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An Injectable and Drug-loaded Supramolecular Hydrogel for Local Catheter Injection into the Pig Heart
Published on: June 7, 2015
UV-cure hydrogels for cardiac regeneration: a comprehensive review
Hossein Rayat Pisheh1,2, Zahra Ghanavati3, Ahmad Darvishi4,5
1Department of Tissue Engineering and Applied Cell Sciences, School of Advanced Medical Sciences and Technologie, Shiraz University of Medical Sciences, Shiraz, Iran.
Insights
UV-curable hydrogels offer a promising solution for cardiac tissue regeneration after myocardial infarction (MI). These injectable biomaterials enable precise control over properties, enhancing cell survival and promoting functional tissue repair for improved cardiac function.
Area of Science:
- Biomaterials Science
- Regenerative Medicine
- Cardiovascular Research
Background:
- Cardiovascular diseases (CVDs) and myocardial infarction (MI) lead to irreversible cardiomyocyte loss and impaired cardiac function.
- The heart's limited self-repair capacity presents a major challenge for cardiac tissue regeneration.
- Existing regenerative approaches struggle with cellular preservation, tissue integration, and vascularization.
Purpose of the Study:
- To explore the potential of UV-curable hydrogels for cardiac tissue engineering.
- To highlight the advantages of these hydrogels in addressing limitations of traditional cardiac repair methods.
- To review design considerations and recent advances in applying UV-curable hydrogels for cardiac regeneration.
Main Methods:
- Review of current literature on UV-curable hydrogels in cardiac tissue engineering.
- Analysis of hydrogel properties, including tunable degradation, mechanical characteristics, and controlled release.
- Examination of strategies for incorporating bioactive molecules and growth factors.
Main Results:
- UV-curable hydrogels allow for in situ injection and rapid solidification via UV irradiation.
- These hydrogels offer precise control over degradation rates, mechanical properties, and therapeutic agent release.
- Incorporation of bioactive factors enhances cell viability, proliferation, differentiation, and promotes angiogenesis.
Conclusions:
- UV-curable hydrogels represent a powerful platform for overcoming challenges in cardiac regeneration.
- Their tunable properties and minimally invasive delivery potential facilitate improved cardiac tissue repair.
- This approach holds significant promise for advancing cardiac regeneration and improving patient outcomes in CVDs.
Abstract:
Cardiovascular diseases (CVDs), particularly myocardial infarction (MI), cause irreversible cardiomyocyte loss and scar formation, severely compromising cardiac function. Despite advances in cardiovascular care, cardiac tissue regeneration remains a significant clinical challenge due to the limited self-repair capacity of the heart. Traditional approaches face obstacles, including inadequate cellular preservation, poor integration with native tissue, and inadequate vascularization. With the advent of tissue engineering and the integration of biomaterial-based approaches, significant progress has been made in regenerating native cardiac tissue and advancing clinical goals. This review explores the potential of UV-curable hydrogels as a novel platform for cardiac tissue engineering, emphasizing their tunable properties and minimally invasive delivery potential. These hydrogels can be rapidly injected in situ by UV irradiation, providing precise control over the degradation rate, mechanical properties, and drug/cell release. Furthermore, incorporating bioactive molecules and growth factors into the hydrogel matrix can enhance cell survival, proliferation, and differentiation and promote angiogenesis and functional tissue formation. This review describes design considerations for UV-curable hydrogels, including biomaterial selection, crosslinking strategies, and incorporation of therapeutic agents, while highlighting recent advances in their application for cardiac repair. Particularly, after a comprehensive review of cardiac tissue, we address the major challenges that hinder effective cardiac regeneration and demonstrate how UV-curable hydrogels can overcome these limitations. Indeed, this article aims to provide an overview of the current state of the art, emphasizing the promise of UV-curable hydrogels as a powerful tool to advance cardiac regeneration and improve patient outcomes.
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