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Rescue of pyrimidine-defective Pseudomonas aeruginosa through metabolic complementation
Hafij Al Mahmud1, Randy Garcia1, Alexsis Garcia1
1Department of Biological Sciences, Texas Tech University, Lubbock, Texas, USA.
Abstract:
Chronic infections harbor multiple pathogens where dynamic interactions between members of the polymicrobial community play a major role in determining the infection outcome. For example, in a nutrient-rich polymicrobial infection, bacteria have the potential to undergo evolutionary changes that impair their ability to synthesize essential metabolites. This adaptation may facilitate metabolic interdependencies between neighboring pathogens and lead to difficult-to-treat chronic infections. Our research group previously demonstrated that Pseudomonas aeruginosa (PA) and Staphylococcus aureus (SA), typically considered classical competitors, can adopt a cooperative lifestyle through bi-directional purine exchange medicated by exogenous DNA (eDNA) release. To further validate our initial findings, in this study, we investigated the potential exchange of pyrimidine between PA and other pathogens, which is another constituent of DNA. In our findings, we observed that a pyrimidine-deficient transposon mutant strain of PA showed improved growth when co-cultured with wild-type PA, SA, Acinetobacter baumannii (AB), and Enterococcus faecalis (EF). Additionally, improved fitness of pyrimidine-deficient PA was further observed in chemical complementation with eDNA and uridine-5'-monophosphate. Interestingly, the rescue of PA growth through eDNA complementation is not as effective as in intact cells, such as SA, AB, EF, and wild-type PA, implying that eDNA is a lesser contributor to this metabolic complementation. Also, the exchange mechanism between pathogens involves more active mechanisms beyond simple eDNA or metabolite release. Our data further highlights the importance of cell-to-cell contact for effective and increased metabolic complementation.
Importance:
This research holds crucial implications for combating chronic infections, where multiple pathogens coexist and interact within the same environment. By uncovering the dynamic exchange of pyrimidines between Pseudomonas aeruginosa (PA) and Staphylococcus aureus (SA), our study reveals a previously unrecognized aspect of interspecies cooperation. The observed enhanced growth of a pyrimidine-deficient PA strain when co-cultured with SA suggests potential avenues for understanding and disrupting bacterial metabolic interdependencies in chronic infection settings. Furthermore, our findings highlight the mechanisms involved in metabolic exchange, emphasizing the importance of cell-to-cell contact. This research explored essential metabolic interactions to address the challenges posed by difficult-to-treat chronic infections.
Insights
Chronic infections involve complex pathogen interactions. This study shows pyrimidine exchange between Pseudomonas aeruginosa (PA) and other bacteria, like Staphylococcus aureus (SA), aids survival and highlights cell-to-cell contact importance.
Area of Science:
- Microbiology
- Infectious Diseases
- Bacterial Pathogenesis
Background:
- Chronic infections involve polymicrobial communities where pathogen interactions dictate outcomes.
- Bacterial adaptation in nutrient-rich environments can lead to metabolic interdependencies.
- Pseudomonas aeruginosa (PA) and Staphylococcus aureus (SA) can cooperate via purine exchange.
Purpose of the Study:
- To investigate pyrimidine exchange between PA and other pathogens.
- To understand the role of exogenous DNA (eDNA) and cell-to-cell contact in metabolic complementation.
- To explore mechanisms of interspecies cooperation in chronic infections.
Main Methods:
- Co-culturing a pyrimidine-deficient PA transposon mutant with wild-type PA, SA, Acinetobacter baumannii (AB), and Enterococcus faecalis (EF).
- Assessing bacterial growth and fitness under different conditions.
- Performing chemical complementation experiments using eDNA and uridine-5'-monophosphate.
Main Results:
- Pyrimidine-deficient PA showed improved growth when co-cultured with wild-type PA, SA, AB, and EF.
- eDNA and uridine-5'-monophosphate partially rescued PA growth, but less effectively than intact cells.
- Cell-to-cell contact was crucial for effective metabolic complementation, suggesting mechanisms beyond simple eDNA or metabolite release.
Conclusions:
- Pyrimidine exchange is a key metabolic interaction facilitating cooperation between PA and other pathogens in chronic infections.
- While eDNA plays a role, active mechanisms and cell-to-cell contact are more significant for interspecies metabolic complementation.
- Understanding these interactions is vital for developing strategies against difficult-to-treat chronic infections.
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