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A Protocol for Constructing a Rat Wound Model of Type 1 Diabetes
Published on: February 17, 2023
Proangiogenic Cyclic Peptide Nanotubes for Diabetic Wound Healing
Vatan Chawla1, Soumyajit Roy2, John Raju1
1Department of Chemistry, Indian Institute of Technology Ropar, Rupnagar-140 001, Punjab India.
Abstract:
An intricate biochemical system of coordinated cellular reactions is involved in restoring damaged tissue after wounds. In chronic wounds, such as diabetic foot ulcers, poor angiogenesis is a common stumbling block due to elevated glucose levels, increased proteolytic enzyme activity, and decreased production of growth factors. While various strategies, including modulation of inflammatory cells, administration of growth factors, and therapies involving stem cells or genes, have been explored to promote angiogenesis, they often suffer from limitations such as poor biodistribution, immunological rejection, administration/dosing, and proteolytic instability. Glycosaminoglycans, such as heparan sulfate, facilitate growth factor interactions with their receptors to induce angiogenic signaling, but their exogenous administration is hindered by poor stability, low serum half-life, and immunogenicity. Cyclic peptides, known for their structural stability and specificity, offer a promising alternative for inducing angiogenesis upon functional modifications. In this work, we developed heparan sulfate (HS)-mimetic cyclic peptide nanotubes (CPNTs) grafted with bioactive groups to enhance angiogenesis without using exogenous growth factors, drugs, or supplements. These CPNTs incorporate glutamic acid, serine, and sulfonated lysine to mimic the functional groups in heparin. The sulfonated cyclic hexapeptide nanotubes developed from DPro-LTrp-DLeu-LSer-DGlu-LLys demonstrated significant proangiogenic activity in HUVECs under hyperglycemic conditions; enhanced endothelial cell motility, invasion, and tube formation; and upregulation of proangiogenic genes and proteins. These HS-mimicking nanotubes have shown a strong potential for promoting impaired angiogenesis, without incorporating exogenous growth factors, and show strong potential in treating diabetic wounds. To the best of our knowledge, this is the first report on the use of HS-mimetic proangiogenic cyclic peptide nanotubes for diabetic wound healing.
Insights
Researchers developed heparan sulfate-mimetic cyclic peptide nanotubes to promote blood vessel formation in diabetic wounds. These novel nanotubes enhance angiogenesis without growth factors, offering a promising new treatment for chronic wound healing.
Area of Science:
- Biomaterials Science
- Regenerative Medicine
- Biochemistry
Background:
- Chronic wounds, like diabetic foot ulcers, exhibit poor angiogenesis, hindering healing.
- Current therapies for promoting angiogenesis face challenges like poor stability and immunogenicity.
- Heparan sulfate (HS) is crucial for growth factor signaling but difficult to administer exogenously.
Purpose of the Study:
- To develop novel heparan sulfate (HS)-mimetic cyclic peptide nanotubes (CPNTs) for enhancing angiogenesis.
- To investigate the proangiogenic potential of these CPNTs in hyperglycemic conditions.
- To assess the efficacy of CPNTs as a therapeutic strategy for diabetic wound healing without exogenous growth factors.
Main Methods:
- Synthesized sulfonated cyclic hexapeptide nanotubes mimicking heparan sulfate functional groups.
- Incorporated glutamic acid, serine, and sulfonated lysine into the peptide structure.
- Evaluated the proangiogenic activity of CPNTs using human umbilical vein endothelial cells (HUVECs) under hyperglycemic conditions.
Main Results:
- Developed CPNTs demonstrated significant proangiogenic activity in HUVECs.
- CPNTs enhanced endothelial cell motility, invasion, and tube formation.
- Upregulation of key proangiogenic genes and proteins was observed, indicating effective signaling.
Conclusions:
- Heparan sulfate-mimetic cyclic peptide nanotubes show strong potential for promoting impaired angiogenesis.
- These novel nanotubes offer a promising, growth factor-free approach for treating diabetic wounds.
- This study represents the first report on HS-mimetic proangiogenic cyclic peptide nanotubes for diabetic wound healing.
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