生物多样性

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银缕梅种群遗传结构解析与迁地保护技术体系构建

赵翊硕1, 2, 马雅真1, 王天瑞1, 2, 周琦3, 凌峰4, 杨启池4, 李因刚3, 邱英雄1*   

  1. 1. 中国科学院武汉植物园,武汉 430074; 2. 中国科学院大学,北京 100049; 3. 浙江省林业科学研究院,杭州 310023; 4. 中国科学院精密测量科学与技术创新研究院,武汉 430061
  • 收稿日期:2026-06-05 修回日期:2026-07-31 接受日期:2026-08-20
  • 通讯作者: 邱英雄

Resolving population genetic structure and developing an ex situ conservation framework for Parrotia subaequalis

Yishuo Zhao1,2, Yazhen Ma1, Tianrui Wang1,2, Qi Zhou3, Feng Ling4, Qichi Yang4, Yingang Li3, Yingxiong Qiu1*   

  1. 1 Wuhan Botanical Garden, Chinese Academy of Sciences, Wuhan 430074, China 

    2 University of Chinese Academy of Sciences, Beijing 100049, China 

    3 Zhejiang Academy of Forestry, Hangzhou 310023, China 

    4 Innovation Academy for Precision Measurement Science and Technology, Chinese Academy of Sciences, Wuhan 430061, China

  • Received:2026-06-05 Revised:2026-07-31 Accepted:2026-08-20
  • Contact: Yingxiong Qiu

摘要: 迁地保护是就地保护的重要补充,但当前迁地保护实践对遗传代表性及完整性的关注仍显不足,难以实现迁地种群的长期自我维持与物种原真性的有效保存。本研究以我国特有的第三纪孑遗植物银缕梅(Parrotia subaequalis)为对象,整合资源调查、全基因组重测序、群落系统发育分析、生态位模拟、人工扩繁试验等,解析了银缕梅的遗传谱系与种群动态历史,构建了科学化迁地保护技术体系。群体基因组学分析将银缕梅划分为4个遗传谱系(AD)。系统发育与遗传组成分析显示,银缕梅遗传多样性的现代分布中心位于浙皖交界的东部山地(天目山脉至天台山脉),该区域包含全部4个遗传谱系;而西部大别山脉种群仅由遗传组成单一的A谱系构成,且个体基因型呈近期分化特征。上述分布格局与末次冰期后银缕梅自东部微避难所向西拓殖的奠基者效应预期一致。生态位模拟进一步证实谱系A在全新世自东向西的范围扩张。种群动态历史重建显示所有谱系自约0.3百万年前(Ma)起持续衰退,表明冰期避难所隔离与冰后期扩张共同塑造了银缕梅当代遗传格局。群落系统发育分析揭示环境过滤是群落构建主导机制,以400800 m海拔区间过滤强度最大,据此筛选出19种适宜伴生物种,为迁地保护点选址与人工群落物种配置提供了科学依据;迁地栽培试验证实该海拔区间生长适宜性最优(地径、苗高最大值分别出现在565 m和835 m)。通过正交试验优化了容器育苗方案,繁育实生容器苗11,436株,建成覆盖4个遗传谱系的2个迁地保护基地。本研究构建的涵盖遗传结构解析、群落构建、人工扩繁及动态监测的一体化迁地保护技术体系,可为其他孑遗木本植物保护提供方法参考。

关键词: 银缕梅, 迁地保护, 全基因组重测序, 遗传谱系, 群落系统发育, 第三纪孑遗植物

Abstract

Aim: Ex situ conservation is an important complement to in situ conservation, yet current ex situ practices often pay insufficient attention to maintaining genetic representativeness and integrity, limiting the long-term persistence and authenticity of ex situ populations. We investigated the genetic lineages and demographic history of the Chinese endemic Tertiary relict tree Parrotia subaequalis and developed an integrated framework for its ex situ conservation. 

Methods: We integrated field resource surveys, whole-genome resequencing, community phylogenetic analyses, ecological niche modeling, and artificial propagation experiments to characterize genetic diversity and evolutionary history, identify suitable habitats and companion species for ex situ conservation, and optimize propagation protocols. 

Results: Population genomic analyses identified four distinct genetic lineages (AD). Phylogenetic and genetic composition analyses revealed that the contemporary center of genetic diversity in P. subaequalis is located in the eastern mountainous region spanning the Zhejiang-Anhui border (from the Tianmu Mountains to the Tiantai Mountains), where all four genetic lineages are represented. In contrast, populations in the western Dabie Mountains consist exclusively of the genetically homogeneous lineage A, with individual genotypes showing signatures of recent differentiation. This distribution pattern is consistent with the founder effect associated with the postglacial westward expansion of P. subaequalis from eastern microrefugia. Ecological niche modeling further supported a Holocene range expansion of lineage A from east to west. Demographic reconstruction revealed a continuous decline in effective population size across all lineages since approximately 0.3 million years ago (Ma), indicating that glacial isolation in microrefugia followed by postglacial dispersal jointly shaped the contemporary genetic structure of the species. Community phylogenetic analyses identified environmental filtering as the dominant mechanism of community assembly, with the strongest filtering occurring between 400 and 800 m elevation. Based on these results, we identified 19 suitable companion species to guide ex situ site selection and community design. Ex situ cultivation trials further demonstrated that this elevational range provided the most suitable conditions for seedling growth, with maximum stem diameter and seedling height recorded at 565 and 835 m, respectively. Orthogonal experiments optimized containerized seedling production, resulting in the propagation of 11,436 container-grown seedlings and the establishment of two ex situ conservation populations representing all four genetic lineages. 

Conclusion: By integrating genetic structure analyses, community assembly, artificial propagation, and long-term monitoring, we established a comprehensive ex situ conservation system for P. subaequalis. This integrated framework preserves genetic diversity and evolutionary potential while facilitating sustainable population establishment, and provides a transferable model for the conservation of other relict and threatened woody plants.

Key words: Parrotia subaequalis, ex situ conservation, whole-genome resequencing, genetic lineage, community phylogeny, Tertiary relict plant