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miRNA-124 loaded extracellular vesicles encapsulated within hydrogel matrices for combating chemotherapy-induced
Pankaj Pal1, Monika Sharma2, Sukesh Kumar Gupta3
1IIMT College of Pharmacy, IIMT Group of Colleges, Greater Noida, Uttar Pradesh, India.
Abstract:
Chemotherapy-induced neurodegeneration represents a significant challenge in cancer survivorship, manifesting in cognitive impairments that severely affect patients' quality of life. Emerging neuroregenerative therapies offer promise in mitigating these adverse effects, with miRNA-124 playing a pivotal role due to its critical functions in neural differentiation, neurogenesis, and neuroprotection. This review article delves into the innovative approach of using miRNA-124-loaded extracellular vesicles (EVs) encapsulated within hydrogel matrices as a targeted strategy for combating chemotherapy-induced neurodegeneration. We explore the biological underpinnings of miR-124 in neuroregeneration, detailing its mechanisms of action and therapeutic potential. The article further examines the roles and advantages of EVs as natural delivery systems for miRNAs and the application of hydrogel matrices in creating a sustained release environment conducive to neural tissue regeneration. By integrating these advanced materials and biological agents, we highlight a synergistic therapeutic strategy that leverages the bioactive properties of miR-124, the targeting capabilities of EVs, and the supportive framework of hydrogels. Preclinical studies and potential pathways to clinical translation are discussed, alongside the challenges, ethical considerations, and future directions in the field. This comprehensive review underscores the transformative potential of miR-124-loaded EVs in hydrogel matrices, offering insights into their development as a novel and integrative approach for addressing the complexities of chemotherapy-induced neurodegeneration.
Insights
This review explores using microRNA-124 (miRNA-124) within extracellular vesicles (EVs) and hydrogels to treat chemotherapy-induced neurodegeneration, offering a novel neuroregenerative therapy for cancer survivors.
Area of Science:
- Biomedical Engineering
- Neuroscience
- Oncology
Background:
- Chemotherapy can cause neurodegeneration, leading to cognitive deficits in cancer survivors.
- MicroRNA-124 (miRNA-124) is crucial for neural development and protection.
- Extracellular vesicles (EVs) and hydrogels offer potential as therapeutic delivery systems.
Purpose of the Study:
- To review the use of miRNA-124-loaded EVs within hydrogel matrices for treating chemotherapy-induced neurodegeneration.
- To explore the synergistic potential of combining miRNA-124, EVs, and hydrogels for neuroregeneration.
Main Methods:
- Review of preclinical studies and literature on miRNA-124, EVs, and hydrogels.
- Analysis of the biological mechanisms of miRNA-124 in neuroprotection and regeneration.
- Examination of hydrogel properties for sustained drug delivery and tissue support.
Main Results:
- miRNA-124 demonstrates significant potential in promoting neural differentiation, neurogenesis, and neuroprotection.
- EVs serve as effective natural carriers for targeted miRNA delivery.
- Hydrogels provide a supportive scaffold for sustained release and tissue integration.
Conclusions:
- The combination of miRNA-124-loaded EVs within hydrogel matrices presents a promising, integrative strategy for combating chemotherapy-induced neurodegeneration.
- This approach holds potential for clinical translation to improve cancer survivorship and quality of life.
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