi.org/10.1016/j.xplc.2023.100574. [45] Guo, W., Yang, Y., Zhang, X., et al., 2023b. Genomic divergence between two sister Medicago species triggered by the quaternary climatic oscillations on the Qinghai-Tibet plateau and northern China. Mol. Ecol. 32, 3118-3132. http://doi.org/10.1111/mec.16925. [46] Gutenkunst, R.N., Hernandez, R.D., Williamson, S.H., et al., 2009. Inferring the joint demographic history of multiple populations from multidimensional SNP frequency data. PLoS Genet. 5, e1000695. http://doi.org/10.1371/journal.pgen.1000695. [47] Han, F., Lamichhaney, S., Grant, B.R., et al., 2017. Gene flow, ancient polymorphism, and ecological adaptation shape the genomic landscape of divergence among Darwin’s finches. Genome Res. 27, 1004-1015. http://doi.org/10.1101/gr.212522.116. [48] He, W., Zhao, S., Liu, X., et al., 2013. ReSeqTools: an integrated toolkit for large-scale next-generation sequencing based resequencing analysis. Genet. Mol. Res. 12, 6275-6283. http://doi.org/10.4238/2013.December.4.15. [49] Hewitt, G., 2000. The genetic legacy of the Quaternary ice ages. Nature 405, 907-913. http://doi.org/10.1038/35016000. [50] Hornikova, M., Lanier, H.C., Markova, S., et al., 2024. Genetic admixture drives climate adaptation in the bank vole. Commun. Biol. 7, 863. http://doi.org/10.1038/s42003-024-06549-z. [51] Hou, J., Liu, M., Yang, K., et al., 2025. Genetic variation for adaptive evolution in response to changed environments in plants. J. Integr. Plant Biol. 67, 2265-2293. http://doi.org/10.1111/jipb.13961. [52] Hu, H., Yang, Y., Li, A., et al., 2022. Genomic divergence of Stellera chamaejasme through local selection across the Qinghai-Tibet plateau and northern China. Mol. Ecol. 31, 4782-4796. http://doi.org/10.1111/mec.16622. [53] Hu, W., Qiu, Q., Liang, H., et al., 2025. Speciation and hybridization of Enkianthus quinqueflorus and E. serrulatus (Ericaceae) across a tropical-subtropical transitional zone in South China. Bot. J. Linn. Soc. 209, 173-185. http://doi.org/10.1093/botlinnean/boaf013. [54] Jiang, Q., Shen, Y., Wu, L., et al., 2025. Genomic signatures of local adaptation to precipitation and solar radiation in kiwifruit. Plant Divers. 47, 733-745. http://doi.org/10.1016/j.pld.2025.02.003. [55] Jing, Z.Y., Zhang, R.G., Liu, Y., et al., 2025. Genomic insights into the evolutionary history and conservation of the living fossil Tetracentron sinense. Plant Divers. 47, 759-771. http://doi.org/10.1016/j.pld.2025.05.008. [56] Johannesson, K., Faria, R., Le Moan, A., et al., 2024. Diverse pathways to speciation revealed by marine snails. Trends Genet. 40, 337-351. http://doi.org/10.1016/j.tig.2024.01.002. [57] Kakioka, R., Kume, M., Ishikawa, A., et al., 2021. Genetic basis for variation in the number of cephalic pores in a hybrid zone between closely related species of goby, Gymnogobius breunigii and Gymnogobius castaneus. Bot. J. Linn. Soc. 133, 143-154. http://doi.org/10.1093/biolinnean/blab033. [58] Ke, F., Vasseur, L., Yi, H., et al., 2022. Gene flow, linked selection, and divergent sorting of ancient polymorphism shape genomic divergence landscape in a group of edaphic specialists. Mol. Ecol. 31, 104-118. http://doi.org/10.1111/mec.16226. [59] Koch, M., Lemke, R., Heise, K.P., et al., 2003. Characterization of gamma-tocopherol methyltransferases from Capsicum annuum L and Arabidopsis thaliana. Eur. J. Biochem. 