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Updated: Mar 8, 2026

Single-cell RNA Sequencing and Analysis of Human Pancreatic Islets
Published on: July 18, 2019
An 'alpha-beta' of pancreatic islet microribonucleotides
Louise Torp Dalgaard1, Lena Eliasson2
1Department of Science and Environment, Roskilde University, Roskilde, Denmark.
Abstract:
MicroRNAs (miRNAs) are cellular, short, non-coding ribonucleotides acting as endogenous posttranscriptional repressors following incorporation in the RNA-induced silencing complex. Despite being chemically and mechanistically very similar, miRNAs exert a multitude of different cellular effects by acting on mRNA species, whose gene-products partake in a wide array of processes. Here, the aim was to review the knowledge of miRNA expression and action in the islet of Langerhans. We have focused on: 1) physiological consequences of islet or beta cell specific inhibition of miRNA processing, 2) mechanisms regulating processing of miRNAs in islet cells, 3) presence and function of miRNAs in alpha versus beta cells - the two main cell types of islets, and 4) miRNA mediators of beta cell decompensation. It is clear that miRNAs regulate pancreatic islet development, maturation, and function in vivo. Moreover, processing of miRNAs appears to be altered by obesity, diabetes, and aging. A number of miRNAs (such as miR-7, miR-21, miR-29, miR-34a, miR-212/miR-132, miR-184, miR-200 and miR-375) are involved in mediating beta cell dysfunction and/or compensation induced by hyperglycemia, oxidative stress, cytotoxic cytokines, and in rodent models of fetal metabolic programming prediabetes and overt diabetes. Studies of human type 2 diabetic islets underline that these miRNA families could have important roles also in human type 2 diabetes. Furthermore, there is a genuine gap of knowledge regarding miRNA expression and function in pancreatic alpha cells. Progress in this area would be enhanced by improved in vitro alpha cell models and better tools for islet cell sorting.
Insights
MicroRNAs (miRNAs) regulate pancreatic islet development and function. Dysregulation of these molecules is linked to diabetes, with specific miRNAs mediating beta cell dysfunction and compensation in both rodent models and human type 2 diabetes.
Area of Science:
- Endocrinology and Metabolism
- Molecular Biology
- Genetics
Background:
- MicroRNAs (miRNAs) are short, non-coding RNAs that regulate gene expression post-transcriptionally.
- They are crucial for various cellular processes, including pancreatic islet development and function.
- Understanding miRNA roles in islets is vital for metabolic disease research.
Purpose of the Study:
- To review current knowledge on miRNA expression and function within the islet of Langerhans.
- To explore miRNA involvement in islet development, beta cell function, and decompensation.
- To highlight knowledge gaps, particularly concerning alpha cells and miRNA processing.
Main Methods:
- Literature review focusing on miRNA processing, regulation, and function in pancreatic islets.
- Analysis of studies investigating specific miRNAs (e.g., miR-7, miR-21, miR-375) in beta cell dysfunction.
- Examination of evidence from rodent models and human type 2 diabetic islets.
Main Results:
- miRNAs are confirmed regulators of pancreatic islet development, maturation, and function.
- miRNA processing is altered by obesity, diabetes, and aging.
- Specific miRNAs mediate beta cell dysfunction and compensation in response to various stressors and in diabetes models.
Conclusions:
- miRNAs play significant roles in pancreatic islet physiology and pathophysiology, including human type 2 diabetes.
- Further research is needed on miRNA expression and function in pancreatic alpha cells.
- Improved in vitro models and cell sorting techniques are essential for advancing this field.
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