Related Experiment Video
Updated: May 14, 2026

Analysis of Non-Human Primate Pancreatic Islet Oxygen Consumption
Published on: December 18, 2019
Pancreatic inflammation and increased islet macrophages in insulin-resistant juvenile primates
L E Nicol1, W F Grant, W R Grant
1Pediatrics, Division of Neurosciences, Oregon National Primate Research Center Pape Pediatric Research Institute, Oregon Health and Science University, CDRCP, 707 SW Gaines Street, Portland, Oregon 97239-3098, USA. nicol@ohsu.edu
Insights
High-fat diets in juvenile primates show increased pancreatic inflammation and immune cell infiltration before obesity or glucose issues arise. This suggests early immune responses contribute to metabolic dysfunction in children on similar diets.
Area of Science:
- Metabolic disease research
- Pediatric endocrinology
- Immunology
Background:
- Chronic high caloric intake drives pediatric obesity and related morbidities.
- Early metabolic dysfunction in children often involves insulin resistance, with unclear links to innate immunity.
- The role of pancreatic inflammation in early metabolic dysfunction from high-fat diets (HFD) in children is not well understood.
Purpose of the Study:
- To investigate pancreatic inflammatory markers in juvenile nonhuman primates (NHPs) exposed to a chronic HFD.
- To determine if pancreatic inflammation precedes significant obesity or glucose dysregulation in this model.
- To explore the association between pancreatic inflammation and early insulin resistance.
Main Methods:
- Juvenile Japanese macaques were exposed to a HFD from in utero to necropsy.
- Pancreatic tissue was analyzed for cytokine expression and islet-associated macrophages.
- Intravenous glucose tolerance test (IVGTT) parameters were correlated with cytokine expression.
Main Results:
- The HFD cohort exhibited a twofold increase in interleukin 6 (IL6) before significant glucose dysregulation.
- A sexually dimorphic (male) increase in interleukin 1 beta (IL1β) correlated with higher fasting glucose.
- Increased numbers of islet-associated macrophages were observed in HFD-fed NHPs.
Conclusions:
- Juvenile NHPs on a chronic HFD show increased pancreatic inflammatory markers and innate immune cell infiltration prior to significant obesity or glucose dysregulation.
- These findings suggest that pancreatic inflammation is an early event in HFD-induced metabolic dysfunction.
- The study highlights the relevance of NHP models for understanding early pediatric metabolic disease driven by HFD.
Abstract:
Chronic high caloric intake has contributed to the increased prevalence of pediatric obesity and related morbidities. Most overweight or obese children, however, do not present with frank metabolic disease but rather insulin resistance or subclinical precursors. The innate immune system plays a role in the pathophysiology of type 2 diabetes but how it contributes to early metabolic dysfunction in children on chronic high-fat diet (HFD) is unclear. We hypothesize that such inflammation is present in the pancreas of children and is associated with early insulin resistance. We used nonhuman primate (NHP) juveniles exposed to chronic HFD as a model of early pediatric metabolic disease to demonstrate increased pancreatic inflammatory markers before the onset of significant obesity or glucose dysregulation. Pancreata from 13-month-old Japanese macaques exposed to a HFD from in utero to necropsy were analyzed for expression of cytokines and islet-associated macrophages. Parameters from an intravenous glucose tolerance test were correlated with cytokine expression. Before significant glucose dysregulation, the HFD cohort had a twofold increase in interleukin 6 (IL6), associated with decreased first-phase insulin response and a sexually dimorphic (male) increase in IL1β correlating with increased fasting glucose levels. The number of islet-associated macrophages was also increased. Pancreata from juvenile NHP exposed to HFD have increased inflammatory markers and evidence of innate immune infiltration before the onset of significant obesity or glucose dysregulation. Given the parallel development of metabolic disease between humans and NHPs, these findings have strong relevance to the early metabolic disease driven by a chronic HFD in children.
More Related Videos
07:44Surgical Injury to the Mouse Pancreas through Ligation of the Pancreatic Duct as a Model for Endocrine and Exocrine Reprogramming and Proliferation
Published on: August 7, 2015
03:07Development and Validation of a Methodology for Establishing Obese Rat Models with Typical Fatty Pancreas
Published on: November 11, 2025
Related Concept Videos
Type I Diabetes II: Pathophysiology
Chronic Pancreatitis II: Pathophysiology
Type II Diabetes II: Pathophysiology
Chronic Pancreatitis I: Introduction
Chronic Pancreatitis I: Introduction
Pancreatitis is the inflammation of the pancreas, which occurs when the immune system becomes active and causes swelling, pain, and disruptions in organ function. Pancreatitis can manifest as either an acute or chronic condition.
Acute pancreatitis arises suddenly and lasts for a brief duration, while chronic pancreatitis is a long-term affliction...
Insulin Secretory Vesicles