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Open Access Original Research Issue
The synthetic estradiol analog E0703 enhances Akkermansia muciniphila growth for radiation‐induced intestinal damage repair
mLife 2026, 5(2): 199-216
Published: 30 April 2026
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The development of safe and effective radioprotective agents with minimal side effects, particularly for high-dose exposure, remains a global priority. E0703, a novel steroidal compound structurally derived from estradiol, has shown promising radioprotective efficacy with limited estrogenic activity in prior pharmacodynamic studies. In this study, E0703 was found to significantly increase the abundance of Akkermansia muciniphila (AKK) in the intestines of both irradiated and non-irradiated mice. Co-administration of E0703 and AKK markedly improved the 7-day survival rate of mice exposed to a lethal 8.5 Gy dose of radiation. E0703 induced beneficial transcriptional changes in AKK, with enrichment in metabolic pathways such as amino acid biosynthesis, aminoacyl-tRNA biosynthesis, the tricarboxylic acid (TCA) cycle, and fatty acid biosynthesis. These alterations supported the production of glucosamine 6-phosphate (GlcN-6-P) by AKK, which contributed to intestinal tissue regeneration following irradiation. Single-cell transcriptomic analysis revealed that E0703 significantly increased the proportion of intestinal stem cells and goblet cells by Day 5 post irradiation. Mechanistically, E0703 modulated the oxidative phosphorylation pathway in these cell types, including regulation of Muc2 production. E0703 also enhanced AKK abundance in irradiated mice, particularly in the presence of mucin, thereby elevating the availability of GlcN-6-P—a critical substrate for intestinal organoid repair. These findings indicate that E0703 exerts direct effects on goblet cells and AKK, promoting host–microbe interactions that facilitate intestinal regeneration and improve survival following radiation exposure.

Open Access Research Article Issue
A multifunctional injectable ε-poly-L-lysine-loaded sodium-alginate/gelatin hydrogel promotes the healing of infected wounds by regulating macrophage polarization and the skin microbiota
Burns & Trauma 2025, 13(10): tkaf037
Published: 31 May 2025
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Background

Infected wounds caused by bacteria such as Escherichia coli and Staphylococcus aureus pose significant challenges during the healing process. Hydrogels have emerged as promising materials for the treatment of such infections, as they have the potential to deliver therapeutic agents while supporting tissue repair. This study aimed to develop ε-PLL@SA/Gel (PSG) hydrogels by incorporating varying concentrations of ε-poly-L-lysine (ε-PLL) into sodium alginate/gelatin (SA/Gel) using calcium chloride as a crosslinking agent, and to evaluate their antibacterial efficacy.

Methods

The mechanical properties, biocompatibility, antibacterial activity of hydrogels were evaluated. Biocompatibility was examined by measuring cell viability and proliferation of human skin fibroblasts in vitro. Antibacterial efficacy against Escherichia coli and Staphylococcus aureus was quantified using bacterial inhibition assays. The wound healing efficacy of the hydrogels were evaluated in mouse models of infected wounds.

Results

PSG hydrogels exhibited excellent mechanical strength, injectability, and self-adhesive properties. In vitro, hydrogel treatment resulted in high cell viability and promoted human skin fibroblast proliferation. PSG15 exhibited the highest antibacterial activity and inhibited E. coli and S. aureus by 89.53% and 92.21%, respectively. In vivo, PSG15 significantly accelerated wound healing, enhanced angiogenesis, and regulated macrophage polarization by increasing CD206 expression and decreasing CD80 expression. Additionally, PSG15 modulated the skin microbiota, reduced pathogenic bacterial abundance and maintained microbiota diversity.

Conclusions

The PSG15 hydrogel is a promising candidate for the treatment of infected wounds because it inhibits bacterial growth, promotes tissue repair, and modulates the wound microbiota.

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