Product Citations: 9

Diet-driven differential response of Akkermansia muciniphila modulates pathogen susceptibility.

In Molecular Systems Biology on 1 June 2024 by Wolter, M., Grant, E. T., et al.

The erosion of the colonic mucus layer by a dietary fiber-deprived gut microbiota results in heightened susceptibility to an attaching and effacing pathogen, Citrobacter rodentium. Nevertheless, the questions of whether and how specific mucolytic bacteria aid in the increased pathogen susceptibility remain unexplored. Here, we leverage a functionally characterized, 14-member synthetic human microbiota in gnotobiotic mice to deduce which bacteria and functions are responsible for the pathogen susceptibility. Using strain dropouts of mucolytic bacteria from the community, we show that Akkermansia muciniphila renders the host more vulnerable to the mucosal pathogen during fiber deprivation. However, the presence of A. muciniphila reduces pathogen load on a fiber-sufficient diet, highlighting the context-dependent beneficial effects of this mucin specialist. The enhanced pathogen susceptibility is not owing to altered host immune or pathogen responses, but is driven by a combination of increased mucus penetrability and altered activities of A. muciniphila and other community members. Our study provides novel insights into the mechanisms of how discrete functional responses of the same mucolytic bacterium either resist or enhance enteric pathogen susceptibility.
© 2024. The Author(s).

  • Mus musculus (House mouse)
  • Biochemistry and Molecular biology

Inflammatory bowel diseases (IBDs) are chronic conditions characterized by periods of spontaneous intestinal inflammation and are increasing in industrialized populations. Combined with host genetics, diet and gut bacteria are thought to contribute prominently to IBDs, but mechanisms are still emerging. In mice lacking the IBD-associated cytokine, interleukin-10, we show that a fiber-deprived gut microbiota promotes the deterioration of colonic mucus, leading to lethal colitis. Inflammation starts with the expansion of natural killer cells and altered immunoglobulin-A coating of some bacteria. Lethal colitis is then driven by Th1 immune responses to increased activities of mucin-degrading bacteria that cause inflammation first in regions with thinner mucus. A fiber-free exclusive enteral nutrition diet also induces mucus erosion but inhibits inflammation by simultaneously increasing an anti-inflammatory bacterial metabolite, isobutyrate. Our findings underscore the importance of focusing on microbial functions-not taxa-contributing to IBDs and that some diet-mediated functions can oppose those that promote disease.
Copyright © 2024 The Authors. Published by Elsevier Inc. All rights reserved.

  • Mus musculus (House mouse)
  • Cell Biology
  • Immunology and Microbiology

Short-term dietary changes can result in mucosal and systemic immune depression.

In Nature Immunology on 1 September 2023 by Siracusa, F., Schaltenberg, N., et al.

Omnivorous animals, including mice and humans, tend to prefer energy-dense nutrients rich in fat over plant-based diets, especially for short periods of time, but the health consequences of this short-term consumption of energy-dense nutrients are unclear. Here, we show that short-term reiterative switching to 'feast diets', mimicking our social eating behavior, breaches the potential buffering effect of the intestinal microbiota and reorganizes the immunological architecture of mucosa-associated lymphoid tissues. The first dietary switch was sufficient to induce transient mucosal immune depression and suppress systemic immunity, leading to higher susceptibility to Salmonella enterica serovar Typhimurium and Listeria monocytogenes infections. The ability to respond to antigenic challenges with a model antigen was also impaired. These observations could be explained by a reduction of CD4+ T cell metabolic fitness and cytokine production due to impaired mTOR activity in response to reduced microbial provision of fiber metabolites. Reintroducing dietary fiber rewired T cell metabolism and restored mucosal and systemic CD4+ T cell functions and immunity. Finally, dietary intervention with human volunteers confirmed the effect of short-term dietary switches on human CD4+ T cell functionality. Therefore, short-term nutritional changes cause a transient depression of mucosal and systemic immunity, creating a window of opportunity for pathogenic infection.
© 2023. The Author(s).

  • Immunology and Microbiology

ApoE isoform- and microbiota-dependent progression of neurodegeneration in a mouse model of tauopathy.

In Science on 13 January 2023 by Seo, D. O., O'Donnell, D., et al.

Tau-mediated neurodegeneration is a hallmark of Alzheimer's disease. Primary tauopathies are characterized by pathological tau accumulation and neuronal and synaptic loss. Apolipoprotein E (ApoE)-mediated neuroinflammation is involved in the progression of tau-mediated neurodegeneration, and emerging evidence suggests that the gut microbiota regulates neuroinflammation in an APOE genotype-dependent manner. However, evidence of a causal link between the microbiota and tau-mediated neurodegeneration is lacking. In this study, we characterized a genetically engineered mouse model of tauopathy expressing human ApoE isoforms reared under germ-free conditions or after perturbation of their gut microbiota with antibiotics. Both of these manipulations reduced gliosis, tau pathology, and neurodegeneration in a sex- and ApoE isoform-dependent manner. The findings reveal mechanistic and translationally relevant interrelationships between the microbiota, neuroinflammation, and tau-mediated neurodegeneration.

  • Mus musculus (House mouse)
  • Neuroscience

The transcription factor Zeb1 controls homeostasis and function of type 1 conventional dendritic cells

Preprint on Research Square on 9 January 2023 by Wang, Y., Zhang, Q., et al.

Type 1 conventional dendritic cells (cDC1s) are the most efficient cross-presenting cells that induce protective cytotoxic T cell response. However, the regulation of their homeostasis and function is incompletely understood. Here we observed a selective reduction of splenic cDC1s in mice with Zeb1 deficiency in dendritic cells, due to excessive cell death, rendering mice higher resistance to Listeria infection. Moreover, cDC1s from other sources of Zeb1 -deficient mice displayed impaired cross-presentation of exogenous antigens, resulting in compromised antitumor CD8 + T cell responses. Mechanistically, Zeb1 facilitated the production of phagosomal reactive oxygen species by repressing the expression of microRNA-96 that targeted Cybb mRNA of NADPH oxidase Nox2. Consequently, loss of Zeb1 in cDC1s diminished phagosomal membrane rupture that permits antigen export to the cytosol. Cybb re-expression in Zeb1 -deficient cDC1s fully restored the defective cross-presentation while microRNA-96 overexpression in Zeb1 -sufficient cDC1s inhibited cross-presentation. Therefore, our results identify a novel Zeb1-microRNA-96-Cybb pathway that controls cross-presentation in cDC1s and uncover an essential role of Zeb1in cDC1 homeostasis.

  • FC/FACS
  • Mus musculus (House mouse)
  • Biochemistry and Molecular biology
  • Immunology and Microbiology
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