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Fungal X-Intrinsic Protein Aquaporin from Trichoderma atroviride: Structural and Functional Considerations
Maroua Ben Amira1,2, Mohamed Faize3, Magnus Karlsson4
1Université Clermont Auvergne, INRAE, PIAF, 63000 Clermont-Ferrand, France.
Abstract:
The major intrinsic protein (MIP) superfamily is a key part of the fungal transmembrane transport network. It facilitates the transport of water and low molecular weight solutes across biomembranes. The fungal uncharacterized X-Intrinsic Protein (XIP) subfamily includes the full protein diversity of MIP. Their biological functions still remain fully hypothetical. The aim of this study is still to deepen the diversity and the structure of the XIP subfamily in light of the MIP counterparts-the aquaporins (AQPs) and aquaglyceroporins (AQGPs)-and to describe for the first time their function in the development, biomass accumulation, and mycoparasitic aptitudes of the fungal bioagent Trichoderma atroviride. The fungus-XIP clade, with one member (TriatXIP), is one of the three clades of MIPs that make up the diversity of T. atroviride MIPs, along with the AQPs (three members) and the AQGPs (three members). TriatXIP resembles those of strict aquaporins, predicting water diffusion and possibly other small polar solutes due to particularly wider ar/R constriction with a Lysine substitution at the LE2 position. The XIP loss of function in ∆TriatXIP mutants slightly delays biomass accumulation but does not impact mycoparasitic activities. ∆TriatMIP forms colonies similar to wild type; however, the hyphae are slightly thinner and colonies produce rare chlamydospores in PDA and specific media, most of which are relatively small and exhibit abnormal morphologies. To better understand the molecular causes of these deviant phenotypes, a wide-metabolic survey of the ∆TriatXIPs demonstrates that the delayed growth kinetic, correlated to a decrease in respiration rate, is caused by perturbations in the pentose phosphate pathway. Furthermore, the null expression of the XIP gene strongly impacts the expression of four expressed MIP-encoding genes of T. atroviride, a plausible compensating effect which safeguards the physiological integrity and life cycle of the fungus. This paper offers an overview of the fungal XIP family in the biocontrol agent T. atroviride which will be useful for further functional analysis of this particular MIP subfamily in vegetative growth and the environmental stress response in fungi. Ultimately, these findings have implications for the ecophysiology of Trichoderma spp. in natural, agronomic, and industrial systems.
Insights
The study reveals that the uncharacterized X-Intrinsic Protein (XIP) in Trichoderma atroviride impacts biomass accumulation and respiration by affecting the pentose phosphate pathway, while mycoparasitic activity remains unaffected. This research sheds light on fungal XIP function in biocontrol agents.
Area of Science:
- Fungal biology
- Molecular biology
- Biochemistry
Background:
- The Major Intrinsic Protein (MIP) superfamily is crucial for fungal transport processes.
- The fungal uncharacterized X-Intrinsic Protein (XIP) subfamily's functions are largely unknown.
- Understanding XIPs is vital for the biocontrol agent *Trichoderma atroviride*.
Purpose of the Study:
- To investigate the diversity and structure of the XIP subfamily in *T. atroviride*.
- To elucidate the function of XIPs in fungal development, biomass accumulation, and mycoparasitism.
- To analyze the molecular mechanisms underlying XIP function and its impact on other MIPs.
Main Methods:
- Bioinformatic analysis of XIP subfamily diversity and structure.
- Gene deletion mutant construction (∆*Triat*XIP) for functional analysis.
- Phenotypic characterization including biomass accumulation, colony morphology, and mycoparasitic assays.
- Wide-metabolic survey and gene expression analysis.
Main Results:
- The *T. atroviride* XIP (*Triat*XIP) shares structural similarities with aquaporins, suggesting potential roles in water and solute transport.
- Loss of function in ∆*Triat*XIP mutants resulted in slightly delayed biomass accumulation and altered chlamydospore morphology, but did not affect mycoparasitism.
- Metabolic analysis revealed that delayed growth is linked to decreased respiration and perturbations in the pentose phosphate pathway.
- Null expression of the *XIP* gene influenced the expression of other *MIP*-encoding genes, indicating a compensatory mechanism.
Conclusions:
- The fungal XIP subfamily plays a role in regulating fungal growth and metabolism, particularly the pentose phosphate pathway.
- While *Triat*XIP is not essential for mycoparasitic activity, it influences biomass accumulation and spore development.
- The study highlights a regulatory interaction between XIP and other MIPs in *T. atroviride*, crucial for maintaining physiological balance.
- Findings provide insights into the ecophysiology of *Trichoderma* spp. for applications in biocontrol and industrial processes.
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