Related Experiment Video
Updated: Mar 3, 2026

Regulatory T cells: Therapeutic Potential for Treating Transplant Rejection and Type I Diabetes
Published on: August 20, 2007
Future challenges and therapeutic opportunities in type 2 diabetes: Changing the paradigm of current therapy
David R Owens1, Louis Monnier2, Anthony H Barnett3,4
1Diabetes Research Unit, Institute of Life Sciences, College of Medicine, Swansea University, Swansea, UK.
Abstract:
Most algorithms for type 2 diabetes mellitus (T2DM) do not recommend treatment escalation until glycated haemoglobin (HbA1c) fails to reach the recommended target of 7% (53 mmol/mol) within approximately 3 months on any treatment regimen ("treat to failure"). Clinical inertia and/or poor adherence to therapy contribute to patients not reaching glycaemic targets when managed according to this paradigm. Clinical inertia exists across the entire spectrum of anti-diabetes therapies, although it is most pronounced when initiating and optimizing insulin therapy. Possible reasons include needle aversion, fear of hypoglycaemia, excessive weight gain and/or the need for increased self-monitoring of blood glucose. Studies have suggested, however, that early intensive insulin therapy in newly diagnosed, symptomatic patients with T2DM with HbA1c >9% (75 mmol/mol) can preserve beta-cell function, thereby modulating the disease process. Furthermore, postprandial plasma glucose is a key component of residual dysglycaemia, evident especially when HbA1c remains above target despite fasting normoglycaemia. Therefore, to achieve near normoglycaemia, additional treatment with prandial insulin or a glucagon-like peptide-1 receptor agonist (GLP-1 RA) is often required. Long- or short-acting GLP-1 RAs offer effective alternatives to basal or prandial insulin in patients inadequately controlled with other therapies or basal insulin alone, respectively. This review highlights the limitations of current algorithms, and proposes an alternative based on the early introduction of insulin therapy and the rationale for the sequential or fixed combination of GLP-1 RAs with insulin ("treat-to-success" paradigm).
Insights
Current type 2 diabetes mellitus (T2DM) treatment algorithms often delay therapy escalation. This review proposes a "treat-to-success" paradigm, advocating for early insulin introduction and combination therapy to improve glycemic control.
Area of Science:
- Endocrinology
- Metabolic Diseases
- Pharmacology
Background:
- Current type 2 diabetes mellitus (T2DM) management often follows a
- treat to failure
- approach, delaying treatment escalation until glycemic targets are missed.
- Clinical inertia and poor adherence contribute to suboptimal glycemic control in T2DM.
- Initiating and optimizing insulin therapy are particularly prone to clinical inertia.
Purpose of the Study:
- To highlight limitations of current T2DM treatment algorithms.
- To propose an alternative
- treat-to-success
- paradigm for T2DM management.
- To explore the rationale for early insulin introduction and combination therapies.
Main Methods:
- Review of current T2DM treatment algorithms and clinical inertia.
- Analysis of studies on early intensive insulin therapy in T2DM.
- Evaluation of glucagon-like peptide-1 receptor agonists (GLP-1 RAs) as therapeutic alternatives.
Main Results:
- Treat to failure
- algorithms are associated with delayed glycemic control.
- Early intensive insulin therapy may preserve beta-cell function in newly diagnosed T2DM.
- GLP-1 RAs offer effective alternatives or adjuncts to insulin therapy.
Conclusions:
- Current T2DM management algorithms have significant limitations.
- An early
- treat-to-success
- paradigm, incorporating early insulin and GLP-1 RAs, is proposed.
- This approach aims to achieve near normoglycemia and potentially modulate T2DM progression.
Related Concept Videos
Diabetes: Management and Pharmacotherapy
Insulin remains the cornerstone of treatment for most patients with type 1 and many...
Diabetes Mellitus: Type 2 and Gestational
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...
Carbohydrate Metabolism
Starch accounts for approximately 60% of the carbohydrates consumed by humans. Since amylase enzymes cannot function in the stomach's acidic environment, starch can only be digested in the mouth and small intestine. Simple sugars are found naturally in milk and fruits in...
Diabetes: Symptoms, Diagnosis, and Complications
Pathophysiology of Diabetes
Type 1 diabetes is characterized by autoimmune-mediated destruction of pancreatic β cells, with environmental factors potentially triggering this process in genetically susceptible individuals. Despite many not having a family history, certain genes increase susceptibility,...

