The Cathaya argyrophylla Genome Reveals the Evolutionary Trade-offs of a Living Fossil

Fuente: arXiv
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Autores principales: Wang, Yun, Xie, Peng, Fan, Shaogang, Zhou, Zhibo, Zhao, Wenyan, Xiang, Lixuan, Zhang, Siqin, Sun, Lei, Mo, Ping, Jiang, Xiaolong, Long, Binbin, Sun, Senwei, Deng, Aihua, Hu, Haoliang, Huang, Kerui
Formato: Preprint
Publicado: 2026
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author Wang, Yun
Xie, Peng
Fan, Shaogang
Zhou, Zhibo
Zhao, Wenyan
Xiang, Lixuan
Zhang, Siqin
Sun, Lei
Mo, Ping
Jiang, Xiaolong
Long, Binbin
Sun, Senwei
Deng, Aihua
Hu, Haoliang
Huang, Kerui
author_facet Wang, Yun
Xie, Peng
Fan, Shaogang
Zhou, Zhibo
Zhao, Wenyan
Xiang, Lixuan
Zhang, Siqin
Sun, Lei
Mo, Ping
Jiang, Xiaolong
Long, Binbin
Sun, Senwei
Deng, Aihua
Hu, Haoliang
Huang, Kerui
contents Cathaya argyrophylla is an endangered paleoendemic gymnosperm characterized by restricted ecological adaptability and high pathogen susceptibility. To elucidate its genomic architecture and evolutionary history, a de novo chromosome-level genome assembly was constructed using PacBio High-Fidelity long reads and Hi-C scaffolding. The resulting 22.73 Gb assembly resolves into 12 pseudochromosomes, demonstrating genome gigantism driven primarily by a 72.92 percent repeat sequence content and extensive intron expansion. Phylogenomic analysis using single-copy orthologs identifies C. argyrophylla as a sister lineage to the Pinus clade, with an estimated divergence time of 102.8 million years ago. Analysis of gene family dynamics reveals significant expansions in pathways related to membrane lipid metabolism, transmembrane transport, and translation machinery, indicating specific molecular adaptations for cellular homeostasis in resource-limited environments. Conversely, the genome exhibits massive contractions in endogenous defense networks, including plant-pathogen interactions, brassinosteroid signaling, and DNA repair mechanisms. This distinct genomic reduction correlates directly with the slow growth rate and weak innate immunity observed in the species, while the expanded transmembrane transport networks suggest an obligate physiological reliance on symbiotic microbiomes for survival. Ultimately, this reference genome establishes a critical molecular resource for future conservation and breeding programs.
format Preprint
id arxiv_https___arxiv_org_abs_2604_22440
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle The Cathaya argyrophylla Genome Reveals the Evolutionary Trade-offs of a Living Fossil
Wang, Yun
Xie, Peng
Fan, Shaogang
Zhou, Zhibo
Zhao, Wenyan
Xiang, Lixuan
Zhang, Siqin
Sun, Lei
Mo, Ping
Jiang, Xiaolong
Long, Binbin
Sun, Senwei
Deng, Aihua
Hu, Haoliang
Huang, Kerui
Genomics
Cathaya argyrophylla is an endangered paleoendemic gymnosperm characterized by restricted ecological adaptability and high pathogen susceptibility. To elucidate its genomic architecture and evolutionary history, a de novo chromosome-level genome assembly was constructed using PacBio High-Fidelity long reads and Hi-C scaffolding. The resulting 22.73 Gb assembly resolves into 12 pseudochromosomes, demonstrating genome gigantism driven primarily by a 72.92 percent repeat sequence content and extensive intron expansion. Phylogenomic analysis using single-copy orthologs identifies C. argyrophylla as a sister lineage to the Pinus clade, with an estimated divergence time of 102.8 million years ago. Analysis of gene family dynamics reveals significant expansions in pathways related to membrane lipid metabolism, transmembrane transport, and translation machinery, indicating specific molecular adaptations for cellular homeostasis in resource-limited environments. Conversely, the genome exhibits massive contractions in endogenous defense networks, including plant-pathogen interactions, brassinosteroid signaling, and DNA repair mechanisms. This distinct genomic reduction correlates directly with the slow growth rate and weak innate immunity observed in the species, while the expanded transmembrane transport networks suggest an obligate physiological reliance on symbiotic microbiomes for survival. Ultimately, this reference genome establishes a critical molecular resource for future conservation and breeding programs.
title The Cathaya argyrophylla Genome Reveals the Evolutionary Trade-offs of a Living Fossil
topic Genomics
url https://arxiv.org/abs/2604.22440