270, 84-92. http://doi.org/10.1046/j.1432-1033.2003.03364.x. [60] Kou, Y., Zhang, L., Fan, D., et al., 2020. Evolutionary history of a relict conifer, Pseudotaxus chienii (Taxaceae), in south-east China during the late Neogene: old lineage, young populations. Ann. Bot. 125, 105-117. http://doi.org/10.1093/aob/mcz153. [61] Kuang, K.Z., Lu, A.M., 1979. In: Kuang, K.Z., Li, P.C. (Eds.). In: Flora Reipublicae Popularis Sinicae, 21. Institutum Academiae Science Press, Beijing, pp. 6–44. [62] Letunic, I., Bork, P., 2024. Interactive Tree of Life (iTOL) v6: recent updates to the phylogenetic tree display and annotation tool. Nucleic Acids Res. 52, W78-W82. http://doi.org/10.1093/nar/gkae268. [63] Li, C., Zheng, L., Wang, X., et al., 2019. Comprehensive expression analysis of Arabidopsis GA2-oxidase genes and their functional insights. Plant Sci. 285, 1-13. http://doi.org/10.1016/j.plantsci.2019.04.023. [64] Li, D., Jiang, L., He, W., et al., 2024a. Allopatric speciation and secondary sympatry of Fagus longipetiolata and F. lucida (Fagaceae) in subtropical China. Bot. J. Linn. Soc. 205, 403-415. http://doi.org/10.1093/botlinnean/boad077. [65] Li, H., Durbin, R., 2009. Fast and accurate short read alignment with Burrows-Wheeler transform. Bioinformatics 25, 1754-1760. http://doi.org/10.1093/bioinformatics/btp324. [66] Li, H., Durbin, R., 2011. Inference of human population history from individual whole-genome sequences. Nature 475, 493-496. http://doi.org/10.1038/nature10231. [67] Li, H., Handsaker, B., Wysoker, A., et al., 2009. The sequence alignment/map format and SAMtools. Bioinformatics 25, 2078-2079. http://doi.org/10.1093/bioinformatics/btp352. [68] Li, W., Ma, M., Feng, Y., et al., 2015. EIN2-directed translational regulation of ethylene signaling in Arabidopsis. Cell 163, 670-683. http://doi.org/10.1016/j.cell.2015.09.037. [69] Li, X., Cai, K., Zhang, Q., et al., 2022. The Manchurian walnut genome: insights into juglone and lipid biosynthesis. GigaScience 11, giac057. http://doi.org/10.1093/gigascience/giac057. [70] Li, Y.R., Fritsch, P.W., Zhao, G.G., et al., 2024b. Population differentiation and dynamics of five pioneer species of Gaultheria from the secondary forests in subtropical China. BMC Plant Biol. 24, 506. http://doi.org/10.1186/s12870-024-05189-z. [71] Liu, A., Geraldes, A., Taylor, E.B., 2024. Historical and contemporary processes driving the origin and structure of an admixed population within a contact zone between subspecies of a north temperate diadromous fish. Mol. Ecol. 33, e17459. http://doi.org/10.1111/mec.17459. [72] Liu, M.L., Shang, Q.H., Cheng, Y.J., et al., 2023. Drivers of intraspecific differentiation of an alpine cold-tolerant herb, Notopterygium oviforme: Roles of isolation by distance and ecological factors. J. Syst. Evol. 61, 383-398. http://doi.org/10.1111/jse.12844. [73] Liu, X., Yu, F., 2023. New insights into the functions and regulations of MAP215/MOR1 and katanin, two conserved microtubule-associated proteins in Arabidopsis. Plant Signaling Behav. 18, 2171360. http://doi.org/10.1080/15592324.2023.2171360. [74] Lopez-Pujol, J., Zhang, F.M., Sun, H.Q., et al., 2011. Mountains of southern China as “plant museums” and “plant cradles”: evolutionary and conservation insights. Mt. Res. Dev. 31, 261-269. http://doi.org/10.1659/mrd-journal-d-11-00058.1. [75] Ma, T., Wang, K., Hu, Q., et al., 2018. Ancient polymorphisms and divergence hitchhiking contribute to genomic islands of divergence within a poplar species complex. Proc. Natl. Acad. Sci. U.S.A. 115, E236-E243. http://doi.org/10.1073/pnas.1713288114. [76] Malinsky, M., Matschiner, M., Svardal, H., 2021. Dsuite - Fast D-statistics and related admixture evidence from VCF files. Mol. Ecol. Resour. 