J Syst Evol

• Research Article •    

Integrative phylogenomics and morphology reveal the evolution and biogeography of Encephalartos (Zamiaceae)

Sadaf Habib1,2, Anders Lindstrom3, James A.R. Clugston4,5, Yiqing Gong2, Shanshan Dong2, Yunhua Wang2, Dennis Stevenson6, Chen Feng1*, Shouzhou Zhang2*   

  1. 1Jiangxi Provincial Key Laboratory of Ex Situ Plant Conservation and Utilization, Lushan Botanical Garden, Chinese Academy of Sciences, Jiujiang 332900, China. 

    2Key Laboratory of Southern Subtropical Plant Diversity, Fairy Lake Botanical Garden, Shenzhen & Chinese Academy of Sciences, Shenzhen 518004, China. 

    3Global Biodiversity Conservancy 144/124 Moo 3, Soi Bua Thong, Bangsalae, Sattahip, Chonburi 20250, Thailand.

    4Hawkesbury Institute for the Environment, Western Sydney University, Penrith, NSW 2751, Australia. 

    5Montgomery Botanical Center, Coral Gables, FL 33156, USA. 

    6New York Botanical Garden, Bronx, NY 10458, USA. Running Title: Encephalartos phylogeny, biogeography and taxonomic evolution 

    *Authors for correspondence. Shouzhou Zhang. Email: shouzhouz@szbg.ac.cn; Chen Feng. Email: fengc@lsbg.cn.

  • Received:2025-01-05 Accepted:2025-10-23
  • Supported by:
    This study was supported by the Scientific Foundation of Urban Management Bureau of Shenzhen (No. 202019 and 202409 to S.Z.) and, in part, by the Special Startup Project Grant from Lushan Botanical Garden, Jiujiang (2024ZWZX04 to S.H.). Y.G. is benefited from Propagation and Wild Reintroduction of Cycas diannanensis and C. segmentifida (2024-2025) from the National Key Wildlife and Plant Conservation Expenditure under the Central Forestry and Grassland Ecological Protection and Restoration Fund.

Abstract: Encephalartos, an African endemic genus within the Zamiaceae, comprises 65 extant species whose phylogenetic relationships have remained unresolved due to limited genetic differentiation observed in previous studies. This research reconstructs the evolutionary history of Encephalartos utilizing 3,545 single-copy nuclear genes derived from transcriptomes of 64 species. The study estimates divergence times and reconstructs ancestral states for 12 key morphological traits. Phylogenetic analyses definitively resolve eight major clades, supported by both molecular and morphological evidence. Although these clades partially align with previous morphology- and geography-based classifications, the genomic data provides novel insights, necessitating a revised infrageneric system. Biogeographic reconstructions indicate that Encephalartos originated in southern Africa during the Oligocene (~26.3 Ma), subsequently dispersing into eastern and northern Africa through the Zimbabwe-Mozambique corridor during the Miocene, followed by expansion into Central Africa. Speciation rates decreased markedly during the Pliocene and Pleistocene, potentially due to intensified climatic drying and cooling. Morphological character mapping identified ancestral traits including aerial stems, green leaves, and red sarcotesta. Specific transitions—such as subterranean stems in clade IV and bluish-green leaves in clades II and V—further substantiate clade differentiation. These findings resolve long-standing taxonomic uncertainties and emphasize the Oligocene-Miocene as a crucial period for Encephalartos diversification, influenced by Cenozoic climate change. This research establishes a robust framework for future systematic and conservation studies while demonstrating the effectiveness of transcriptome data in resolving phylogenies of slowly evolving lineages.

Key words: biogeography, Cycads, Encephalartos, phylogenetics, transcriptome data, Zamiaceae