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Published on: February 27, 2019
The Potential Therapeutic Application of Peptides and Peptidomimetics in Cardiovascular Disease
Carlota Recio1, Francesco Maione2, Asif J Iqbal1
1Sir William Dunn School of Pathology, University of Oxford Oxford, UK.
Insights
New therapeutic peptides and peptidomimetics show promise for treating cardiovascular disease (CVD) by targeting inflammation and cholesterol transport. Further research is needed to optimize peptide development for effective CVD intervention.
Area of Science:
- Biomedical research
- Pharmacology
- Cardiovascular medicine
Background:
- Cardiovascular disease (CVD) is a major global health concern with limited treatment options.
- Traditional peptide therapeutics faced challenges in stability and delivery, hindering pharmaceutical development.
- Recent advancements have revitalized interest in peptide-based therapies for various diseases.
Purpose of the Study:
- To review novel therapeutic targets and peptidomimetic approaches for cardiovascular disease (CVD) modulation.
- To highlight the potential of peptides in addressing unmet needs in CVD treatment.
- To examine specific peptide classes and their roles in atherosclerosis, inflammation, and metabolic regulation.
Main Methods:
- Literature review of experimental therapeutic approaches for CVD.
- Analysis of peptidomimetics targeting key pathological pathways in cardiovascular complications.
- Examination of apolipoprotein A-I (apoA-I) and apoE mimetic peptides for cholesterol transport.
- Review of SOCS1-derived peptides and annexin-A1 for anti-inflammatory effects.
- Assessment of incretin mimetics for glucose-insulin homeostasis.
Main Results:
- Peptidomimetics offer a promising avenue for CVD intervention by mimicking natural mediators.
- Specific peptide targets include those involved in cholesterol transport (apoA-I, apoE), inflammation (SOCS1, annexin-A1), and metabolic control (incretins).
- Technological improvements enhance the feasibility of developing novel peptide therapeutics.
Conclusions:
- Peptidomimetics represent a promising frontier for novel cardiovascular disease therapies.
- Further research into peptide structure, function, and interaction is crucial for successful clinical translation.
- Optimizing peptide targets and delivery systems is essential for future CVD treatment development.
Abstract:
Cardiovascular disease (CVD) remains a leading cause of mortality and morbidity worldwide. Numerous therapies are currently under investigation to improve pathological cardiovascular complications, but yet, there have been very few new medications approved for intervention/treatment. Therefore, new approaches to treat CVD are urgently required. Attempts to prevent vascular complications usually involve amelioration of contributing risk factors and underlying processes such as inflammation, obesity, hyperglycaemia, or hypercholesterolemia. Historically, the development of peptides as therapeutic agents has been avoided by the Pharmaceutical industry due to their low stability, size, rate of degradation, and poor delivery. However, more recently, resurgence has taken place in developing peptides and their mimetics for therapeutic intervention. As a result, increased attention has been placed upon using peptides that mimic the function of mediators involved in pathologic processes during vascular damage. This review will provide an overview on novel targets and experimental therapeutic approaches based on peptidomimetics for modulation in CVD. We aim to specifically examine apolipoprotein A-I (apoA-I) and apoE mimetic peptides and their role in cholesterol transport during atherosclerosis, suppressors of cytokine signaling (SOCS)1-derived peptides and annexin-A1 as potent inhibitors of inflammation, incretin mimetics and their function in glucose-insulin tolerance, among others. With improvements in technology and synthesis platforms the future looks promising for the development of novel peptides and mimetics for therapeutic use. However, within the area of CVD much more work is required to identify and improve our understanding of peptide structure, interaction, and function in order to select the best targets to take forward for treatment.
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