Molekulare Mikrobiologie, Institut für Allgemeine Mikrobiologie, Kiel University, Kiel, Germany.
Marine Ecology, GEOMAR Helmholtz Centre for Ocean Research Kiel, Kiel, Germany.
mBio. 2020 Nov 17;11(6):e02336-20. doi: 10.1128/mBio.02336-20.
All multicellular organisms are associated with microbial communities, ultimately forming a metaorganism. Several studies conducted on well-established model organisms point to immunological, metabolic, and behavioral benefits of the associated microbiota for the host. Consequently, a microbiome can influence the physiology of a host; moreover, microbial community shifts can affect host health and fitness. The present study aimed to evaluate the significance and functional role of the native microbiota for life cycle transitions and fitness of the cnidarian moon jellyfish A comprehensive host fitness experiment was conducted studying the polyp life stage and integrating 12 combinations of treatments with microbiota modification (sterile conditions, foreign food bacteria, and potential pathogens). Asexual reproduction, e.g., generation of daughter polyps, and the formation and release of ephyrae were highly affected in the absence of the native microbiota, ultimately resulting in a halt of strobilation and ephyra release. Assessment of further fitness traits showed that health, growth, and feeding rate were decreased in the absence and upon community changes of the native microbiota, e.g., when challenged with selected bacteria. Moreover, changes in microbial community patterns were detected by 16S rRNA amplicon sequencing during the course of the experiment. This demonstrated that six operational taxonomic units (OTUs) significantly correlated and explained up to 97% of fitness data variability, strongly supporting the association of impaired fitness with the absence/presence of specific bacteria. Conclusively, our study provides new insights into the importance and function of the microbiome for asexual reproduction, health, and fitness of the basal metazoan All multicellular organisms are associated with a diverse and specific community of microorganisms; consequently, the microbiome is of fundamental importance for health and fitness of the multicellular host. However, studies on microbiome contribution to host fitness are in their infancy, in particular, for less well-established hosts such as the moon jellyfish Here, we studied the impact of the native microbiome on the asexual reproduction and on further fitness traits (health, growth, and feeding) of the basal metazoan due to induced changes in its microbiome. We observed significant impact on all fitness traits analyzed, in particular, in the absence of the protective microbial shield and when challenged with marine potentially pathogenic bacterial isolates. Notable is the identified crucial importance of the native microbiome for the generation of offspring, consequently affecting life cycle decisions. Thus, we conclude that the microbiome is essential for the maintenance of a healthy metaorganism.
所有多细胞生物都与微生物群落相关联,最终形成一个超个体。几项在成熟模型生物上进行的研究表明,相关微生物群落对宿主具有免疫、代谢和行为上的益处。因此,微生物组可以影响宿主的生理机能;此外,微生物群落的变化会影响宿主的健康和适应性。本研究旨在评估原生微生物群落对刺胞动物海月水母生命周期转变和适应性的重要性和功能作用。进行了一项全面的宿主适应性实验,研究水螅体阶段,并整合了 12 种微生物群落修饰处理组合(无菌条件、外来食物细菌和潜在病原体)。在缺乏原生微生物群落的情况下,无性繁殖,例如产生子水螅体,以及水螅体的形成和释放,受到高度影响,最终导致水螅体的停止和水螅体的释放。进一步评估适应性特征表明,在缺乏和改变原生微生物群落时,例如受到选定细菌的挑战时,健康、生长和摄食率都会降低。此外,在实验过程中通过 16S rRNA 扩增子测序检测到微生物群落模式的变化。这表明,六个操作分类单元(OTUs)与适应性数据的变异性高度相关,解释了高达 97%的变异性,强烈支持与特定细菌的缺失/存在相关的适应性受损。总之,我们的研究为微生物组对无脊椎动物的无性繁殖、健康和适应性的重要性和功能提供了新的见解。所有多细胞生物都与多样化和特定的微生物群落相关联;因此,微生物组对多细胞宿主的健康和适应性至关重要。然而,关于微生物组对宿主适应性的贡献的研究还处于起步阶段,特别是对于像海月水母这样不太成熟的宿主。在这里,我们研究了原生微生物组对基础后生动物无性繁殖和进一步的适应性特征(健康、生长和摄食)的影响,因为其微生物组发生了变化。我们观察到对所有分析的适应性特征都有显著影响,特别是在缺乏保护微生物屏蔽和受到海洋潜在致病性细菌分离物挑战时。值得注意的是,原生微生物组对于后代产生的至关重要性,从而影响生命周期决策。因此,我们得出结论,微生物组对于维持健康的超个体至关重要。