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Updated: Jun 24, 2026

A Murine Pancreatic Islet Cell-based Screening for Diabetogenic Environmental Chemicals
Published on: June 25, 2018
Binding of SARS coronavirus to its receptor damages islets and causes acute diabetes
Jin-Kui Yang1, Shan-Shan Lin, Xiu-Juan Ji
1Department of Endocrinology, Beijing Tongren Hospital, Capital Medical University, China. yangjk@trhos.com
Abstract:
Multiple organ damage in severe acute respiratory syndrome (SARS) patients is common; however, the pathogenesis remains controversial. This study was to determine whether the damage was correlated with expression of the SARS coronavirus receptor, angiotensin converting enzyme 2 (ACE2), in different organs, especially in the endocrine tissues of the pancreas, and to elucidate the pathogenesis of glucose intolerance in SARS patients. The effect of clinical variables on survival was estimated in 135 SARS patients who died, 385 hospitalized SARS patients who survived, and 19 patients with non-SARS pneumonia. A total of 39 SARS patients who had no previous diabetes and received no steroid treatment were compared to 39 matched healthy siblings during a 3-year follow-up period. The pattern of SARS coronavirus receptor-ACE2 proteins in different human organs was also studied. Significant elevations in oxygen saturation, serum creatinine, lactate dehydrogenase, creatine kinase MB isoenzyme, and fasting plasma glucose (FPG), but not in alanine transaminase were predictors for death. Abundant ACE2 immunostaining was found in lung, kidney, heart, and islets of pancreas, but not in hepatocytes. Twenty of the 39 followed-up patients were diabetic during hospitalization. After 3 years, only two of these patients had diabetes. Compared with their non-SARS siblings, these patients exhibited no significant differences in FPG, postprandial glucose (PPG), and insulin levels. The organ involvements of SARS correlated with organ expression of ACE2. The localization of ACE2 expression in the endocrine part of the pancreas suggests that SARS coronavirus enters islets using ACE2 as its receptor and damages islets causing acute diabetes.
Insights
Severe acute respiratory syndrome (SARS) damages organs by utilizing the angiotensin converting enzyme 2 (ACE2) receptor. ACE2 expression in the pancreas suggests SARS coronavirus can cause acute diabetes by damaging pancreatic islets.
Area of Science:
- Virology
- Pathogenesis
- Endocrinology
Background:
- Multiple organ damage is common in severe acute respiratory syndrome (SARS) patients, but its cause is unclear.
- The role of the SARS coronavirus receptor, angiotensin converting enzyme 2 (ACE2), in organ damage and glucose intolerance is debated.
Purpose of the Study:
- To investigate the correlation between organ damage in SARS and ACE2 expression, particularly in pancreatic endocrine tissues.
- To elucidate the pathogenesis of glucose intolerance in SARS patients.
Main Methods:
- Clinical variables predicting survival were analyzed in SARS patients and controls.
- ACE2 protein expression was studied in various human organs.
- A 3-year follow-up of SARS patients without prior diabetes was conducted, comparing them to healthy siblings.
Main Results:
- Elevated oxygen saturation, serum creatinine, lactate dehydrogenase, creatine kinase MB isoenzyme, and fasting plasma glucose predicted death.
- ACE2 was abundant in the lungs, kidneys, heart, and pancreatic islets, but not hepatocytes.
- SARS patients who developed diabetes during hospitalization showed resolution in most cases after 3 years, with no significant long-term differences in glucose or insulin levels compared to siblings.
Conclusions:
- Organ involvement in SARS correlates with ACE2 expression in those organs.
- ACE2 in pancreatic islets suggests SARS coronavirus targets these cells, leading to acute diabetes.
- While SARS can cause temporary diabetes, long-term glucose intolerance is not a significant outcome in most patients.
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