Zhu Pengcheng, Yang Shuren, Wu Yuxin, Ru Yuning, Yu Xiaona, Wang Lushan, Guo Weihua
Key Laboratory of Ecological Prewarning, Protection and Restoration of Bohai Sea, School of Life Sciences, Ministry of Natural Resources, Shandong University, Qingdao, China.
State Key Laboratory of Microbial Technology, Shandong University, Qingdao, China.
Front Microbiol. 2022 Jul 19;13:858125. doi: 10.3389/fmicb.2022.858125. eCollection 2022.
Soil microorganisms play vital roles in regulating biogeochemical processes. The composition and function of soil microbial community have been well studied, but little is known about the responses of bacterial and fungal communities to different habitats of the same plant, especially the inter-kingdom co-occurrence pattern including bacteria and fungi. Herein, we used high-throughput sequencing to investigate the bacterial and fungal communities of five habitats in the Yellow River Delta and constructed their inter-kingdom interaction network by network analysis. The results showed that richness did not differ significantly among habitats for either the bacterial or fungal communities. The distribution of soil bacterial community was significantly affected by soil physicochemical properties, whereas that of the fungal community was not. The main functions of the bacterial and fungal communities were to participate in the degradation of organic matter and element cycling, both of which were significantly affected by soil physicochemical properties. Network analysis revealed that bacteria and fungi participated in the formation of networks through positive interactions; the role of intra-kingdom interactions were more important than inter-kingdom interactions. In addition, rare species acted as keystones played a critical role in maintaining the network structure, while likely played an important role in maintaining the network topological properties. Our findings provided insights into the inter-kingdom microbial co-occurrence network and response of the soil microbial community composition and function to different habitats in coastal wetlands, which will deepen our insights into microbial community assembly in coastal wetlands.
土壤微生物在调节生物地球化学过程中发挥着至关重要的作用。土壤微生物群落的组成和功能已得到充分研究,但对于同一植物不同生境下细菌和真菌群落的响应,尤其是细菌和真菌之间的跨界共存模式,人们了解甚少。在此,我们利用高通量测序技术研究了黄河三角洲五个生境中的细菌和真菌群落,并通过网络分析构建了它们的跨界相互作用网络。结果表明,细菌群落和真菌群落的丰富度在不同生境间没有显著差异。土壤细菌群落的分布受土壤理化性质的显著影响,而真菌群落的分布则不受其影响。细菌和真菌群落的主要功能是参与有机物降解和元素循环,二者均受土壤理化性质的显著影响。网络分析表明,细菌和真菌通过正相互作用参与网络的形成;同界相互作用的作用比跨界相互作用更为重要。此外,稀有物种作为关键物种在维持网络结构中发挥着关键作用,同时可能在维持网络拓扑性质方面发挥重要作用。我们的研究结果为沿海湿地跨界微生物共存网络以及土壤微生物群落组成和功能对不同生境的响应提供了见解,这将加深我们对沿海湿地微生物群落组装的理解。