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Author Spotlight: Quantifying Siderophores and Pyochelin for Infection Control
Published on: March 15, 2024
Pyoverdines Are Essential for the Antibacterial Activity of Pseudomonas chlororaphis YL-1 under Low-Iron Conditions
Youzhou Liu1,2, Chen Dai3, Yaqiu Zhou1
1Institute of Plant Protection, Jiangsu Academy of Agricultural Sciences, Nanjing, China.
Insights
Pyoverdine (PVD) production by Pseudomonas chlororaphis YL-1 is crucial for its broad-spectrum antimicrobial activity against Gram-negative and Gram-positive bacteria, especially under low-iron conditions. Iron availability significantly impacts PVD production and antibacterial efficacy, highlighting PVDs
Area of Science:
- Microbiology
- Bacterial Genetics
- Biochemistry
Background:
- Pseudomonas chlororaphis YL-1 exhibits broad antimicrobial activity against phytopathogens.
- Its genome contains a pyoverdine (PVD) biosynthesis gene cluster.
- PVDs are siderophores involved in iron uptake and microbial interactions.
Purpose of the Study:
- To characterize PVD production in P. chlororaphis YL-1.
- To compare the antimicrobial activity of wild-type YL-1 with PVD-deficient mutants (ΔpvdS, ΔpvdF, ΔpvdL).
- To investigate the effect of iron availability on PVD production and antibacterial activity.
Main Methods:
- Site-specific mutagenesis (sacB-based) to create PVD-deficient mutants.
- In vitro assays to assess PVD production and antibacterial activity under varying iron conditions.
- Quantitative analysis of pvdS gene expression.
- Liquid chromatography-tandem mass spectrometry (LC-MS/MS) for compound identification.
- In vivo efficacy testing against rice bacterial leaf blight.
Main Results:
- Wild-type YL-1, ΔpvdF mutant, and complemented ΔpvdS strain produced PVDs and showed broad-spectrum antimicrobial activity in vitro under low-iron conditions.
- Increased iron levels reduced PVD production and antibacterial activity.
- LC-MS/MS confirmed PVDs as the antibacterial compounds produced by YL-1.
- In vitro antibacterial activity correlated with in vivo control of rice bacterial leaf blight.
Conclusions:
- Pyoverdines (PVDs) are essential for the broad-spectrum antibacterial activities of P. chlororaphis YL-1 under low-iron conditions.
- Exogenous iron negatively regulates PVD production and associated antibacterial activity.
- PVDs play a significant role in bacterial interactions and can act as biocontrol agents through direct inhibition and iron competition.
Abstract:
Pseudomonas chlororaphis YL-1 has extensive antimicrobial activities against phytopathogens, and its genome harbors a pyoverdine (PVD) biosynthesis gene cluster. The alternative sigma factor PvdS in Pseudomonas aeruginosa PAO1 acts as a critical regulator in response to iron starvation. The assembly of the PVD backbone starts with peptide synthetase enzyme PvdL. PvdF catalyzes formylation of l-OH-Orn to produce l-N5-hydroxyornithine. Here, we describe the characterization of PVD production in YL-1 and its antimicrobial activity in comparison with that of its PVD-deficient ΔpvdS, ΔpvdF, and ΔpvdL mutants, which were obtained using a sacB-based site-specific mutagenesis strategy. Using in vitro methods, we examined the effect of exogenous iron under low-iron conditions and an iron-chelating agent under iron-sufficient conditions on PVD production, antibacterial activity, and the relative expression of the PVD transcription factor gene pvdS in YL-1. We found that strain YL-1, the ΔpvdF mutant, and the ΔpvdS(pUCP26-pvdS) complemented strain produced visible PVDs and demonstrated a wide range of inhibitory effects against Gram-negative and Gram-positive bacteria in vitro under low-iron conditions and that with the increase of iron, its PVD production and antibacterial activity were reduced. The antibacterial compounds produced by strain YL-1 under low-iron conditions were PVDs based on liquid chromatography-tandem mass spectrometry (LC-MS/MS) analysis. Moreover, the antibacterial activity observed in vitro was correlated with in vivo control efficacies of strain YL-1 against rice bacterial leaf blight (BLB) disease caused by Xanthomonas oryzae pv. oryzae. Collectively, PVDs are responsible for the antibacterial activities of strain YL-1 under both natural and induced low-iron conditions.IMPORTANCE The results demonstrated that PVDs are essential for the broad-spectrum antibacterial activities of strain YL-1 against both Gram-positive and Gram-negative bacteria under low-iron conditions. Our findings also highlight the effect of exogenous iron on the production of PVD and the importance of this bacterial product in bacterial interactions. As a biocontrol agent, PVDs can directly inhibit the proliferation of the tested bacteria in addition to participating in iron competition.
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