AI Article Synopsis

  • Researchers found that problems in the liver can lead to issues in the pancreas, which affects blood sugar levels and can cause diabetes and a liver disease called MASLD.
  • They created a special system that mimics human organs to study how these two organs affect each other when things go wrong, like during early metabolic syndrome.
  • The results showed that when the liver is not working properly, it can send confusing signals to the pancreas, making it harder for the body to control insulin and blood sugar, which could help doctors understand these diseases better and create personalized treatments.

Article Abstract

Preclinical and clinical studies suggest that lipid-induced hepatic insulin resistance is a primary defect that predisposes to dysfunction in pancreatic islets, implicating a perturbed liver-pancreas axis underlying the comorbidity of T2DM and MASLD. To investigate this hypothesis, we developed a human biomimetic microphysiological system (MPS) coupling our vascularized liver acinus MPS (vLAMPS) with primary islets on a chip (PANIS) enabling MASLD progression and islet dysfunction to be quantitatively assessed. The modular design of this system (vLAMPS-PANIS) allows intra-organ and inter-organ dysregulation to be deconvoluted. When compared to normal fasting (NF) conditions, under early metabolic syndrome (EMS) conditions, the standalone vLAMPS exhibited characteristics of early stage MASLD, while no significant differences were observed in the standalone PANIS. In contrast, with EMS, the coupled vLAMPS-PANIS exhibited a perturbed islet-specific secretome and a significantly dysregulated glucose stimulated insulin secretion (GSIS) response implicating direct signaling from the dysregulated liver acinus to the islets. Correlations between several pairs of a vLAMPS-derived and a PANIS-derived secreted factors were significantly altered under EMS, as compared to NF conditions, mechanistically connecting MASLD and T2DM associated hepatic factors with islet-derived GLP-1 synthesis and regulation. Since vLAMPS-PANIS is compatible with patient-specific iPSCs, this platform represents an important step towards addressing patient heterogeneity, identifying complex disease mechanisms, and advancing precision medicine.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11071380PMC
http://dx.doi.org/10.1101/2024.04.22.590598DOI Listing

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