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Published on: May 21, 2020
Changes in cellular infrastructure after induced endoplasmic reticulum stress in Moniliophthora perniciosa
Tatiana Setenta Basso1, Evelyn Vita-Santos1, Gabriele Marisco2
1Laboratory of Biology and Fungi, Biotechnology and Genetic Center, Santa Cruz State University Rod. Jorge Amado, km 16, Ilhéus, Bahia, 45662-900 Brazil.
Abstract:
Moniliophthora perniciosa is a basidiomycete fungus that causes witches' broom disease in Theobroma cacao We analyzed the morphology and survival of fungal hyphae and endoplasmic reticulum (ER) remodeling in either glucose- or glycerol-grown M. perniciosa after treatment with ER stress-inducing chemicals dithiothreitol (DTT) or tunicamycin (TM). Changes in intracellular redox potential can cause endoplasmic reticulum (ER) stress due to diminished efficiency in protein folding that could in turn reduce cell survival. Such stress diminishes protein-folding efficiency that could in turn reduce cell survival. Light microscopy revealed morphological changes in hyphae after TM but not after DTT treatment, regardless of the media carbon source. Decrease in fungal survival, after both TM and DTT treatments, was dose-dependent and glycerol-grown cells showed a higher resistance to both chemicals compared to glucose-grown cells. Electron microscopy showed TM and DDT-induced ER stress in M. perniciosa as evidenced by structural alterations of the organelle. The volume of ER structures increased as a typical consequence of unfolded protein stress, and the number of autophagosomes was higher. In glycerol-grown fungus DTT treatment slightly induced expression of molecular chaperone BiP. The TM exposure-induced expression of gene MpIRE1, involved in signaling of the unfolded protein response, was higher in glycerol than glucose-grown cells. Such difference was not observable with expression of gene MpATG8, encoding a key protein in autosome formation, that was induced 1.4-fold and 1.2-fold in glucose or glycerol-grown cells, respectively. DHE-based fluorescence assay showed M. perniciosa oxidative stress induced by H2O2, and treated cells had a higher level of oxidative stress compared to control. A comprehensive study of remodeling of ER is important in understanding M. perniciosa fungus resistance to oxidative stress and its ability to implement a successful infection in T. cacao.
Insights
Moniliophthora perniciosa, a fungus causing witches' broom disease, exhibits endoplasmic reticulum (ER) stress responses to chemicals. Glycerol-grown cells show greater resistance to ER stress and oxidative damage than glucose-grown cells.
Area of Science:
- Plant Pathology
- Mycology
- Cell Biology
Background:
- Moniliophthora perniciosa causes witches' broom disease in Theobroma cacao.
- Endoplasmic reticulum (ER) stress can impair protein folding and reduce cell survival.
- Intracellular redox potential changes can induce ER stress.
Purpose of the Study:
- To investigate ER remodeling and survival of M. perniciosa under ER stress conditions.
- To compare the responses of glucose-grown versus glycerol-grown M. perniciosa to ER stress.
- To assess the role of ER stress in M. perniciosa's resistance to oxidative stress.
Main Methods:
- Light and electron microscopy to observe hyphal morphology and ER structure.
- Treatment with ER stress-inducing chemicals: dithiothreitol (DTT) and tunicamycin (TM).
- Gene expression analysis (BiP, MpIRE1, MpATG8) and DHE-based fluorescence assay for oxidative stress.
Main Results:
- TM caused hyphal morphological changes; DTT did not. Glycerol-grown cells were more resistant to DTT and TM than glucose-grown cells.
- Electron microscopy revealed ER structural alterations, increased ER volume, and more autophagosomes under DTT/TM treatment.
- Glycerol-grown cells showed higher resistance to oxidative stress and differential gene expression related to ER stress response.
Conclusions:
- M. perniciosa undergoes ER stress and remodeling in response to chemical treatments.
- Glycerol metabolism enhances M. perniciosa's resistance to ER stress and oxidative damage.
- Understanding ER remodeling is crucial for managing witches' broom disease in cacao.
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