Related Experiment Video
Updated: Feb 1, 2026

Regulatory T cells: Therapeutic Potential for Treating Transplant Rejection and Type I Diabetes
Published on: August 20, 2007
Predicting and understanding the response to short-term intensive insulin therapy in people with early type 2
Yury O Nunez Lopez1, Ravi Retnakaran2, Bernard Zinman2
1Translational Research Institute for Metabolism and Diabetes, Florida Hospital, Orlando, FL 32804, USA.
Objective:
Short-term intensive insulin therapy (IIT) early in the course of type 2 diabetes acutely improves beta-cell function with long-lasting effects on glycemic control. However, conventional measures cannot determine which patients are better suited for IIT, and little is known about the molecular mechanisms determining response. Therefore, this study aimed to develop a model that could accurately predict the response to IIT and provide insight into molecular mechanisms driving such response in humans.
Methods:
Twenty-four patients with early type 2 diabetes were assessed at baseline and four weeks after IIT, consisting of basal detemir and premeal insulin aspart. Twelve individuals had a beneficial beta-cell response to IIT (responders) and 12 did not (nonresponders). Beta-cell function was assessed by multiple methods, including Insulin Secretion-Sensitivity Index-2. MicroRNAs (miRNAs) were profiled in plasma samples before and after IIT. The response to IIT was modeled using a machine learning algorithm and potential miRNA-mediated regulatory mechanisms assessed by differential expression, correlation, and functional network analyses (FNA).
Results:
Baseline levels of circulating miR-145-5p, miR-29c-3p, and HbA1c accurately (91.7%) predicted the response to IIT (OR = 121 [95% CI: 6.7, 2188.3]). Mechanistically, a previously described regulatory loop between miR-145-5p and miR-483-3p/5p, which controls TP53-mediated apoptosis, appears to also occur in our study population of humans with early type 2 diabetes. In addition, significant (fold change > 2, P < 0.05) longitudinal changes due to IIT in the circulating levels of miR-138-5p, miR-192-5p, miR-195-5p, miR-320b, and let-7a-5p further characterized the responder group and significantly correlated (|r| > 0.4, P < 0.05) with the changes in measures of beta-cell function and insulin sensitivity. FNA identified a network of coordinately/cooperatively regulated miRNA-targeted genes that potentially drives the IIT response through negative regulation of apoptotic processes that underlie beta cell dysfunction and concomitant positive regulation of proliferation.
Conclusions:
Responses to IIT in people with early type 2 diabetes are associated with characteristic miRNA signatures. This study represents a first step to identify potential responders to IIT (a current limitation in the field) and provides important insight into the pathophysiologic determinants of the reversibility of beta-cell dysfunction. ClinicalTrial.gov identifier: NCT01270789.
Insights
Identifying potential responders to intensive insulin therapy (IIT) in early type 2 diabetes is now possible using baseline miRNA signatures and HbA1c levels. This approach offers insights into the molecular mechanisms underlying beta-cell function recovery.
Area of Science:
- Endocrinology
- Molecular Biology
- Computational Biology
Background:
- Short-term intensive insulin therapy (IIT) improves beta-cell function in early type 2 diabetes, but patient selection remains a challenge.
- The molecular mechanisms driving differential responses to IIT are not well understood.
Purpose of the Study:
- To develop a predictive model for IIT response in early type 2 diabetes.
- To elucidate the molecular mechanisms, particularly microRNA (miRNA) involvement, underlying IIT response.
Main Methods:
- Assessed 24 early type 2 diabetes patients before and after 4 weeks of IIT.
- Utilized machine learning to model IIT response based on baseline clinical data and plasma miRNA profiles.
- Performed differential expression, correlation, and functional network analyses (FNA) to identify miRNA-mediated mechanisms.
Main Results:
- Baseline miR-145-5p, miR-29c-3p, and HbA1c levels accurately predicted IIT response (91.7%).
- Identified a regulatory loop involving miR-145-5p and miR-483-3p/5p in TP53-mediated apoptosis.
- IIT induced significant changes in specific circulating miRNAs (miR-138-5p, miR-192-5p, miR-195-5p, miR-320b, let-7a-5p) correlated with improved beta-cell function and insulin sensitivity.
Conclusions:
- Circulating miRNA signatures characterize IIT responders in early type 2 diabetes.
- This study provides a novel method for identifying potential IIT responders, addressing a clinical limitation.
- Offers insights into the molecular basis of reversible beta-cell dysfunction, potentially involving miRNA-regulated apoptosis and proliferation.
More Related Videos
Related Concept Videos
Diabetes Mellitus: Type 2 and Gestational
Insulin Formulations: Types and Delivery
Short-acting insulins are divided into...
Predicting Products: SN1 vs. SN2
With increased substitution on the alkyl halide,...
Diabetes Mellitus: Overview and Type I Subtype
Type 1 diabetes is an autoimmune disease in which the immune system mistakenly attacks and destroys the insulin-producing beta cells in the pancreas. As a result, the body is unable to produce sufficient insulin, and individuals with...
Understanding the Self
Types of Hormones

