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Ex Vivo Corneal Organ Culture Model for Wound Healing Studies
Published on: February 15, 2019
Recent Updates on Molecular and Physical Therapies for Organ Fibrosis
Michał Filipski1,2, Natalia Libergal1,2, Maksymilian Mikołajczyk1,2
1Faculty of Medicine, Wroclaw Medical University, Mikulicza-Radeckiego 5, 50-345 Wroclaw, Poland.
Abstract:
Organ fibrosis is a progressive and often irreversible pathological process characterized by excessive deposition of extracellular matrix, leading to tissue dysfunction and failure. Despite its significant impact on various organ systems, available antifibrotic therapies remain limited. This review focuses on novel therapeutic approaches to inhibit fibrosis and improve clinical outcomes. Current strategies include small molecule inhibitors, monoclonal antibodies targeting fibrosis mediators, gene therapies, and cell-based approaches, including mesenchymal stem cells and induced pluripotent stem cells. In addition, the development of innovative drug delivery systems and combination therapies involving pulsed magnetic fields (PMFs) opens new possibilities for increasing the precision and efficacy of treatment. In recent years, multiomic approaches have enabled a better understanding of fibrosis mechanisms, facilitating the personalization of therapy. The role of artificial intelligence in drug discovery has also increased, as exemplified by models that support the design of small-molecule inhibitors currently undergoing clinical evaluation. This review discusses key signaling pathways involved in fibrosis progression, such as TGF-β, p38 MAPK, and fibroblast activation, as well as novel therapeutic targets. Although clinical trial results indicate promising potential for new therapies, challenges remain in optimizing drug delivery, considering patient heterogeneity, and ensuring long-term safety. The future of fibrosis therapy relies on integrating precision medicine, combination therapies, and molecularly targeted strategies to inhibit or even reverse the fibrosis process. Further intensive interdisciplinary collaboration is required to successfully implement these innovative solutions in clinical practice.
Insights
Novel antifibrotic therapies are emerging, including cell-based treatments and advanced drug delivery systems, to combat organ fibrosis. These innovative approaches, aided by artificial intelligence and multiomics, aim to personalize treatment and improve patient outcomes.
Area of Science:
- Biomedical Science
- Pathology
- Pharmacology
Background:
- Organ fibrosis is a major cause of tissue dysfunction and failure, with limited effective treatments.
- Excessive extracellular matrix deposition characterizes fibrosis, impacting multiple organ systems.
- Current antifibrotic therapies are insufficient for this progressive condition.
Purpose of the Study:
- To review novel therapeutic strategies for inhibiting organ fibrosis.
- To explore advancements in drug delivery and combination therapies.
- To discuss the role of multiomics and artificial intelligence in fibrosis research.
Main Methods:
- Review of current literature on antifibrotic therapies.
- Analysis of emerging strategies including small molecules, antibodies, gene, and cell therapies.
- Examination of innovative approaches like pulsed magnetic fields (PMFs) and AI in drug discovery.
Main Results:
- Emerging therapies show promise, including mesenchymal stem cells and induced pluripotent stem cells.
- Multiomic approaches enhance understanding of fibrosis mechanisms.
- AI models are accelerating the design of small-molecule inhibitors.
Conclusions:
- Future fibrosis therapy will integrate precision medicine, combination strategies, and targeted molecular approaches.
- Optimizing drug delivery, addressing patient heterogeneity, and ensuring safety are key challenges.
- Interdisciplinary collaboration is crucial for clinical implementation of novel antifibrotic solutions.
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