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Development of a Genome-Informed Protocol for Detection of Pseudomonas amygdali pv. morsprunorum Using LAMP and PCR
Daniela Díaz1, Alan Zamorano1, Héctor García2
1Laboratorio de Fitovirología, Departamento de Sanidad Vegetal, Facultad de Ciencias Agropecuarias, Universidad de Chile, Avenida Santa Rosa 11315, Santiago 8820808, Chile.
Abstract:
One of the causal agents of bacterial canker is Pseudomonas amygdali pv. morsprunorum-Pam (formerly Pseudomonas syringae pv. morsprunorum). Recently detected in Chile, Pam is known to cause lesions in the aerial parts of the plant, followed by more severe symptoms such as cankers and gummosis in the later stages of the disease. This study presents the design of PCR and LAMP detection methods for the specific and sensitive identification of Pseudomonas amygdali pv. morsprunorum (Pam) from cherry trees. Twelve Pseudomonas isolates were collected, sequenced, and later characterized by Multi-locus Sequence Analysis (MLSA) and Average Nucleotide Identity by blast (ANIb). Three of them (11116B2, S1 Pam, and S2 Pam) were identified as Pseudomonas amygdali pv. morsprunorum and were used to find specific genes through RAST server, by comparing their genome with that of other Pseudomonas, including isolates from other Pam strains. The effector gene HopAU1 was selected for the design of primers to be used for both techniques, evaluating sensitivity and specificity, and the ability to detect Pam directly from plant tissues. While the PCR detection limit was 100 pg of purified bacterial DNA per reaction, the LAMP assays were able to detect up to 1 fg of purified DNA per reaction. Similar results were observed using plant tissues, LAMP being more sensitive than PCR, including when using DNA extracted from infected plant tissues. Both detection methods were tested in the presence of 30 other bacterial genera, with LAMP being more sensitive than PCR.
Insights
This study developed sensitive PCR and LAMP methods for detecting Pseudomonas amygdali pv. morsprunorum (Pam), a bacterial canker pathogen. LAMP demonstrated superior sensitivity in identifying Pam in cherry trees and plant tissues.
Area of Science:
- Plant Pathology
- Bacteriology
- Molecular Diagnostics
Background:
- Pseudomonas amygdali pv. morsprunorum (Pam) causes bacterial canker in cherry trees, leading to significant crop damage.
- Pam has recently been detected in Chile, necessitating effective diagnostic tools for disease management.
Purpose of the Study:
- To design and evaluate specific and sensitive PCR and LAMP detection methods for Pseudomonas amygdali pv. morsprunorum (Pam).
- To compare the sensitivity and specificity of PCR and LAMP for Pam detection directly from plant tissues.
Main Methods:
- Genomic characterization of twelve Pseudomonas isolates using Multi-locus Sequence Analysis (MLSA) and Average Nucleotide Identity by blast (ANIb).
- Identification of specific genes, including the effector gene HopAU1, for primer design.
- Development and validation of PCR and LAMP assays targeting the HopAU1 gene.
- Evaluation of detection limits and specificity against other bacterial genera.
Main Results:
- Three isolates were confirmed as Pseudomonas amygdali pv. morsprunorum.
- LAMP assays detected up to 1 fg of purified DNA, significantly more sensitive than PCR (100 pg).
- LAMP showed higher sensitivity than PCR when detecting Pam directly from infected cherry tree tissues.
Conclusions:
- Both PCR and LAMP are effective for identifying Pseudomonas amygdali pv. morsprunorum.
- LAMP offers superior sensitivity and is a promising tool for early and accurate diagnosis of bacterial canker in cherry trees.
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