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Emerging treatment strategies in wound care
Marjan Mirhaj1,2, Sheyda Labbaf1, Mohamadreza Tavakoli1
1Department of Materials Engineering, Isfahan University of Technology, Isfahan, Iran.
Abstract:
Wound healing is a complex process in tissue regeneration through which the body responds to the dissipated cells as a result of any kind of severe injury. Diabetic and non-healing wounds are considered an unmet clinical need. Currently, different strategic approaches are widely used in the treatment of acute and chronic wounds which include, but are not limited to, tissue transplantation, cell therapy and wound dressings, and the use of an instrument. A large number of literatures have been published on this topic; however, the most effective clinical treatment remains a challenge. The wound dressing involves the use of a scaffold, usually using biomaterials for the delivery of medication, autologous stem cells, or growth factors from the blood. Antibacterial and anti-inflammatory drugs are also used to stop the infection as well as accelerate wound healing. With an increase in the ageing population leading to diabetes and associated cutaneous wounds, there is a great need to improve the current treatment strategies. This research critically reviews the current advancement in the therapeutic and clinical approaches for wound healing and tissue regeneration. The results of recent clinical trials suggest that the use of modern dressings and skin substitutes is the easiest, most accessible, and most cost-effective way to treat chronic wounds with advances in materials science such as graphene as 3D scaffold and biomolecules hold significant promise. The annual market value for successful wound treatment exceeds over $50 billion US dollars, and this will encourage industries as well as academics to investigate the application of emerging smart materials for modern dressings and skin substitutes for wound therapy.
Insights
Diabetic and non-healing wounds require improved treatments. Modern wound dressings and skin substitutes, utilizing advanced materials like graphene, show promise for effective tissue regeneration and clinical application.
Area of Science:
- Biomaterials Science
- Tissue Engineering
- Regenerative Medicine
Background:
- Wound healing is a complex biological process crucial for tissue regeneration after injury.
- Diabetic and chronic non-healing wounds represent a significant unmet clinical need.
- Current treatments, including tissue transplantation, cell therapy, and advanced wound dressings, face challenges in efficacy.
Purpose of the Study:
- To critically review advancements in therapeutic and clinical approaches for wound healing and tissue regeneration.
- To explore the potential of novel materials and strategies in addressing challenges in chronic wound management.
Main Methods:
- Literature review of current therapeutic and clinical approaches for wound healing.
- Analysis of recent clinical trial results concerning modern dressings and skin substitutes.
- Examination of emerging materials science applications, such as graphene scaffolds and biomolecules.
Main Results:
- Modern dressings and skin substitutes are identified as accessible and cost-effective treatments for chronic wounds.
- Advances in materials science, including 3D graphene scaffolds and biomolecules, show significant promise.
- The global market for wound treatment exceeds $50 billion, driving innovation in smart materials for wound therapy.
Conclusions:
- There is a pressing need to enhance current treatment strategies for wound healing, particularly for diabetic and aging populations.
- Emerging smart materials and advanced wound care technologies offer promising solutions for effective wound management.
- Continued research and development in biomaterials and regenerative medicine are essential for future wound therapy.
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