Daghino Stefania, Murat Claude, De Mita Stéphane, Martino Elena, Perotto Silvia
Institute for Sustainable Plant Protection, CNR, Strada Delle Cacce 73, 10135, Turin, Italy.
Université de Lorraine, INRAE, UMR Interactions Arbres/Microorganismes, Centre INRAE Grand Est Nancy, Champenoux, France.
Mycorrhiza. 2025 Mar 21;35(2):24. doi: 10.1007/s00572-025-01191-x.
Some heavy metal tolerant fungal isolates capable of forming ericoid mycorrhiza can also confer increased metal tolerance to the host plant. One of these fungal isolates, Oidiodendron maius Zn, has been characterized and a few molecular mechanisms underlying its metal tolerant phenotype have been identified. Here, we investigate the genomic divergences between the available genome of O. maius Zn and the genomes of metal tolerant and sensitive isolates of O. maius, with the aim of identifying genes or intergenic regions possibly involved in the display of the tolerance. The resequenced genomes of 8 tolerant and 10 sensitive isolates were mapped on the reference, O. maius Zn, yielding 357 gene models from the reference that were either missing or too polymorphic to be identified in the genomes of the sensitive isolates. These regions included genes with functions related to defense mechanisms and with unknown functions. One third of the predicted gene models turned out to be highly polymorphic, including many enriched GO terms, i.e. DNA/RNA metabolism and modification, chromosome/chromatin organization, protein biosynthesis, metabolism and function, energy consumption/transfer and mitochondrion. Overall, our findings indicate that the tolerant phenotype in O. maius likely arises from multiple genetic adaptations rather than a singular mechanism.
一些能够形成欧石楠类菌根的耐重金属真菌分离株,也能提高宿主植物对金属的耐受性。其中一种真菌分离株,即大孢奥氏霉锌耐受型(Oidiodendron maius Zn),已得到表征,并确定了其耐金属表型背后的一些分子机制。在这里,我们研究了大孢奥氏霉锌耐受型现有基因组与大孢奥氏霉耐金属和敏感分离株基因组之间的基因组差异,目的是确定可能参与耐受性表现的基因或基因间区域。对8个耐受分离株和10个敏感分离株的重测序基因组与参考基因组大孢奥氏霉锌耐受型进行比对,从参考基因组中得到357个基因模型,这些基因模型在敏感分离株的基因组中要么缺失,要么多态性过高而无法识别。这些区域包括与防御机制相关以及功能未知的基因。三分之一的预测基因模型显示出高度多态性,包括许多富集的基因本体论(GO)术语,即DNA/RNA代谢与修饰、染色体/染色质组织、蛋白质生物合成、代谢与功能、能量消耗/转移以及线粒体相关。总体而言,我们的研究结果表明,大孢奥氏霉的耐受表型可能源于多种遗传适应,而非单一机制。