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Individualized therapy for type 2 diabetes: clinical implications of pharmacogenetic data
Gaia Chiara Mannino1, Giorgio Sesti
1Department of Medical and Surgical Sciences, University Magna Graecia of Catanzaro, Catanzaro, Italy.
Abstract:
Type 2 diabetes mellitus (T2DM) is characterized by insulin resistance, abnormally elevated hepatic glucose production, and reduced glucose-stimulated insulin secretion. Treatment with antihyperglycemic agents is initially successful in type 2 diabetes, but it is often associated with a high secondary failure rate, and the addition of insulin is eventually necessary for many patients, in order to restore acceptable glycemic control and to reduce the risk of development and progression of disease complications. Notably, even patients who appear to have similar requirements of antidiabetic regimens show great variability in drug disposition, glycemic response, tolerability, and incidence of adverse effects during treatment. Pharmacogenomics is a promising area of investigation and involves the search for genetic polymorphisms that may explain the interindividual variability in antidiabetic therapy response. The initial positive results portend that genomic efforts will be able to shed important light on variability in pharmacologic traits. In this review, we summarize the current understanding of genetic polymorphisms that may affect the responses of subjects with T2DM to antidiabetic treatment. These genes belong to three major classes: genes involved in drug metabolism and transporters that influence pharmacokinetics (including the cytochrome P450 [CYP] superfamily, the organic anion transporting polypeptide [OATP] family, and the polyspecific organic cation transporter [OCT] family); genes encoding drug targets and receptors (including peroxisome proliferator-activated receptor gamma [PPARG], the adenosine triphosphate [ATP]-sensitive potassium channel [K(ATP)], and incretin receptors); and genes involved in the causal pathway of T2DM that are able to modify the effects of drugs (including adipokines, transcription factor 7-like 2 (T cell specific, HMG-box) [TCF7L2], insulin receptor substrate 1 [IRS1], nitric oxide synthase 1 (neuronal) adaptor protein [NOS1AP], and solute carrier family 30 (zinc transporter), member 8 [SLC30A8]). In addition to these three major classes, we also review the available evidence on novel genes (CDK5 regulatory subunit associated protein 1-like 1 [CDKAL1], insulin-like growth factor 2 mRNA binding protein 2 [IGF2BP2], potassium voltage-gated channel, KQT-like subfamily, member 1 [KCNQ1], paired box 4 [PAX4] and neuronal differentiation 1 [NEUROD1] transcription factors, ataxia telangiectasia mutated [ATM], and serine racemase [SRR]) that have recently been proposed as possible modulators of therapeutic response in subjects with T2DM.
Insights
Genetic variations influence how individuals respond to type 2 diabetes treatments. Pharmacogenomics identifies these genetic polymorphisms to personalize antidiabetic drug therapy for better outcomes.
Area of Science:
- Pharmacogenomics and Molecular Medicine
- Endocrinology and Metabolism
- Genetics of Complex Diseases
Background:
- Type 2 diabetes mellitus (T2DM) involves insulin resistance and impaired insulin secretion, often requiring escalating treatment.
- Standard antidiabetic therapies show significant inter-individual variability in efficacy, tolerability, and adverse effects.
- Understanding the genetic basis of this variability is crucial for optimizing T2DM management.
Purpose of the Study:
- To review current knowledge on genetic polymorphisms affecting patient responses to T2DM pharmacotherapy.
- To categorize genes influencing antidiabetic drug response based on their role in pharmacokinetics, drug targets, and disease pathways.
- To highlight emerging genetic factors that may modulate therapeutic outcomes in T2DM.
Main Methods:
- Literature review synthesizing findings on genetic polymorphisms and their impact on T2DM treatment.
- Categorization of identified genes into three major classes: drug metabolism/transporters, drug targets/receptors, and T2DM causal pathway genes.
- Inclusion of recently identified genes proposed to modulate therapeutic response.
Main Results:
- Genetic polymorphisms in drug metabolism and transporter genes (e.g., CYP, OATP, OCT families) affect drug pharmacokinetics.
- Variations in genes encoding drug targets (e.g., PPARG, K(ATP), incretin receptors) influence treatment efficacy.
- Polymorphisms in T2DM causal pathway genes (e.g., TCF7L2, IRS1, SLC30A8) and novel genes (e.g., CDKAL1, KCNQ1, PAX4) modify drug effects and patient responses.
Conclusions:
- Pharmacogenomics offers a promising approach to explain inter-individual variability in T2DM pharmacotherapy.
- Identifying specific genetic polymorphisms can guide personalized antidiabetic drug selection and dosing.
- Continued genomic research is essential for advancing precision medicine in type 2 diabetes management.
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