21, 584-595. http://doi.org/10.1111/1755-0998.13265. [77] Marczak, M., Ciesla, A., Janicki, M., et al., 2025. The HECT ubiquitin-protein ligases UPL1 and UPL2 are involved in degradation of Arabidopsis thaliana ACC synthase 7. Physiol. Plant. 177, e70030. http://doi.org/10.1111/ppl.70030. [78] Martin, B.T., Chafin, T.K., Douglas, M.R., et al., 2021. ClineHelpR: an R package for genomic cline outlier detection and visualization. BMC Bioinf. 22, 501. http://doi.org/10.1186/s12859-021-04423-x. [79] McCready, K., Victoria, S., Kim, M., 2020. The importance of TOR kinase in plant development. Front. Plant Sci. 11, 16. http://doi.org/10.3389/fpls.2020.00016. [80] McKenna, A., Hanna, M., Banks, E., et al., 2010. The Genome Analysis Toolkit: A MapReduce framework for analyzing next-generation DNA sequencing data. Genome Res. 20, 1297-1303. http://doi.org/10.1101/gr.107524.110. [81] Meek, M.H., Beever, E.A., Barbosa, S., et al., 2023. Understanding local adaptation to prepare populations for climate change. BioScience 73, 36-47. http://doi.org/10.1093/biosci/biac101. [82] Meier, J.I., Sousa, V.C., Marques, D.A., et al., 2017. Demographic modelling with whole-genome data reveals parallel origin of similar Pundamilia cichlid species after hybridization. Mol. Ecol. 26, 123-141. https://doi.org/10.1111/mec.13838. [83] Menon, M., Bagley, J.C., Friedline, C.J., et al., 2018. The role of hybridization during ecological divergence of southwestern white pine (Pinus strobiformis) and limber pine (P. flexilis). Mol. Ecol. 27, 1245-1260. http://doi.org/10.1111/mec.14505. [84] Mi, X., Feng, G., Hu, Y., et al., 2021. The global significance of biodiversity science in China: an overview. Natl. Sci. Rev. 8, nwab032. http://doi.org/10.1093/nsr/nwab032. [85] Miura, K., Nozawa, R., 2014. Overexpression of SIZ1 enhances tolerance to cold and salt stresses and attenuates response to abscisic acid in Arabidopsis thaliana. Plant Biotechnol. 31, 167-172. http://doi.org/10.5511/plantbiotechnology.14.0109a. [86] Monnet, F., Postel, Z., Touzet, P., et al., 2025. Rapid establishment of species barriers in plants compared with that in animals. Science 389, 1147-1150. http://doi.org/doi:10.1126/science.adl2356. [87] Nazareno, A.G., Bemmels, J.B., Dick, C.W., et al., 2017. Minimum sample sizes for population genomics: an empirical study from an Amazonian plant species. Mol. Ecol. Resour. 17, 1136-1147. http://doi:10.1111/1755-0998.12654. [88] Nielsen, R., Wakeley, J., 2001. Distinguishing migration from isolation: a Markov Chain Monte Carlo approach. Genetics 158, 885-896. http://doi.org/10.1093/genetics/158.2.885. [89] Noor, M.A., Bennett, S.M., 2009. Islands of speciation or mirages in the desert? Examining the role of restricted recombination in maintaining species. Heredity 103, 439-444. http://doi.org/10.1038/hdy.2009.151. [90] Phillips, S.J., Anderson, R.P., Schapire, R.E., 2006. Maximum entropy modeling of species geographic distributions. Ecol. Modell. 190, 231-259. http://doi.org/10.1016/j.ecolmodel.2005.03.026. [91] Pickrell, J.K., Pritchard, J.K., 2012. Inference of population splits and mixtures from genome-wide allele frequency data. PLoS Genet. 