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A Comparative Approach to Characterize the Landscape of Host-Pathogen Protein-Protein Interactions
Published on: July 18, 2013
Exploring the host-pathogen interaction and genome analysis of multidrug-resistant bacterial pathogen Proteus penneri
Vikash Kumar1, Basanta Kumar Das1, Suvra Roy1
1Aquatic Environmental Biotechnology (AEB) Division, Indian Council of Agricultural Research (ICAR)-Central Inland Fisheries Research Institute (CIFRI), Barrackpore, India.
Abstract:
Multidrug-resistant (MDR) bacterial pathogens represent an escalating challenge to sustainable aquaculture, particularly in high-value freshwater species such as Labeo rohita, a cornerstone of South Asian aquaculture. This study provides the first comprehensive integration of genomic, immunological, and microbiome analyses to characterize Proteus penneri as an emerging MDR pathogen associated with severe disease manifestations in L. rohita, including exophthalmia, ulceration, and hemorrhage. Robust identification through biochemical assays, 16S rRNA sequencing, and phylogenetic analysis confirms the clinical relevance of this isolate. Functional assays demonstrated pronounced virulence, evidenced by hemolysin activity, extensive histopathological damage, and dose-dependent mortality, underscoring its pathogenic capacity in vivo. The observed resistance to multiple frontline antibiotic classes, including tetracyclines, macrolides, and carbapenems, highlights a critical therapeutic limitation in aquaculture settings. Genomic analysis further revealed a diverse repertoire of antimicrobial resistance genes, virulence determinants (notably biofilm formation and secretion systems), and mobile genetic elements, suggesting a strong potential for persistence, adaptability, and horizontal gene transfer. Infection-associated gut microbiome disruption, marked by elevated MAR indices and enrichment of virulence-associated taxa, indicates that P. penneri not only exploits host tissues but also reshapes the microbial ecosystem in ways that may exacerbate disease severity and resistance dissemination. Concurrently, heightened serum cortisol, C3, and Hsp70 levels, along with transcriptional upregulation of key immune and stress-related genes (hsp70, nod, il6, sod, c3, and myd88), reflect an intense pro-inflammatory and physiological stress response. In silico docking analyses implicating myd88-lipopolysaccharide interactions provide mechanistic insight into potential immune-modulatory strategies employed by the pathogen. Collectively, these findings delineate a multifactorial basis for P. penneri virulence and MDR, emphasizing its significance as an emerging aquaculture pathogen. Future research should prioritize functional validation of key virulence and resistance genes, longitudinal surveillance to assess transmission dynamics and AMR spread, and experimental evaluation of alternative disease mitigation strategies, including probiotics, phage therapy, and immune-modulating interventions, to reduce antibiotic reliance and enhance fish health resilience in aquaculture systems.
Insights
Multidrug-resistant Proteus penneri is a growing threat to Labeo rohita aquaculture, causing severe disease and antibiotic resistance. This study integrates genomics, immunology, and microbiome analysis to understand its virulence and inform mitigation strategies.
Area of Science:
- Aquatic animal health
- Microbiology
- Genomics
- Immunology
Background:
- Multidrug-resistant (MDR) pathogens pose a significant threat to sustainable aquaculture, especially for high-value freshwater fish like Labeo rohita.
- Proteus penneri is identified as an emerging MDR pathogen causing severe disease in L. rohita, including exophthalmia, ulceration, and hemorrhage.
Purpose of the Study:
- To comprehensively characterize Proteus penneri as an emerging MDR pathogen in Labeo rohita.
- To integrate genomic, immunological, and microbiome analyses to understand its virulence, antimicrobial resistance, and host-pathogen interactions.
Main Methods:
- Biochemical assays, 16S rRNA sequencing, and phylogenetic analysis for pathogen identification.
- In vivo and in vitro functional assays to assess virulence (hemolysin activity, histopathology, mortality).
- Genomic analysis for antimicrobial resistance genes, virulence factors, and mobile genetic elements.
- Gut microbiome analysis (MAR indices, taxa enrichment).
- Immunological analysis (serum cortisol, C3, Hsp70 levels; gene expression profiling).
- In silico docking analysis (myd88-LPS interaction).
Main Results:
- Proteus penneri confirmed as a virulent MDR pathogen in L. rohita, exhibiting resistance to multiple antibiotic classes and possessing diverse virulence determinants.
- Genomic analysis revealed genes for antimicrobial resistance, biofilm formation, secretion systems, and mobile genetic elements, indicating adaptability and potential for gene transfer.
- Infection led to gut microbiome disruption and a significant host immune response, including elevated stress markers and pro-inflammatory gene expression.
- In silico analysis suggested potential immune evasion mechanisms involving myd88-lipopolysaccharide interactions.
Conclusions:
- Proteus penneri presents a multifactorial threat due to its virulence and MDR, necessitating urgent attention in aquaculture.
- Understanding its genomic, immunological, and microbiome impact is crucial for developing effective disease management strategies.
- Future research should focus on validating virulence factors, tracking AMR spread, and exploring alternative interventions like probiotics and phage therapy to reduce antibiotic reliance.
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