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Pexophagy is critical for fungal development, stress response, and virulence in Alternaria alternata
by
Wu, Pei‐Ching
, Lu, Hsin‐Yu
, Yago, Jonar I.
, Chen, Yu‐Kun
, Chung, Kuang‐Ren
, Choo, Celine Yen Ling
, Wei, Xian‐Yong
in
Accumulation
/ Adaptability
/ Alternaria alternata
/ Amino acids
/ Apoptosis
/ Atg8
/ Autophagy
/ axenic culture
/ Cell culture
/ Cell survival
/ Cell walls
/ Citrus
/ Conidia
/ Depletion
/ Fluorescence microscopy
/ Fungi
/ Gene expression
/ genes
/ Germfree
/ Homeostasis
/ Hydrogen peroxide
/ Inactivation
/ Lipids
/ macroautophagy
/ Metabolism
/ Microscopy
/ Mutants
/ NAD(P)H oxidase
/ NAD(P)H oxidase (H2O2-forming)
/ Nitrogen
/ Original
/ Oxidative stress
/ peroxisome
/ Peroxisomes
/ Pexophagy
/ Phenotypes
/ plant pathology
/ Protected species
/ Proteins
/ Proteolysis
/ Pure culture
/ Reactive oxygen species
/ Reintroduction
/ ROS detoxification
/ Starvation
/ stress response
/ stress tolerance
/ Toxins
/ transcription factors
/ Translocation
/ Transmission electron microscopy
/ tripeptides
/ Vacuoles
/ Virulence
2022
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Pexophagy is critical for fungal development, stress response, and virulence in Alternaria alternata
by
Wu, Pei‐Ching
, Lu, Hsin‐Yu
, Yago, Jonar I.
, Chen, Yu‐Kun
, Chung, Kuang‐Ren
, Choo, Celine Yen Ling
, Wei, Xian‐Yong
in
Accumulation
/ Adaptability
/ Alternaria alternata
/ Amino acids
/ Apoptosis
/ Atg8
/ Autophagy
/ axenic culture
/ Cell culture
/ Cell survival
/ Cell walls
/ Citrus
/ Conidia
/ Depletion
/ Fluorescence microscopy
/ Fungi
/ Gene expression
/ genes
/ Germfree
/ Homeostasis
/ Hydrogen peroxide
/ Inactivation
/ Lipids
/ macroautophagy
/ Metabolism
/ Microscopy
/ Mutants
/ NAD(P)H oxidase
/ NAD(P)H oxidase (H2O2-forming)
/ Nitrogen
/ Original
/ Oxidative stress
/ peroxisome
/ Peroxisomes
/ Pexophagy
/ Phenotypes
/ plant pathology
/ Protected species
/ Proteins
/ Proteolysis
/ Pure culture
/ Reactive oxygen species
/ Reintroduction
/ ROS detoxification
/ Starvation
/ stress response
/ stress tolerance
/ Toxins
/ transcription factors
/ Translocation
/ Transmission electron microscopy
/ tripeptides
/ Vacuoles
/ Virulence
2022
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Pexophagy is critical for fungal development, stress response, and virulence in Alternaria alternata
by
Wu, Pei‐Ching
, Lu, Hsin‐Yu
, Yago, Jonar I.
, Chen, Yu‐Kun
, Chung, Kuang‐Ren
, Choo, Celine Yen Ling
, Wei, Xian‐Yong
in
Accumulation
/ Adaptability
/ Alternaria alternata
/ Amino acids
/ Apoptosis
/ Atg8
/ Autophagy
/ axenic culture
/ Cell culture
/ Cell survival
/ Cell walls
/ Citrus
/ Conidia
/ Depletion
/ Fluorescence microscopy
/ Fungi
/ Gene expression
/ genes
/ Germfree
/ Homeostasis
/ Hydrogen peroxide
/ Inactivation
/ Lipids
/ macroautophagy
/ Metabolism
/ Microscopy
/ Mutants
/ NAD(P)H oxidase
/ NAD(P)H oxidase (H2O2-forming)
/ Nitrogen
/ Original
/ Oxidative stress
/ peroxisome
/ Peroxisomes
/ Pexophagy
/ Phenotypes
/ plant pathology
/ Protected species
/ Proteins
/ Proteolysis
/ Pure culture
/ Reactive oxygen species
/ Reintroduction
/ ROS detoxification
/ Starvation
/ stress response
/ stress tolerance
/ Toxins
/ transcription factors
/ Translocation
/ Transmission electron microscopy
/ tripeptides
/ Vacuoles
/ Virulence
2022
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Pexophagy is critical for fungal development, stress response, and virulence in Alternaria alternata
Journal Article
Pexophagy is critical for fungal development, stress response, and virulence in Alternaria alternata
2022
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Overview
Alternaria alternata can resist high levels of reactive oxygen species (ROS). The protective roles of autophagy or autophagy‐mediated degradation of peroxisomes (termed pexophagy) against oxidative stress remain unclear. The present study, using transmission electron microscopy and fluorescence microscopy coupled with a GFP‐AaAtg8 proteolysis assay and an mCherry tagging assay with peroxisomal targeting tripeptides, demonstrated that hydrogen peroxide (H2O2) and nitrogen depletion induced autophagy and pexophagy. Experimental evidence showed that H2O2 triggered autophagy and the translocation of peroxisomes into the vacuoles. Mutational inactivation of the AaAtg8 gene in A. alternata led to autophagy impairment, resulting in the accumulation of peroxisomes, increased ROS sensitivity, and decreased virulence. Compared to the wild type, ΔAaAtg8 failed to detoxify ROS effectively, leading to ROS accumulation. Deleting AaAtg8 down‐regulated the expression of genes encoding an NADPH oxidase and a Yap1 transcription factor, both involved in ROS resistance. Deleting AaAtg8 affected the development of conidia and appressorium‐like structures. Deleting AaAtg8 also compromised the integrity of the cell wall. Reintroduction of a functional copy of AaAtg8 in the mutant completely restored all defective phenotypes. Although ΔAaAtg8 produced wild‐type toxin levels in axenic culture, the mutant induced a lower level of H2O2 and smaller necrotic lesions on citrus leaves. In addition to H2O2, nitrogen starvation triggered peroxisome turnover. We concluded that ΔAaAtg8 failed to degrade peroxisomes effectively, leading to the accumulation of peroxisomes and the reduction of the stress response. Autophagy‐mediated peroxisome turnover could increase cell adaptability and survival under oxidative stress and starvation conditions. The degradation of peroxisomes, resistance to oxidative stress, nutrient recycling, and pathogenicity is mediated by pexophagy in Alternaria alternata.
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