8, e1002967. http://doi.org/10.1371/journal.pgen.1002967. [92] Price, M.N., Dehal, P.S., Arkin, A.P., 2010. FastTree 2-approximately maximum-likelihood trees for large alignments. PloS One 5, e9490. http://doi.org/10.1371/journal.pone.0009490. [93] Purcell, S., Neale, B., Todd-Brown, K., et al., 2007. PLINK: a tool set for whole-genome association and population-based linkage analyses. Am. J. Hum. Genet. 81, 559-575. http://doi.org/10.1086/519795. [94] Qian, H., Ricklefs, R.E., 2000. Large-scale processes and the Asian bias in species diversity of temperate plant. Nature 407, 180-182. http://doi.org/10.1038/35025052. [95] Qiu, Y.X., Fu, C.X., Comes, H.P., 2011. Plant molecular phylogeography in China and adjacent regions: Tracing the genetic imprints of Quaternary climate and environmental change in the world’s most diverse temperate flora. Mol. Phylogenet. Evol. 59, 225-244. http://doi.org/10.1016/j.ympev.2011.01.012. [96] Qureshi, M.K., Radeva, V., Genkov, T., et al., 2011. Isolation and characterization of Arabidopsis mutants with enhanced tolerance to oxidative stress. Acta Physiol. Plant. 33, 375-382. http://doi.org/10.1007/s11738-010-0556-0. [97] R Core Team, 2021. R: A Language and Environment for Statistical Computing. R Foundation for Statistical Computing, Vienna, Austria. [98] Ravinet, M., Faria, R., Butlin, R.K., et al., 2017. Interpreting the genomic landscape of speciation: a road map for finding barriers to gene flow. J. Evol. Biol. 30, 1450-1477. http://doi.org/10.1111/jeb.13047. [99] Rehman, H.M., Nawaz, M.A., Shah, Z.H., et al., 2018. Comparative genomic and transcriptomic analyses of Family-1 UDP glycosyltransferase in three Brassica species and Arabidopsis indicates stress-responsive regulation. Sci. Rep. 8, 1875. http://doi.org/10.1038/s41598-018-19535-3. [100] Ren, Y., Zhang, L., Yang, X., et al., 2024. Cryptic divergences and repeated hybridizations within the endangered “living fossil” dove tree (Davidia involucrata) revealed by whole genome resequencing. Plant Divers. 46, 169-180. http://doi.org/10.1016/j.pld.2024.02.004. [101] Rolan-Alvarez, E., Johannesson, K., Erlandsson, J., 1997. The maintenance of a cline in the marine snail Littorina saxatilis: the role of home site advantage and hybrid fitness. Evolution 51, 1838-1847. http://doi.org/10.1111/j.1558-5646.1997.tb05107.x. [102] Ryan, S.F., Fontaine, M.C., Scriber, J.M., et al., 2017. Patterns of divergence across the geographic and genomic landscape of a butterfly hybrid zone associated with a climatic gradient. Mol. Ecol. 26, 4725-4742. http://doi.org/10.1111/mec.14236. [103] Sang, Y., Long, Z., Dan, X., et al., 2022. Genomic insights into local adaptation and future climate-induced vulnerability of a keystone forest tree in East Asia. Nat. Commun. 13, 6541. http://doi.org/10.1038/s41467-022-34206-8. [104] Shi, Y., Zhou, B.F., Liang, Y.Y., et al., 2024. Linked selection and recombination rate generate both shared and lineage-specific genomic islands of divergence in two independent Quercus species pairs. J. Syst. Evol. 62, 505-519. http://doi.org/10.1111/jse.13008. [105] Stankowski, S., Shipilina, D., Westram, A.M., 2021. Hybrid zones. eLS 2, 1-12. http://doi.org/10.1002/9780470015902.a0029355. [106] Sun, Y., Hu, H., Huang, H., et al., 2014. Chloroplast diversity and population