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The LIDPAD Mouse Model Captures the Multisystem Interactions and Extrahepatic Complications in MASLD. | LitMetric

AI Article Synopsis

  • Metabolic dysfunction-associated steatotic liver disease (MASLD) is a growing global health issue, prompting a need for accurate preclinical models to study it.
  • The liver disease progression aggravation diet (LIDPAD) is a new murine model that mimics human MASLD closely, showing significant similarities in disease features and progression within weeks.
  • This model demonstrates responsiveness to dietary changes, making it valuable for researching therapeutic strategies while revealing important interactions between gut health and liver disease.

Article Abstract

Metabolic dysfunction-associated steatotic liver disease (MASLD) represents an impending global health challenge. Current management strategies often face setbacks, emphasizing the need for preclinical models that faithfully mimic the human disease and its comorbidities. The liver disease progression aggravation diet (LIDPAD), a diet-induced murine model, extensively characterized under thermoneutral conditions and refined diets is introduced to ensure reproducibility and minimize species differences. LIDPAD recapitulates key phenotypic, genetic, and metabolic hallmarks of human MASLD, including multiorgan communications, and disease progression within 4 to 16 weeks. These findings reveal gut-liver dysregulation as an early event and compensatory pancreatic islet hyperplasia, underscoring the gut-pancreas axis in MASLD pathogenesis. A robust computational pipeline is also detailed for transcriptomic-guided disease staging, validated against multiple harmonized human hepatic transcriptomic datasets, thereby enabling comparative studies between human and mouse models. This approach underscores the remarkable similarity of the LIDPAD model to human MASLD. The LIDPAD model fidelity to human MASLD is further confirmed by its responsiveness to dietary interventions, with improvements in metabolic profiles, liver histopathology, hepatic transcriptomes, and gut microbial diversity. These results, alongside the closely aligned changing disease-associated molecular signatures between the human MASLD and LIDPAD model, affirm the model's relevance and potential for driving therapeutic development.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11425234PMC
http://dx.doi.org/10.1002/advs.202404326DOI Listing

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