Effects of a Potential Probiotic Strain Lactobacillus gasseri ATCC 33323 on Helicobacter pylori-Induced Inflammatory Response and Gene Expression in Coinfected Gastric Epithelial Cells.
Mahdieh YarmohammadiAbbas YadegarMaryam Tajabadi EbrahimiMohammad Reza ZaliPublished in: Probiotics and antimicrobial proteins (2020)
In the present study, we aimed to investigate the modulatory effects of a potential probiotic bacterium Lactobacillus gasseri ATCC 33323 on Helicobacter pylori-induced inflammatory response and gene expression in human gastric adenocarcinoma (AGS) cell line. The gastric epithelial cells were coinfected with a collection of H. pylori clinical strains alone or in combination with L. gasseri at a multiplicity of infection (MOI) of 1:100 for each bacterium, and incubated for different time points of 3, 6, and 12 h. IL-8 secretion from coinfected AGS cells after incubation at each time point was measured by an enzyme-linked immunosorbent assay (ELISA). The mRNA expression of IL-8, Bcl-2, β-catenin, integrin α5, and integrin β1 genes was determined by quantitative RT-PCR amplification of total RNA extracted from coinfected epithelial cells. L. gasseri significantly (P < 0.05 and P < 0.01) decreased the production of IL-8 in AGS cells coinfected with H. pylori strains at 6 h post-infection. We also detected that L. gasseri significantly (P < 0.05) down-regulated the gene expression level of IL-8 in H. pylori-stimulated AGS cells after 6 and 12 h of coinfection. Similarly, L. gasseri caused a significant decrease (P < 0.05) in mRNA expression of Bcl-2, β-catenin, integrin α5, and integrin β1 genes in AGS cells at 3 and 6 h after infection with H. pylori strains as compared with non-infected control cells. In conclusion, our results demonstrated that L. gasseri ameliorates H. pylori-induced inflammation and could be developed as a supplementation to the current treatment regimens administrated against H. pylori infection.
Keyphrases
- helicobacter pylori
- gene expression
- induced apoptosis
- inflammatory response
- cell cycle arrest
- escherichia coli
- oxidative stress
- dna methylation
- cell proliferation
- high glucose
- endothelial cells
- endoplasmic reticulum stress
- squamous cell carcinoma
- diabetic rats
- genome wide
- epithelial mesenchymal transition
- signaling pathway
- cell death
- radiation therapy
- mass spectrometry
- cell migration
- risk assessment
- locally advanced
- pi k akt
- monoclonal antibody
- combination therapy
- genome wide identification