Institute for Environmental Studies, Charles University in Prague, Benátská 2, Prague, CZ-12801, Czech Republic; Institute of Soil Biology and SoWa Research Infrastructure, Biology Centre, Czech Academy of Sciences, Na Sádkách 7, České Budějovice, CZ-37005, Czech Republic.
Institute for Environmental Studies, Charles University in Prague, Benátská 2, Prague, CZ-12801, Czech Republic; Institute of Soil Biology and SoWa Research Infrastructure, Biology Centre, Czech Academy of Sciences, Na Sádkách 7, České Budějovice, CZ-37005, Czech Republic.
J Trace Elem Med Biol. 2020 Dec;62:126594. doi: 10.1016/j.jtemb.2020.126594. Epub 2020 Jun 20.
Arbuscular mycorrhizal fungi (AMF) have an important role in plant-microbe interactions. But, there are few studies in which the combined effect of AMF with a stress factor, such as the presence of a metal, on plant species were assessed. This study investigated the effect of arbuscular mycorrhizal (AM) fungus Rhizophagus intraradices and other soil microbial groups in the presence of copper on three plant species in a microcosm experiment.
Two grass species Poa compressa and Festuca rubra and one herb species Centaurea jacea were selected as model plants in a pot-design test in which soils were artificially contaminated with copper. Treatments were bacteria (control), saprophytic fungi, protists, and a combined treatment of saprophytic fungi and protists, all in the presence or absence of the AM fungal species. After sixty days, plants were harvested and the biomass of grass and herb species and microbial respiration were measured.
The results showed almost equal above- and belowground plant biomass and microbial respiration in the treatments in the presence or absence of R. intraradices. The herb species C. jecea responded significantly to the soil inoculation with AM fungus, while grass species showed inconsistent patterns. Significant effect of AMF and copper and their interactions was observed on plant biomass when comparing contaminated vs. non-contaminated soils.
Strong effect of AMF on the biomass of herb species and slight changes in plant growth with the presence of this fungal species in copper-spiked test soils indicates the importance of mycorrhizal fungi compared to other soil microorganisms in our experimental microcosms.
丛枝菌根真菌(AMF)在植物-微生物相互作用中具有重要作用。但是,很少有研究评估 AMF 与压力因素(如金属存在)的组合效应对植物物种的影响。本研究在微宇宙实验中评估了丛枝菌根(AM)真菌 Rhizophagus intraradices 和其他土壤微生物群在铜存在下对三种植物物种的影响。
选择两种草类 Poa compressa 和 Festuca rubra 以及一种草本植物 Centaurea jacea 作为模型植物,在盆栽设计试验中,土壤被人工污染铜。处理包括细菌(对照)、腐生真菌、原生动物以及腐生真菌和原生动物的组合处理,均存在或不存在 AM 真菌物种。六十天后,收获植物,测量草本和草本植物的生物量和微生物呼吸。
结果表明,在存在或不存在 R. intraradices 的处理中,地上和地下植物生物量和微生物呼吸几乎相等。草本植物 C. jecea 对土壤接种 AM 真菌有明显反应,而草类则表现出不一致的模式。当比较污染和未污染土壤时,AMF 和铜及其相互作用对植物生物量有显著影响。
AMF 对草本植物生物量的强烈影响以及在铜污染测试土壤中存在这种真菌物种时植物生长的轻微变化表明,与其他土壤微生物相比,菌根真菌在我们的实验微宇宙中更为重要。