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Non-Invasive Model of Neuropathogenic Escherichia coli Infection in the Neonatal Rat
Published on: October 29, 2014
Novel Small Molecule Growth Inhibitor Affecting Bacterial Outer Membrane Reduces Extraintestinal Pathogenic
Dipak Kathayat1, Yosra A Helmy1, Loic Deblais1
1Center for Food Animal Health, Department of Animal Sciences, The Ohio State Universitygrid.261331.4, Wooster, Ohio, USA.
Abstract:
Avian pathogenic Escherichia coli (APEC), a subgroup of extraintestinal pathogenic E. coli (ExPEC), causes colibacillosis in chickens and is reportedly implicated in urinary tract infections and meningitis in humans. A major limitation for the current ExPEC antibiotic therapy is the development of resistance, and antibacterial drugs that can circumvent this problem are critically needed. Here, we evaluated eight novel membrane-affecting anti-APEC small molecule growth inhibitors (GIs), identified in our previous study, against APEC infection in chickens. Among the GIs tested, GI-7 (the most effective), when administered orally (1 mg/kg of body weight), reduced the mortality (41.7%), severity of lesions (62.9%), and APEC load (2.6 log) in chickens. Furthermore, GI-7 administration at an optimized dose (60 mg/liter) in drinking water also reduced the mortality (14.7%), severity of lesions (29.5%), and APEC load (2.2 log) in chickens. The abundances of Lactobacillus and oleate were increased in the cecum and serum, respectively, of GI-7-treated chickens. Pharmacokinetic analysis revealed that GI-7 was readily absorbed with minimal accumulation in the tissues. Earlier, we showed that GI-7 induced membrane blebbing and increased membrane permeability in APEC, suggesting an effect on the APEC membrane. Consistent with this finding, the expression of genes essential for maintaining outer membrane (OM) integrity was downregulated in GI-7-treated APEC. Furthermore, decreased levels of lipopolysaccharide (LPS) transport (Lpt) proteins and LPS were observed in GI-7-treated APEC. However, the mechanism of action of GI-7 currently remains unknown and needs further investigation. Our studies suggest that GI-7 represents a promising novel lead compound that can be developed to treat APEC infection in chickens and related human ExPEC infections. IMPORTANCE APEC is a subgroup of ExPEC, and genetic similarities of APEC with human ExPECs, including uropathogenic E. coli (UPEC) and neonatal meningitis E. coli (NMEC), have been reported. Our study identified a novel small molecule growth inhibitor, GI-7, effective in reducing APEC infection in chickens with an efficacy similar to that of the currently used antibiotic sulfadimethoxine, notably with an 8-times-lower dose. GI-7 affects the OM integrity and decreases the Lpt protein and LPS levels in APEC, an antibacterial mechanism that can overcome the antibiotic resistance problem. Overall, GI-7 represents a promising lead molecule/scaffold for the development of novel antibacterial therapies that could have profound implications for treating APEC infections in chickens, as well as human infections caused by ExPECs and other related Gram-negative bacteria. Further elucidation of the mechanism of action of GI-7 and identification of its target(s) in APEC will benefit future novel antibacterial development efforts.
Insights
A novel small molecule, GI-7, effectively treats avian pathogenic E. coli (APEC) infections in chickens by targeting bacterial membranes. This promising antibacterial agent offers a new strategy against antibiotic-resistant E. coli infections in both poultry and humans.
Area of Science:
- Microbiology
- Veterinary Medicine
- Pharmacology
Background:
- Avian pathogenic Escherichia coli (APEC) causes significant disease in poultry and shares genetic similarities with human extraintestinal pathogenic E. coli (ExPEC).
- Antibiotic resistance in ExPEC necessitates the development of novel therapeutic agents.
- Membrane-targeting small molecules offer a potential strategy to overcome existing resistance mechanisms.
Purpose of the Study:
- To evaluate the efficacy of novel membrane-affecting anti-APEC small molecule growth inhibitors (GIs) in a chicken infection model.
- To investigate the effects of the most effective compound, GI-7, on APEC infection parameters and host-microbiome interactions.
- To explore the preliminary mechanism of action of GI-7 on APEC.
Main Methods:
- In vivo efficacy studies in chickens infected with APEC, administering GI-7 orally and in drinking water.
- Assessment of mortality, lesion severity, and bacterial load.
- Analysis of cecal and serum microbiota and metabolites, pharmacokinetic profiling, and examination of APEC outer membrane integrity and gene expression.
Main Results:
- GI-7 significantly reduced APEC-induced mortality, lesion severity, and bacterial load in chickens via both oral and drinking water administration.
- GI-7 treatment increased the abundance of Lactobacillus in the cecum and oleate in serum.
- GI-7 demonstrated favorable pharmacokinetics with minimal tissue accumulation and affected APEC outer membrane integrity by downregulating genes and reducing lipopolysaccharide (LPS) transport proteins.
Conclusions:
- GI-7 is a promising novel small molecule effective against APEC infections in chickens, showing comparable efficacy to existing antibiotics at a significantly lower dose.
- GI-7's mechanism, involving disruption of outer membrane integrity, presents a viable approach to combat antibiotic-resistant Gram-negative bacteria.
- Further research into GI-7's precise mechanism of action and targets is warranted for developing new antibacterial therapies for both veterinary and human medicine.
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