DOI: 10.3390/diseases14080280 ISSN: 2079-9721

Beyond Infection: Mitochondrial Reprogramming and Immunometabolic Adaptation in Helicobacter pylori-Associated Gastric MALT Lymphoma

Ciro Gargiulo Isacco, Van Hung Pham, Huong Thien Pham, Kieu Cao Diem Nguyen, Toai Cong Tran, Thach Huy Le, Felicita Jirillo, Emilio Jirillo, Luigi Santacroce

Gastric mucosa-associated lymphoid tissue (MALT) lymphoma, also known clinically as gastric MALT lymphoma (GML) or MALToma, is an indolent B-cell neoplasm strongly associated with chronic Helicobacter pylori (H. pylori) infection. While early-stage disease is based on persistent antigenic stimulation and chronic inflammation, the metabolic and molecular transitions that drive monoclonal B-cell autonomy remain poorly understood. Importantly, H. pylori maintain this long-term colonization by defusing the host’s innate immunity; specifically, its lipid A portion features unique elongated acyl chains, composed of 16–18 carbon atoms, that fail to bind to and activate host TLR4/MD2 receptors, resulting in exceptionally weak endotoxic potency. Persistent colonization relies on key oncoproteins, particularly cytotoxin-associated gene A (CagA) and vacuolar cytotoxin A (VacA), which orchestrate early inflammatory infiltration (neutrophils, Th1, Th2 and Th17 cells) before shifting the microenvironment toward a suppressive regulatory T cell (Treg) phenotype. In this study, we propose a new critical step in the oncogenesis of gastric metastasis: chronic mitochondrial and immunometabolic adaptation within the gastric microenvironment. We claim that H. pylori act not only as a trigger for infection but also as a chronic driver of mitochondrial adaptation to oxidative stress and hypoxia, which subsequently results in defective mitophagy. CagA- and VacA-mediated mitochondrial damage induces reactive oxygen species (ROS) and functional hypoxia, stabilizing HIF-1α to force a glycolytic metabolic shift, while incomplete mitophagy rescues metabolically altered, apoptosis-resistant clones to drive monoclonal B-cell expansion. Within this ecological-microenvironmental framework, the predominantly cytoplasmic sequestration of BCL10 and the NF-κB subunit p65 observed in GML is reinterpreted not as evidence of signaling inactivity, but as a dynamically regulated adaptive state. This configuration is orchestrated by mitochondrial stress responses that enable adaptation to the chronic microenvironmental pressures imposed by H. pylori, acting in concert with the metabolic programs governed by MYC, NRF2, and BCL2. Overall, this review outlines the multi-step pathogenesis of H. pylori-mediated GML, highlighting how mitochondrial dysfunction and metabolic remodeling drive the transition from chronic infection to malignant transformation.

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