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Vijayan Pillai, V.

Publications and source records attributed to Vijayan Pillai, V..

2 recordsLinked to original sources

Diet-Induced Obesity Exacerbates Helicobacter pylori-Associated Precancerous Phenotypes

Stomach infection with the bacterium Helicobacter pylori (Hp) can cause chronic gastric inflammation, metaplasia (transdifferentiation of mature cell types), dysplasia (abnormal cells), and finally cancer. Obesity can also increase gastric cancer risk. However, host-Hp interactions during obesity are poorly understood. Here we investigated the impact of diet-induced obesity in two mouse models of Hp-associated disease. To model chronic gastric inflammation, we used C57BL/6 mice, and to model more severe disease, we used transgenic mice in which tamoxifen induces gastric expression of a constitutively active Kras allele, leading to metaplasia. We fed mice a high-fat diet (60% kilocalories from fat) to induce obesity, or a matched control diet (10% kilocalories from fat), then infected them with Hp or mock-infected them. In mock-infected C57BL/6 mice, high-fat diet had a minimal impact on gastric pathology and gene expression. In Hp-infected C57BL/6 mice, high-fat diet increased inflammation at the junction between the glandular stomach and non-glandular forestomach, a squamous epithelium similar to the human esophagus, and increased gastric expression of the cancer-associated genes Cldn7 and Reg3g. In KRAS+ mice with or without Hp infection, the impact of diet-induced obesity was more apparent, with increased metaplasia and dysplasia (abnormal cells). As well, high-fat diet caused an expansion of metaplastic pit cells, a lineage we previously found to be associated with Hp-driven inflammation. Thus, in these mouse models, diet-induced obesity does not directly drive gastric immunopathology, but enhances the development of pre-cancerous changes under susceptible conditions. IMPORTANCEMost gastric cancers are caused by stomach infection with the bacterium Helicobacter pylori. However, most infected individuals never develop cancer. Therefore, additional risk factors must tip the balance toward gastric cancer development. Obesity, or excessive body fat accumulation that poses a risk to health, is associated with gastric cancer development. However, specific mechanisms for obesity-driven gastric cancer risk are not well defined. Here we tested the hypothesis that obesity would exacerbate Helicobacter pylori-associated disease phenotypes using two clinically relevant mouse models. In wild-type mice, obesity induced by a very high-fat diet had a minimal impact on the stomach in the absence of infection, but increased the expression of some cancer-associated genes during infection. However, in mice with genetically driven pre-cancer, diet-induced obesity exacerbated the disease pathology, especially in infected mice. Therefore, obesitys impact on gastric cancer risk may be more evident in the later stages of the disease.

microbiology↗

A Caenorhabditis elegans based system for high-throughput functional phenotyping of human gut microbiota

The conventional bottom-up approach to probing the human gut microbiomes link with hosts in germ-free models is hampered by considerable costs and time. To address this, our study introduces the nematode Caenorhabditis elegans as an innovative high-throughput model for exploring the gut microbiomes impact on functional phenotypes. Traditionally, C. elegans studies have used continuous feeding for bacterial administration, a method that is unsuitable for anaerobes. For the first time, we have standardized a protocol for colonizing C. elegans with human gut anaerobes. By screening a microbial culturomics library representing 70% of the gut microbiomes functional capacity, we showed successful colonization for 46% of the library. Functional phenotyping revealed that 5 of 10 strains, previously identified in vitro as inhibiting C. difficile, also inhibited in vivo. Validation of a selected strain in a germ-free mouse model confirmed colonization resistance and an immune response consistent with findings in C. elegans, underscoring the models translational potential.

microbiology↗