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Author Spotlight: Quantifying Siderophores and Pyochelin for Infection Control
Published on: March 15, 2024
Production of the catechol type siderophore bacillibactin by the honey bee pathogen Paenibacillus larvae
Gillian Hertlein1, Sebastian Müller2, Eva Garcia-Gonzalez1
1Institute for Bee Research, Department of Molecular Microbiology and Bee Diseases, Hohen Neuendorf, Germany.
Abstract:
The Gram-positive bacterium Paenibacillus larvae is the etiological agent of American Foulbrood. This bacterial infection of honey bee brood is a notifiable epizootic posing a serious threat to global honey bee health because not only individual larvae but also entire colonies succumb to the disease. In the recent past considerable progress has been made in elucidating molecular aspects of host pathogen interactions during pathogenesis of P. larvae infections. Especially the sequencing and annotation of the complete genome of P. larvae was a major step forward and revealed the existence of several giant gene clusters coding for non-ribosomal peptide synthetases which might act as putative virulence factors. We here present the detailed analysis of one of these clusters which we demonstrated to be responsible for the biosynthesis of bacillibactin, a P. larvae siderophore. We first established culture conditions allowing the growth of P. larvae under iron-limited conditions and triggering siderophore production by P. larvae. Using a gene disruption strategy we linked siderophore production to the expression of an uninterrupted bacillibactin gene cluster. In silico analysis predicted the structure of a trimeric trithreonyl lactone (DHB-Gly-Thr)3 similar to the structure of bacillibactin produced by several Bacillus species. Mass spectrometric analysis unambiguously confirmed that the siderophore produced by P. larvae is identical to bacillibactin. Exposure bioassays demonstrated that P. larvae bacillibactin is not required for full virulence of P. larvae in laboratory exposure bioassays. This observation is consistent with results obtained for bacillibactin in other pathogenic bacteria.
Insights
Paenibacillus larvae, the cause of American Foulbrood in honey bees, produces bacillibactin, a siderophore. This compound, however, is not essential for the bacterium's virulence in laboratory settings.
Area of Science:
- Microbiology
- Pathogenomics
- Honey Bee Health
Background:
- Paenibacillus larvae causes American Foulbrood, a devastating honey bee disease.
- Understanding P. larvae pathogenesis is crucial for protecting global honey bee populations.
- Genome sequencing revealed gene clusters potentially involved in virulence.
Purpose of the Study:
- To analyze a specific gene cluster responsible for siderophore biosynthesis in P. larvae.
- To identify and characterize the siderophore produced by P. larvae.
- To determine the role of this siderophore in P. larvae virulence.
Main Methods:
- Established iron-limited culture conditions to induce siderophore production.
- Utilized gene disruption to link siderophore production to the bacillibactin gene cluster.
- Performed in silico analysis, mass spectrometry, and exposure bioassays.
Main Results:
- Identified and confirmed the P. larvae siderophore as bacillibactin, a trimeric trithreonyl lactone.
- Demonstrated that bacillibactin production is linked to an intact bacillibactin gene cluster.
- Found that bacillibactin is not required for P. larvae virulence in laboratory bioassays.
Conclusions:
- The bacillibactin siderophore is produced by Paenibacillus larvae.
- Bacillibactin does not appear to be a critical virulence factor for P. larvae.
- Further research into other P. larvae virulence factors is warranted.
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