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Characterization of spatio-temporal dynamics of the constrained network of the filamentous fungus Podospora anserina using a geomatics-based approach

叶状体 菌丝 地衣 生物 柄孢霉 菌丝体 子囊孢子 真菌 丝状真菌 生物系统 植物 孢子 生物化学 基因 突变体
作者
Clara Ledoux,Cécilia Bobée,Éva Cabet,Pascal David,Frédéric Filaine,Sabrina Hachimi,Christophe Lalanne,Gwenaël Ruprich‐Robert,Éric Herbert,Florence Chapeland‐Leclerc
出处
期刊:PLOS ONE [Public Library of Science]
卷期号:19 (2): e0297816-e0297816 被引量:2
标识
DOI:10.1371/journal.pone.0297816
摘要

In their natural environment, fungi are subjected to a wide variety of environmental stresses which they must cope with by constantly adapting the architecture of their growing network. In this work, our objective was to finely characterize the thallus development of the filamentous fungus Podospora anserina subjected to different constraints that are simple to implement in vitro and that can be considered as relevant environmental stresses, such as a nutrient-poor environment or non-optimal temperatures. At the Petri dish scale, the observations showed that the fungal thallus is differentially affected (thallus diameter, mycelium aspect) according to the stresses but these observations remain qualitative. At the hyphal scale, we showed that the extraction of the usual quantities ( i.e . apex, node, length) does not allow to distinguish the different thallus under stress, these quantities being globally affected by the application of a stress in comparison with a thallus having grown under optimal conditions. Thanks to an original geomatics-based approach based on the use of automatized Geographic Information System (GIS) tools, we were able to produce maps and metrics characterizing the growth dynamics of the networks and then to highlight some very different dynamics of network densification according to the applied stresses. The fungal thallus is then considered as a map and we are no longer interested in the quantity of material (hyphae) produced but in the empty spaces between the hyphae, the intra-thallus surfaces. This study contributes to a better understanding of how filamentous fungi adapt the growth and densification of their network to potentially adverse environmental changes.
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