Helicobacter pylori and Gastric Cancer: Pathogenetic Mechanisms
Abstract
:1. Introduction
2. Role of Chronic Inflammation
2.1. Innate Immune Response and Oxidative Stress
2.2. Adaptive Immune Response
3. H. pylori Virulence Factors
3.1. Cytotoxin-Associated Gene A (CagA) and the Cytotoxin-Associated Gene Pathogenicity Island (cagPAI)
3.2. Vacuolating Cytotoxin A (VacA)
4. Genomic Instability
4.1. H. pylori Infection and the MMR Pathway
4.2. H. pylori Infection and the BER Pathway
4.3. H. pylori Infection and other Repair Pathways
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Category | Target | Effects | Disease Course | Ref |
---|---|---|---|---|
Oxidative stress | Neutrophils/macrophages | Increased production of ROS and RNS. | Onset | [14] |
SMOX | Increased production of H2O2 as a by-product of conversion of spermine to spermidine. | Onset | [15] | |
Adaptive immune response | Th1/Th17 cells | Increased synthesis of IFN-γ, TNF-α, and IL-12. | Onset, development | [16] |
SMAD7 | Prevents endogenous TGF-β1 from dampening the ongoing tissue-damaging Th1 response. | Development | [17] | |
IL-21 | Increased production of MMP-2 and MMP-9 in a NF-ĸB-dependent fashion. | Development | [18] | |
IL-17A | Increased production of IL-1β, IL-6, TNF-α, and MMPs. | Development | [19] |
Repair Pathway | Target | H. pylori–Associated Events | Disease Course | Ref |
---|---|---|---|---|
MMR | MLH1, PMS1, PMS2, MSH2, and MSH6 | Decreased level following H. pylori infection | Onset, development | [65] |
MLH1 and MSH2 | Increased expression after H. pylori eradication | Onset, development | [65,66] | |
MLH1 | Decreased fraction of MLH1-positive epithelial cell nuclei in H. pylori-infected patients | Onset, development | [67] | |
MMR genes | Decreased expression and activity after H. pylori infection both in vitro and in vivo | Onset, development | [68] | |
BER | APE1 | Decreased expression after H. pylori infection resulting in an imbalance between the generation and repair of AP sites, which is highly mutagenic | Onset, development | [68] |
APE1 | Increased levels in both cultured cells and in primary gastric epithelial cells during H. pylori infection | / | [22] | |
APE1 | Upregulation during H. pylori infection, downregulation after bacterial eradication | / | [69] | |
HR and NHEJ | ATR, ATRIP, RAD51, RPA1, MRE11, and NBS1 | Decreased expression following H. pylori infection | Onset, development | [70] |
NHEJ-related genes | Increased expression after H. pylori infection | Onset, development | [71] | |
SNHG17 | Shifting of the DSB repair balance from HR toward NHEJ | Onset, development | [72] |
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Salvatori, S.; Marafini, I.; Laudisi, F.; Monteleone, G.; Stolfi, C. Helicobacter pylori and Gastric Cancer: Pathogenetic Mechanisms. Int. J. Mol. Sci. 2023, 24, 2895. https://doi.org/10.3390/ijms24032895
Salvatori S, Marafini I, Laudisi F, Monteleone G, Stolfi C. Helicobacter pylori and Gastric Cancer: Pathogenetic Mechanisms. International Journal of Molecular Sciences. 2023; 24(3):2895. https://doi.org/10.3390/ijms24032895
Chicago/Turabian StyleSalvatori, Silvia, Irene Marafini, Federica Laudisi, Giovanni Monteleone, and Carmine Stolfi. 2023. "Helicobacter pylori and Gastric Cancer: Pathogenetic Mechanisms" International Journal of Molecular Sciences 24, no. 3: 2895. https://doi.org/10.3390/ijms24032895
APA StyleSalvatori, S., Marafini, I., Laudisi, F., Monteleone, G., & Stolfi, C. (2023). Helicobacter pylori and Gastric Cancer: Pathogenetic Mechanisms. International Journal of Molecular Sciences, 24(3), 2895. https://doi.org/10.3390/ijms24032895