Literature DB >> 34953292

Distinct and essential roles of bZIP transcription factors in the stress response and pathogenesis in Alternaria alternata.

Yunpeng Gai1, Lei Li2, Bing Liu3, Haijie Ma4, Yanan Chen5, Fang Zheng5, Xuepeng Sun4, Mingshuang Wang6, Chen Jiao5, Hongye Li7.   

Abstract

The ability to cope with environmental abiotic stress and biotic stress is crucial for the survival of plants and microorganisms, which enable them to occupy multiple niches in the environment. Previous studies have shown that transcription factors play crucial roles in regulating various biological processes including multiple stress tolerance and response in eukaryotes. This work identified multiple critical transcription factor genes, metabolic pathways and gene ontology (GO) terms related to abiotic stress response were broadly activated by analyzing the transcriptome of phytopathogenic fungus Alternaria alternata under metal ions stresses, oxidative stress, salt stresses, and host-pathogen interaction. We investigated the biological functions and regulatory roles of the bZIP transcriptional factor (TF) genes in the phytopathogenic fungus A.alternata by analyzing targeted gene disrupted mutants. Morphological analysis provides evidence that the bZIP transcription factors (Gcn4, MeaB, Atf1, the ER stress regulator Hac1, and the all development altered-1 gene Ada1) are required for morphogenesis as the colony morphology of these gene deletion mutants was significantly different from that of the wild-type. In addition, bZIPs are involved in the resistance to multiple stresses such as oxidative stress (Ada1, Yap1, MetR) and virulence (Hac1, MetR, Yap1, Ada1) at varying degrees. Transcriptome data demonstrated that the inactivation of bZIPs (Hac1, Atf1, Ada1 and Yap1) significantly affected many genes in multiple critical metabolism pathways and gene ontology (GO) terms. Moreover,the ΔHac1 mutants displayed reduced aerial hypha and are hypersensitivity to endoplasmic reticulum disruptors such as tunicamycin and dithiothreitol. Transcriptome analysis showed that inactivation of Hac1 significantly affected the proteasome process and its downstream unfolded protein binding, indicating that Hac1 participates in the endoplasmic reticulum stress response through the conserved unfolded protein response. Taken together, our findings reveal that bZIP transcription factors function as key regulators of fungal morphogenesis, abiotic stress response and pathogenesis, and expand our understanding of how microbial pathogens utilize these genes to deal with environmental stresses and achieve successful infection in the host plant.
Copyright © 2021 Elsevier GmbH. All rights reserved.

Entities:  

Keywords:  Abiotic stress response; Alternaria alternata; Endoplasmic reticulum stress; Stress-activated pathway; Transcriptome analysis; bZIP transcription factor

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Year:  2021        PMID: 34953292     DOI: 10.1016/j.micres.2021.126915

Source DB:  PubMed          Journal:  Microbiol Res        ISSN: 0944-5013            Impact factor:   5.415


  3 in total

1.  Histone Methylation Is Required for Virulence, Conidiation, and Multi-Stress Resistance of Alternaria alternata.

Authors:  Shuai Meng; Suya Huang; Jinhua Liu; Yunpeng Gai; Min Li; Shuo Duan; Shuting Zhang; Xuepeng Sun; Qi Yang; Yuchun Wang; Kai Xu; Haijie Ma
Journal:  Front Microbiol       Date:  2022-06-16       Impact factor: 6.064

Review 2.  Approaches Involved in the Vegetable Crops Salt Stress Tolerance Improvement: Present Status and Way Ahead.

Authors:  Tusar Kanti Behera; Ram Krishna; Waquar Akhter Ansari; Mohd Aamir; Pradeep Kumar; Sarvesh Pratap Kashyap; Sudhakar Pandey; Chittaranjan Kole
Journal:  Front Plant Sci       Date:  2022-02-21       Impact factor: 5.753

3.  Genome-Wide Identification and Expression Analysis of the Basic Leucine Zipper (bZIP) Transcription Factor Gene Family in Fusarium graminearum.

Authors:  Sarfaraz Hussain; Bowen Tai; Athar Hussain; Israt Jahan; Bolei Yang; Fuguo Xing
Journal:  Genes (Basel)       Date:  2022-03-28       Impact factor: 4.141

  3 in total

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