Anca Iulia-Andra, Lumini Erica, Ghignone Stefano, Salvioli Alessandra, Bianciotto Valeria, Bonfante Paola
Università degli Studi di Torino, Dip. Biologia Vegetale, V. le P.A. Mattioli 25, I-10125, Torino, Italy.
Mol Plant Microbe Interact. 2009 Mar;22(3):302-10. doi: 10.1094/MPMI-22-3-0302.
The arbuscular mycorrhizal fungus (AM) Gigaspora margarita consistently hosts bacteria, named 'Candidatus Glomeribacter gigasporarum,' inside its cytoplasm. Endobacteria have a positive impact on fungal fitness during the presymbiotic phase, prior to plant roots colonization. We tested the hypothesis that the endobacterium and its cell divisions depend on fungal metabolism, mirroring also the events of the fungal life cycle which are influenced by plant signals. We first cloned a fragment of ftsZ, a marker gene for bacterial division, and then analyzed its expression along the different stages of fungus development. The bacterial gene transcripts showed the highest values when the fungus was associated to the plant, and peaked in the extraradical mycelium. Strigolactones, which are known to stimulate the AM fungal growth, caused a significant transcript increase in the germinated spores in the absence of the plant. The quantitative real-time reverse-transcription polymerase chain reaction data were strengthened by the quantification of the dividing bacteria, which were increasing in number in germinating spores after the strigolactone treatment. The bioactive molecule alone did not cause any change in the number of bacteria after their isolation from the fungus, thus showing that the strigolactone alone cannot confer free-living capacities to the bacterium.
丛枝菌根真菌(AM)珠状巨孢囊霉在其细胞质中始终携带着一种名为“类球囊菌属巨孢囊霉(Candidatus Glomeribacter gigasporarum)”的细菌。在植物根系定殖之前的共生前期,内生细菌对真菌的适应性有积极影响。我们检验了这样一个假设,即内生细菌及其细胞分裂依赖于真菌代谢,这也反映了受植物信号影响的真菌生命周期事件。我们首先克隆了ftsZ(一种细菌分裂的标记基因)的一个片段,然后分析了其在真菌发育不同阶段的表达情况。当真菌与植物共生时,细菌基因转录本的值最高,且在根外菌丝体中达到峰值。已知能刺激AM真菌生长的独脚金内酯,在没有植物的情况下,会使萌发孢子中的转录本显著增加。通过对分裂细菌的定量分析,进一步证实了定量实时逆转录聚合酶链反应数据,在独脚金内酯处理后,萌发孢子中的细菌数量在增加。单独的生物活性分子在从真菌中分离出来后,不会使细菌数量发生任何变化,因此表明单独的独脚金内酯不能赋予细菌自由生活的能力。