» Articles » PMID: 31006101

Comparative Transcriptome Profiling of Resistant and Susceptible Sugarcane Genotypes in Response to the Airborne Pathogen Fusarium Verticillioides

Overview
Journal Mol Biol Rep
Specialty Molecular Biology
Date 2019 Apr 22
PMID 31006101
Citations 9
Authors
Affiliations
Soon will be listed here.
Abstract

Fusarium verticillioides is the pathogen associated with pokkah boeng disease (PBD), the most significant airborne disease of sugarcane. The molecular mechanisms that regulate the defense responses of sugarcane towards this fungus are not yet fully known. Samples of 'YT 94/128' (resistant, R) and 'GT 37' (susceptible, S) inoculated with F. verticillioides on the 14 days post-inoculation were used to analyze the transcriptome to screen R genes. In total, 80.93 Gb of data and 76,175 Unigenes were obtained after assembling the sequencing data, and comparisons of Unigenes with NR, Swiss-prot, KOG, and KEGG databases confirmed 42,451 Unigenes. The analysis of differentially expression genes (DEGs) in each sample revealed 9092 DEGs in 'YT 94/128,' including 8131 up-regulated DEGs and 961 down-regulated DEGs; there were 9829 DEGs in 'GT 37,' including 7552 up-regulated DEGs and 2277 down-regulated DEGs. The identified DEGs were mainly involved in catalytic enzyme activity, cell protease, hydrolytic enzymes, peptide enzyme, protein metabolism process of negative regulation, phenylpropanoid metabolism, extracellular region, aldehyde dehydrogenase, endopeptidase, REDOX enzyme, protein kinases, and phosphoric acid transferase categories. KEGG pathway clustering analysis showed that the DEGs involved in resistance were significantly related to metabolic pathways of phenylpropanoid biosynthesis, cutin, suberine and wax biosynthesis, nitrogenous metabolism, biosynthesis of secondary metabolites, and plant-pathogen interactions. This application of transcriptomic data clarifies the mechanism of interactions between sugarcane and F. verticillioides, which can help to reveal disease-related metabolic pathways, molecular regulatory networks, and key genes involved in sugarcane responses to F. verticillioides.

Citing Articles

Resistant cumin cultivar, GC-4 counters f. sp. infection through up-regulation of steroid biosynthesis, limonene and pinene degradation and butanoate metabolism pathways.

Dharajiya D, Shukla N, Pandya M, Joshi M, Patel A, Joshi C Front Plant Sci. 2023; 14:1204828.

PMID: 37915505 PMC: 10616826. DOI: 10.3389/fpls.2023.1204828.


Cell wall-related genes and lignin accumulation contribute to the root resistance in different maize ( L.) genotypes to (Sacc.) Nirenberg infection.

Quiroz-Figueroa F, Cruz-Mendivil A, Ibarra-Laclette E, Garcia-Perez L, Gomez-Peraza R, Hanako-Rosas G Front Plant Sci. 2023; 14:1195794.

PMID: 37441182 PMC: 10335812. DOI: 10.3389/fpls.2023.1195794.


Transcriptomic and Proteomic Landscape of Sugarcane Response to Biotic and Abiotic Stressors.

Li A, Liao F, Wang M, Chen Z, Qin C, Huang R Int J Mol Sci. 2023; 24(10).

PMID: 37240257 PMC: 10219567. DOI: 10.3390/ijms24108913.


Integrated Transcriptome and Metabolome Analysis to Identify Sugarcane Gene Defense against Fall Armyworm ( Herbivory.

Li A, Wang M, Chen Z, Qin C, Liao F, Wu Z Int J Mol Sci. 2022; 23(22).

PMID: 36430189 PMC: 9694286. DOI: 10.3390/ijms232213712.


Dynamic Transcriptome Profiling of Mungbean Genotypes Unveil the Genes Respond to the Infection of Mungbean Yellow Mosaic Virus.

Sudha M, Karthikeyan A, Madhumitha B, Ranjani R, Kanimoli Mathivathana M, Dhasarathan M Pathogens. 2022; 11(2).

PMID: 35215133 PMC: 8874377. DOI: 10.3390/pathogens11020190.


References
1.
Wellesen K, Durst F, Pinot F, Benveniste I, Nettesheim K, Wisman E . Functional analysis of the LACERATA gene of Arabidopsis provides evidence for different roles of fatty acid omega -hydroxylation in development. Proc Natl Acad Sci U S A. 2001; 98(17):9694-9. PMC: 55514. DOI: 10.1073/pnas.171285998. View

2.
Xiao F, Goodwin S, Xiao Y, Sun Z, Baker D, Tang X . Arabidopsis CYP86A2 represses Pseudomonas syringae type III genes and is required for cuticle development. EMBO J. 2004; 23(14):2903-13. PMC: 514950. DOI: 10.1038/sj.emboj.7600290. View

3.
Benveniste I, Bronner R, Wang Y, Compagnon V, Michler P, Schreiber L . CYP94A1, a plant cytochrome P450-catalyzing fatty acid omega-hydroxylase, is selectively induced by chemical stress in Vicia sativa seedlings. Planta. 2005; 221(6):881-90. DOI: 10.1007/s00425-005-1503-y. View

4.
Hofer R, Briesen I, Beck M, Pinot F, Schreiber L, Franke R . The Arabidopsis cytochrome P450 CYP86A1 encodes a fatty acid omega-hydroxylase involved in suberin monomer biosynthesis. J Exp Bot. 2008; 59(9):2347-60. PMC: 2423664. DOI: 10.1093/jxb/ern101. View

5.
Serra O, Soler M, Hohn C, Sauveplane V, Pinot F, Franke R . CYP86A33-targeted gene silencing in potato tuber alters suberin composition, distorts suberin lamellae, and impairs the periderm's water barrier function. Plant Physiol. 2008; 149(2):1050-60. PMC: 2633816. DOI: 10.1104/pp.108.127183. View