Combining transcriptome analysis and GWAS for identification and validation of marker genes in the Physalis peruviana-Fusarium oxysporum pathosystem

Author:

Garzón-Martínez Gina A.1ORCID,García-Arias Francy L.1,Enciso-Rodríguez Felix E.1ORCID,Soto-Suárez Mauricio1ORCID,González Carolina1ORCID,Bombarely Aureliano2ORCID,Barrero Luz Stella1,Osorio Guarín Jaime A.1ORCID

Affiliation:

1. Centro de Investigación Tibaitatá, Corporación Colombiana de Investigación Agropecuaria Agrosavia, Mosquera, Cundinamarca, Colombia

2. Department of Bioscience, University of Milan, Milan, Lombardy, Italy

Abstract

Vascular wilt, caused by the pathogen Fusarium oxysporum f. sp. physali (Foph), is a major disease of cape gooseberry (Physalis peruviana L.) in Andean countries. Despite the economic losses caused by this disease, there are few studies related to molecular mechanisms in the P. peruvianaFoph pathosystem as a useful tool for crop improvement. This study evaluates eight candidate genes associated with this pathosystem, using real-time quantitative PCR (RT-qPCR). The genes were identified and selected from 1,653 differentially expressed genes (DEGs) derived from RNA-Seq analysis and from a previous genome-wide association study (GWAS) of this plant-pathogen interaction. Based on the RT-qPCR analysis, the tubuline (TUB) reference gene was selected for its highly stable expression in cape gooseberry. The RT-qPCR validation of the candidate genes revealed the biological variation in their expression according to their known biological function. Three genes related to the first line of resistance/defense responses were highly expressed earlier during infection in a susceptible genotype, while three others were overexpressed later, mostly in the tolerant genotype. These genes are mainly involved in signaling pathways after pathogen recognition, mediated by hormones such as ethylene and salicylic acid. This study provided the first insight to uncover the molecular mechanism from the P. peruvianaFoph pathosystem. The genes validated here have important implications in the disease progress and allow a better understanding of the defense response in cape gooseberry at the molecular level. Derived molecular markers from these genes could facilitate the identification of tolerant/susceptible genotypes for use in breeding schemes.

Funder

Colombian Ministry of Agriculture

Publisher

PeerJ

Subject

General Agricultural and Biological Sciences,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

Reference94 articles.

1. Quantitative reverse transcription-qPCR-based gene expression analysis in plants BT—plant signal transduction: methods and protocols;Abdallah;Methods in Molecular Biology,2016

2. Bioassay-guided approach employed to isolate and identify anticancer compounds from Physalis peruviana calyces;Abou Baker;Plant Archives,2020

3. FastQC. FastQC: a quality control tool for high throughput sequence data;Andrews,2012

4. ea-utils : “Command-line tools for processing biological sequencing data”;Aronesty;GitHub,2011

5. Genome-wide association studies in plant pathosystems: toward an ecological genomics approach;Bartoli;Frontiers in Plant Science,2017

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