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Data from: Genotypic covariance between the performance of a resident species and community assembly in the field

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DataONE2017-10-17 更新2024-06-26 收录
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1.Genetic variation in resident species can influence the assembly and dynamics of communities, but the potential for these genetic effects to persist across generations is largely unresolved. In principle, persistent, directional changes in communities are only predicted when community properties covary genetically with the fitness of resident species. 2.Estimates of genetic covariance between the fitness of a resident species and its community are therefore necessary to ‘close the eco-evolutionary loop’ in studies of community genetics, but such estimates are rare. Emulating community genetics experiments in plants, we used clonal replicates of 21 genotypes of a resident species (the encrusting bryozoan, Hippopodina) to investigate the magnitude of genotypic variance contributing to assembly of a marine benthic community. 3.Genotypes explained up to 35% of variation in community assembly. Critically, the performance of Hippopodina genotypes covaried both with the evenness of communities, and with the abundances of some individual species, representing an indirect genetic effect that creates the potential for multigenerational interactions between Hippopodina and co-existing species. Our results suggest that different genotypes will associate with different community members consistently across generations, and such non-random associations can give rise to specialization. Further interactions between species other than Hippopodina itself may also be altered by effects of genetic variation in the focal species. 4.Furthermore, species in the community other than Hippopodina itself will interact more commonly in the presence of some genotypes over others. 5.Our results support the potential for genetic variation in one species to have deterministic effects on the dynamics of ecological communities.

1. 定居物种的遗传变异(genetic variation)可影响群落组装(community assembly)与群落动态(community dynamics),但这类遗传效应能否跨世代持续存在,目前仍未得到充分解析。理论上,仅当群落属性与定居物种的适合度(fitness)存在遗传共变关系时,方可预测群落出现持续的方向性变化。 2. 因此,若要在群落遗传学(community genetics)研究中“闭合生态进化闭环(eco-evolutionary loop)”,需估算定居物种适合度与其群落间的遗传协方差(genetic covariance),但此类估算极为稀缺。本研究效仿植物群落遗传学实验,利用某定居物种——包被型苔藓虫(encrusting bryozoan,Hippopodina)——的21个基因型的克隆复本(clonal replicates),探究驱动海洋底栖群落(marine benthic community)组装的基因型方差(genotypic variance)规模。 3. 基因型可解释群落组装变异的最高达35%。尤为关键的是,Hippopodina的基因型表现不仅与群落均匀度(community evenness)呈遗传共变,还与部分物种的丰度存在遗传共变,这代表一种间接遗传效应(indirect genetic effect),为Hippopodina与共存物种(co-existing species)间的跨世代互作(multigenerational interactions)创造了潜在可能。本研究结果显示,不同基因型会在世代间稳定地与不同群落成员形成关联,这类非随机关联(non-random associations)可催生生态位特化(specialization)。此外,目标物种(focal species)的遗传变异效应,还可能改变Hippopodina以外其他物种间的互作关系。 4. 此外,相较于其他基因型,当群落环境中存在部分特定基因型时,Hippopodina以外的物种间互作会更为频繁。 5. 本研究结果证实,单一物种的遗传变异有可能对生态群落动态产生决定性影响。

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2017-10-17
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