differentiation of Castanopsis fargesii (Fagaceae): a dominant tree species in evergreen broad-leaved forest of subtropical China. Tree Genet. Genomes 10, 1531-1539. http://doi.org/10.1007/s11295-014-0776-3. [107] Sun, Y., Surget-Groba, Y., Gao, S., 2016. Divergence maintained by climatic selection despite recurrent gene flow: a case study of Castanopsis carlesii (Fagaceae). Mol. Ecol. 25, 4580-4592. http://doi.org/10.1111/mec.13764. [108] Sung, C.J., Bell, K.L., Nice, C.C., et al., 2018. Integrating Bayesian genomic cline analyses and association mapping of morphological and ecological traits to dissect reproductive isolation and introgression in a Louisiana Iris hybrid zone. Mol. Ecol. 27, 959-978. http://doi.org/10.1111/mec.14481. [109] Terhorst, J., Kamm, J.A., Song, Y.S., 2017. Robust and scalable inference of population history from hundreds of unphased whole genomes. Nat. Genet. 49, 303-309. http://doi.org/10.1038/ng.3748. [110] Wait, D.R., Penalba, J.V., Taylor, S., et al., 2025. Suture zones, speciation, and evolution. Evolution 79, 329-341. http://doi.org/10.1093/evolut/qpae184. [111] Wang, H., Liu, C., Ren, Y., et al., 2019a. An RNA-binding protein MUG13.4 interacts with AtAGO2 to modulate salinity tolerance in Arabidopsis. Plant Sci. 288, 110218. http://doi.org/10.1016/j.plantsci.2019.110218. [112] Wang, H., Lu, H., Zhao, L., et al., 2019b. Asian monsoon rainfall variation during the Pliocene forced by global temperature change. Nat. Commun. 10, 5272. http://doi.org/10.1038/s41467-019-13338-4. [113] Wang, X.H., Kent, M., Fang, X.F., 2007. Evergreen broad-leaved forest in Eastern China: Its ecology and conservation and the importance of resprouting in forest restoration. For. Ecol. Manage. 245, 76-87. http://doi.org/10.1016/j.foreco.2007.03.043. [114] Warren, D.L., Glor, R.E., Turelli, M., 2008. Environmental niche equivalency versus conservatism: quantitative approaches to niche evolution. Evolution 62, 2868-2883. http://doi.org/10.1111/j.1558-5646.2008.00482.x. [115] Warren, D.L., Glor, R.E., Turelli, M., 2010. ENMTools: a toolbox for comparative studies of environmental niche models. Ecography 33, 607-611. http://doi.org/10.1111/j.1600-0587.2009.06142.x. [116] White, N.J., Butlin, R.K., 2021. Multidimensional divergent selection, local adaptation, and speciation. Evolution 75, 2167-2178. http://doi.org/10.1111/evo.14312. [117] Wiens, B.J., Colella, J.P., 2025. That’s not a hybrid: how to distinguish patterns of admixture and isolation by distance. Mol. Ecol. Resour. 25, e14039. http://doi.org/10.1111/1755-0998.14039. [118] Willing, E.M., Dreyer, C., van Oosterhout, C., 2012. Estimates of genetic differentiation measured by FST do not necessarily require large sample sizes when using many SNP markers. PLoS One 7, e42649. http://doi:10.1371/journal.pone.0042649. [119] Wu, T., Hu, E., Xu, S., et al., 2021. clusterProfiler 4.0: A universal enrichment tool for interpreting omics data. Innovation 2, 100141. http://doi.org/10.1016/j.xinn.2021.100141. [120] Wu, Y., Linan, A.G., Hoban, S., et al., 2024. Divergent ecological selection maintains species boundaries despite gene flow in a rare endemic tree, Quercus acerifolia (maple-leaf oak). J. Hered. 