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Published on: August 4, 2017
Multimodal Synergistic Strategies for Diabetic Wound Healing Using Glucose Oxidase Nanocomposites: Therapeutic
Zaiwei Fan1, Chengzhi Liang1, Jiayu Zhang2
1Department of Orthopedics, The Second Affiliated Hospital, Jiangxi Medical College Nanchang University, Nanchang, Jiangxi, 330006, People's Republic of China.
Abstract:
Diabetic wounds (DWs) are characterized by high blood glucose levels, and one of the primary strategies for regulating blood glucose is the use of glucose oxidase (GOx). This enzyme catalyzes the oxidation of glucose to produce D-gluconic acid, consuming oxygen and generating hydrogen peroxide (H₂O₂) in the process. In DWs, this reaction not only effectively reduces glucose concentrations at the wound site but also provides an antibacterial effect through the release of H₂O₂. Based on this principle, combining glucose oxidase with other therapeutic approaches to develop multimodal wound treatment strategies has garnered significant research attention. Additionally, the abundance of binding sites on the GOx molecular surface enables the construction of multifunctional GOx-based nanocomposites. This review uniquely integrates emerging nanomaterial designs with cascade therapeutic strategies, offering insights into overcoming challenges in diabetic wound healing. Recently, multifunctional nanocomposites have gained attention for integrating multiple therapeutic modalities, relying on cascade mechanisms of multimodal synergistic therapies to tackle complex challenges in DWs treatment. However, there is currently no systematic review that comprehensively elaborates on the construction of these nanocomposites and the specific applications of multimodal treatment strategies in DWs healing. To fill this gap in the field, this review provides a comprehensive overview of these nanomaterials, starting with a systematic exploration of cascade and synergistic therapeutic mechanisms centered on GOx-catalyzed reactions. It highlights applications in photothermal therapy (PTT), photodynamic therapy (PDT), and gas therapy (GT), summarizes the design of nanocarriers, and discusses challenges in DWs healing and future development directions. The findings discussed provide a pathway for the development of clinically viable, cost-effective therapies for chronic wounds.
Insights
Glucose oxidase (GOx) enzyme-based nanocomposites offer a novel approach to diabetic wound healing by reducing high glucose levels and providing antibacterial effects. This review explores their design and multimodal therapeutic strategies for chronic wound treatment.
Area of Science:
- Biomaterials Science
- Nanotechnology
- Biochemistry
Background:
- Diabetic wounds (DWs) present challenges due to hyperglycemia, which impairs healing.
- Glucose oxidase (GOx) catalyzes glucose oxidation, reducing blood glucose and producing antibacterial hydrogen peroxide (H₂O₂).
- Multifunctional nanocomposites offer synergistic therapeutic effects for complex DWs treatment.
Purpose of the Study:
- To systematically review GOx-based nanocomposites for diabetic wound healing.
- To explore cascade and synergistic therapeutic mechanisms involving GOx.
- To highlight applications in photothermal, photodynamic, and gas therapies.
Main Methods:
- Literature review of nanomaterial designs and therapeutic strategies for DWs.
- Analysis of GOx-catalyzed reactions and their role in multimodal therapies.
- Summary of nanocarrier designs and their integration with GOx.
Main Results:
- GOx-based nanocomposites can be designed for multimodal synergistic therapies.
- Cascade reactions involving GOx show promise for enhanced DWs treatment.
- Integration with photothermal therapy (PTT), photodynamic therapy (PDT), and gas therapy (GT) is explored.
Conclusions:
- GOx-based multifunctional nanocomposites represent a promising strategy for diabetic wound healing.
- Cascade therapeutic mechanisms offer synergistic benefits for complex wound environments.
- Further development is needed for clinically viable and cost-effective chronic wound therapies.
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