ArticleStem cell research & therapy2025
Preclinical study of engineering MSCs promoting diabetic wound healing and other inflammatory diseases through M2 polarization.
Article in Stem cell research & therapy, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 16 papers, 1 of them a synthesis that pooled it.
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Who cites it
16 citing papers in PubMed, 1 synthesis or guideline pooled it.
- Immunomodulatory Tissue-Engineering Strategies for Diabetic Foot Ulcer Management: A Systematic Review.Wound repair and regeneration : official publication of the Wound Healing Society [and] the European Tissue Repair SocietyPooled it
- Review
- Genetically Modified MSCs for Targeted Regeneration: Balancing Efficacy, Biosafety, and GMP Standardization.Cells · 2026Review
- Inflammation and wound healing: a comprehensive overview of mechanisms, therapeutic strategies, and translational perspectives.Biomarker research · 2026Review
- Macrophage polarization in inflammatory regulation: molecular mechanisms, therapeutic targets, and translational challenges.Cellular and molecular life sciences : CMLS · 2026Review
- Article
- Adipose-Derived Stem Cell Exosomes in Diabetic Wound Repair: Molecular Crosstalk, Bioengineering Strategies, and Translational Challenges.Stem cells international · 2026Review
- Engineering Magnetic Beads for Affinity Enrichment of Exosomes.Computational and structural biotechnology journal · 2026Article
- Immunomodulatory Mechanisms of Chronic Wound Healing: Translational and Clinical Relevance.MedComm · 2025Review
- Wound Healing: Molecular Mechanisms, Antimicrobial Peptides, and Emerging Technologies in Regenerative Medicine.Pharmaceuticals (Basel, Switzerland) · 2025Review
- Human umbilical cord mesenchymal stromal cell-derived extracellular vesicles alleviate radiation induced pulmonary fibrosis.World journal of stem cells · 2025Article
- Association of high-density lipoprotein-related inflammatory indicators with diabetic foot ulcer in patients with diabetes: a population-based study.Diabetology & metabolic syndrome · 2025Article
- Targeting diabetic foot ulcer pathophysiology: altered signaling pathways and 3D scaffold as an emerging treatment strategy.3 Biotech · 2025Review
- A Paradigm Shift in SSTI Management: The Multifunctional Role of Extracellular Vesicles.International journal of molecular sciences · 2025Review
- Engineering strategies to enhance the research progress of mesenchymal stem cells in wound healing.Stem cell research & therapy · 2025Review
- IL-4 and IL-13 in Cardiovascular Disease: From Immune Modulation to Therapeutic Possibilities - A Narrative Review.Journal of inflammation research · 2025Review
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Authors and funding
14 authors.
Funding
Abstract
backgroundDiabetic foot ulcer (DFU) represents a common and severe complication of diabetes mellitus. Effective and safe treatments need to be developed. Mesenchymal stem cells (MSCs) have demonstrated crucial roles in tissue regeneration, wound repair and inflammation regulation. However, the function is limited. The safety and efficacy of gene-modified MSCs is unknown. Therefore, this study aimed to investigate whether genetically modified MSCs with highly efficient expression of anti-inflammatory factors promote diabetic wound repair by regulating macrophage phenotype transition. This may provide a new approach to treating diabetic wound healing.
methodsIn this study, human umbilical cord-derived MSCs (hUMSCs) were genetically modified using recombinant lentiviral vectors to simultaneously overexpress three anti-inflammatory factors, interleukin (IL)-4, IL-10, IL-13 (MSCs-3IL). Cell counting kit-8, flow cytometry and differentiation assay were used to detect the criteria of MSCs. Overexpression efficiency was evaluated using flow cytometry, quantitative real-time PCR, Western blot, enzyme-linked immunosorbent assay, and cell scratch assay. We also assessed MSCs-3IL's ability to modulate Raw264.7 macrophage phenotype using flow cytometry and quantitative real-time PCR. In addition, we evaluated diabetic wound healing through healing rate calculation, HE staining, Masson staining, and immunohistochemical analysis of PCNA, F4/80, CD31, CD86, CD206, IL-4, IL-10 and IL-13. In addition, we evaluated the safety of the MSCs-3IL cells and the effect of the cells on several other models of inflammation.
resultsMSCs-3IL efficiently expressed high levels of IL-4 and IL-10 (mRNA transcription increased by 15,000-fold and 800,000-fold, protein secretion 400 and 200 ng/mL), and IL-13 (mRNA transcription increased by 950,000-fold, protein secretion 6 ng/mL). MSCs-3IL effectively induced phenotypic polarization of pro-inflammatory M1-like macrophages (M1) towards anti-inflammatory M2-like macrophages (M2). The enhancement of function does not change the cell phenotype. The dynamic distribution in vivo was normal and no karyotype variation and tumor risk was observed. In a mouse diabetic wound model, MSCs-3IL promoted diabetic wound healing with a wound closure rate exceeding 96% after 14 days of cell treatment. The healing process was aided by altering macrophage phenotype (reduced CD86 and increased CD206 expression) and accelerating re-epithelialization.
conclusionsIn summary, our study demonstrates that genetically modified hUMSCs effectively overexpressed three key anti-inflammatory factors (IL-4, IL-10, IL-13). MSCs-3IL-based therapy enhances diabetic wound healing with high efficiency and safety. This suggests that genetically modified hUMSCs could be used as a novel therapeutic approach for DFU repair.
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