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Cannabidiol and diabetic heart disease: Mechanistic evidence and translational challenges
Afolake Arowolo1, Oluyomi Adeyemi2, Toluwalope Ajonijebu3
1Biomedical Research and Innovation Platform (BRIP), South African Medical Research Council (SAMRC), Cape Town, Western Cape, South Africa; Department of Medicine, University of Cape Town, Cape Town, Western Cape, South Africa.
Insights
Cannabidiol (CBD) shows promise for treating diabetic heart disease (DHD) by targeting inflammation, oxidative stress, and fibrosis. However, more clinical trials are needed to confirm its safety and effectiveness in diabetic patients.
Area of Science:
- Cardiovascular Medicine
- Pharmacology
- Endocrinology
Background:
- Diabetic heart disease (DHD) is a significant cause of cardiovascular morbidity, stemming from complex metabolic, inflammatory, oxidative, and fibrotic pathways.
- Current therapies inadequately address these interconnected mechanisms, necessitating novel interventions.
- Cannabidiol (CBD), a non-psychoactive cannabinoid, exhibits potential for modulating key DHD processes.
Purpose of the Study:
- To review the preclinical evidence for Cannabidiol's (CBD) therapeutic potential in diabetic heart disease (DHD).
- To explore the mechanisms by which CBD may counteract DHD pathophysiology.
- To identify the limitations and future directions for clinical research of CBD in DHD.
Main Methods:
- Review of in vitro and in vivo preclinical studies investigating CBD's effects on diabetic cardiomyopathy.
- Analysis of CBD's molecular targets, including CB1 receptors, TRPV1, PPARγ, and GPR55.
- Evaluation of existing human studies on CBD for relevance to DHD outcomes.
Main Results:
- Preclinical studies show CBD attenuates oxidative stress (reducing ROS), suppresses NF-κB inflammation, improves endothelial function (NO bioavailability), and inhibits TGF-β-driven fibrosis.
- CBD has demonstrated improvements in myocardial and vascular function in models of diabetic cardiomyopathy.
- CBD's therapeutic effects are mediated via modulation of cannabinoid and non-cannabinoid receptors.
Conclusions:
- CBD exhibits multi-target potential to address the core pathophysiology of diabetic heart disease.
- Robust preclinical data support CBD as an investigational candidate for DHD.
- Significant gaps exist in clinical evidence; well-designed, DHD-specific trials are essential to establish therapeutic efficacy and safety.
Abstract:
Diabetic heart disease (DHD) is a major contributor to global cardiovascular morbidity, driven by a complex interplay of metabolic, inflammatory, oxidative, and fibrotic mechanisms. These interconnected pathways are not fully addressed by current cardiometabolic therapies, highlighting the need for novel multi-target interventions. Cannabidiol (CBD), a non-psychoactive phytocannabinoid, has emerged as a potential modulator of several key processes implicated in DHD pathogenesis. Preclinical evidence demonstrates that CBD attenuates oxidative stress by reducing reactive oxygen species (ROS) production, suppresses nuclear factor-κB (NF-κB)-mediated inflammatory signaling, preserves endothelial function by improving nitric oxide (NO) bioavailability, and inhibits transforming growth factor-β (TGF-β)-driven fibrotic remodeling. These effects have been observed across in vitro and in vivo models of diabetic cardiomyopathy, where CBD improves both myocardial and vascular function. Mechanistically, CBD exerts its actions through negative allosteric modulation of CB₁ receptors and interaction with non-cannabinoid targets, including transient receptor potential vanilloid 1 (TRPV1), peroxisome proliferator-activated receptor gamma (PPARγ), and G protein-coupled receptor 55 (GPR55). Despite this robust preclinical foundation, clinical evidence supporting the efficacy of CBD in DHD remains limited. Existing human studies are largely restricted to non-diabetic populations or short-term metabolic and hemodynamic outcomes, and do not address disease-specific cardiac endpoints. Furthermore, translational challenges, including variability in dosing, product standardization, and potential drug-drug interactions, remain significant barriers to clinical implementation. Collectively, CBD represents a promising investigational candidate with multi-target potential to modulate the core pathophysiology of DHD. However, well-designed, disease-specific clinical trials are required to establish its therapeutic relevance and safety in diabetic populations.
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