bioRxiv Science⌕ Search

Biology subjects

Rech, P.

Publications and source records attributed to Rech, P..

2 recordsLinked to original sources

Endophytic and ectomycorrhizal, an overlooked dual ecological niche? Insights from natural environments and Russula species

O_LIEctomycorrhizal (EcM) fungi play key roles in ecosystem functioning, in particular temperate ones. Recent findings suggest that they can endophytically colonize the roots of non-EcM plants. Here we aim at (i) providing new evidence of colonization of non-EcM hosts by EcM fungi, (ii) exploring factors driving such colonization (plant identity, site, root filter), and (iii) providing direct microscopical evidence for endophytism. C_LIO_LIUsing amplicon sequencing (ITS2), we described the root fungal communities of 42 plant species collected at nine locations in France. In two of those sites, we also compared rhizosphere and root fungal communities to identify a potential root filter. Finally, we investigated endophytism in Russula spp. at two Russula-rich sites using fluorescence in situ hybridization (FISH) paired with confocal microscopy. C_LIO_LIWe find a large but variable share of EcM sequences in roots of non-EcM plant species, in particular nearby EcM hosts, suggesting that endophytism is a secondary ecological niche. Though EcM fungi were more abundant in the rhizosphere compared to roots, their composition was similar to that of roots, suggesting a poor root filter. We observed metabolically active hyphae of Russula spp. endophytically colonizing the apoplast of two non-EcM plant species. C_LIO_LIAs shown for other EcM fungi (e.g., Tuber spp., Ascomycota) we demonstrate the dual EcM/endophyte niche for Russula (Basidiomycota). The ecological consequences of this duality still need to be addressed. The ability to colonize two ecological niches may be a trait kept by EcM fungi which evolved from endophytic fungi, as stipulated by the "waiting room hypothesis". C_LI

microbiology↗

M2WISH: an easy and efficient protocol for whole-mount mRNA in situ hybridization that allows 3D cell resolution of gene expression in Arabidopsis thaliana.

Gene expression analysis is essential for understanding the mechanisms involved in plant development. Here, we developed M2WISH, a protocol based on MicroWave treatment for Wholemount mRNA In Situ Hybridization in Arabidopsis. By permeabilizing tissues without damaging cellular organisation this protocol results in high and homogeneous hybridization yields that enables systematic analysis of gene expression dynamics. Moreover, when combined with cellular histochemical staining, M2WISH provides a cellular resolution of gene expression on roots, aerial meristems, leaves and embryos in the seed. We applied M2WISH to study the spatial dynamics of WUSCHEL (WUS) and CLAVATA3 (CLV3) expression during in vitro meristematic conversion of roots into shoot apical meristems. Thus, we showed that shoot apical meristems could arise from two different types of root structures that differed by their CLV3 gene expression patterns. We constructed 3D cellular representations of WUS and CLV3 gene co-expression pattern, and stressed the variability inherent to meristem conversion. Thus, this protocol generates a large amount of data on the localization of gene expression, which can be used to model complex systems.

plant biology↗