115, 575-587. http://doi.org/10.1093/jhered/esae033. [121] Xu, W.Q., Ren, C.Q., Zhang, X.Y., et al., 2024. Genome sequences and population genomics reveal climatic adaptation and genomic divergence between two closely related sweetgum species. Plant J. 118, 1372-1387. http://doi.org/10.1111/tpj.16675. [122] Yang, R., 2018. Study of temporal and spatial expression and subcellular location of AGD class I subfamily in Arabidopsis thaliana. Master Dissertations. Harbin Institute of Technology, Harbin. [123] Yang, Y., Guo, Y., 2018. Unraveling salt stress signaling in plants. J. Integr. Plant Biol. 60, 796-804. http://doi.org/10.1111/jipb.12689. [124] Yuan, S., Shi, Y., Zhou, B.F., et al., 2023. Genomic vulnerability to climate change in Quercus acutissima, a dominant tree species in East Asian deciduous forests. Mol. Ecol. 32, 1639-1655. http://doi.org/10.1111/mec.16843. [125] Yuan, X., Wang, H., Cai, J., et al., 2019. NAC transcription factors in plant immunity. Phytopathol. Res. 1, 3. http://doi.org/10.1186/s42483-018-0008-0. [126] Yuan, Y., Feng, Y., Wang, J., et al., 2025. Integrative taxonomy for species delimitation: a case study in two widely accepted yet morphologically confounding Rosa species within Sect. Pimpinellifoliae (Rosaceae). Mol. Ecol. 34, e17779. http://doi.org/10.1111/mec.17779. [127] Zhang, B.W., Xu, L.L., Li, N., et al., 2019a. Phylogenomics reveals an ancient hybrid origin of the persian walnut. Mol. Biol. Evol. 36, 2451-2461. http://doi.org/10.1093/molbev/msz112. [128] Zhang, C., Dong, S.S., Xu, J.Y., et al., 2019b. PopLDdecay: a fast and effective tool for linkage disequilibrium decay analysis based on variant call format files. Bioinformatics 35, 1786-1788. http://doi.org/10.1093/bioinformatics/bty875. [129] Zhang, W.P., Cao, L., Lin, X.R., et al., 2022. Dead-end hybridization in walnut trees revealed by large-scale genomic sequence data. Mol. Biol. Evol. 39, msab308. http://doi.org/10.1093/molbev/msab308. [130] Zhang, X., Guo, R., Shen, R., et al., 2023. The genomic and epigenetic footprint of local adaptation to variable climates in kiwifruit. Hortic. Res. 10, uhad031. http://doi.org/10.1093/hr/uhad031. [131] Zhang, X.W., Li, Y., Zhang, Q., et al., 2018. Ancient east-west divergence, recent admixture, and multiple marginal refugia shape genetic structure of a widespread oak species (Quercus acutissima) in China. Tree Genet. Genomes 14, 88. http://doi.org/10.1007/s11295-018-1302-9. [132] Zhou, Z., Han, M., Hou, M., et al., 2017. Comparative study of the leaf transcriptomes and ionoms of Juglans regia and its wild relative species Juglans cathayensis. Acta Physiol. Plant. 39, 224. http://doi.org/10.1007/s11738-017-2504-8. [133] Zhu, B.S., Zhu, Y.X., Zhang, Y.F., et al., 2022. Ethylene activates the EIN2-EIN3/EIL1 signaling pathway in tapetum and disturbs anther development in Arabidopsis. Cells 11, 3177. http://doi.org/10.3390/cells11193177. [134] Zhu, H., Tan, Y., 2024. The origin of evergreen broad-leaved forests in East Asia from the evidence of floristic elements. Plants 13, 1106. http://doi.org/10.3390/plants13081106. [135] Zhuang, X., Chung, K.P., Cui, Y., et al., 2017. ATG9 regulates autophagosome progression from the endoplasmic reticulum in Arabidopsis. Proc. Natl. Acad. Sci. U.S.A. 114, E426-E435. http://doi.org/10.1073/pnas.1616299114. [136] Zou, Y., Yang, W., Zhang, R., et al., 2024. Signatures of local adaptation and maladaptation to future climate in wild Zizania latifolia. Commun. Biol. 7, 1313. http://doi.org/10.1038/s42003-024-07036-1. |
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