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Open Access Basic Study Issue
Study on microwave radiation aggravating the impairment of cognitive functions in mice with experimental periodontitis
Journal of Prevention and Treatment for Stomatological Diseases 2026, 34(6): 541-555
Published: 20 June 2026
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Objective

To explore the effects of microwave radiation on cognitive function and neuroinflammation in mice with experimental periodontitis, providing experimental evidence for understanding how environmental exposure may be linked to the risk of neurodegenerative diseases by modulating chronic inflammation as a shared pathological mechanism.

Methods

This study was approved by the Animal Ethics Committee of the Academy of Military Medical Sciences. C57BL/6J mice were randomly divided into a control group (C group, untreated), a microwave radiation group (R group, exposed to microwave radiation only), a periodontitis group (P group, ligation-induced periodontitis only), and a periodontitis + microwave radiation group (PR group, ligation-induced periodontitis plus microwave radiation exposure). A periodontitis model was established using the silk ligation method. Eight weeks after modeling, the R and PR groups were subjected to whole-body microwave radiation at 2800 MHz and 10 mW/cm2 for 10 h/day for 7 consecutive days. Behavioral tests were conducted: the open field test and elevated plus maze test were used to assess anxiety-like behavior, the Y-maze test to evaluate spatial memory, and the novel object recognition test to assess learning and memory abilities. Micro-CT, hematoxylin & eosin staining (HE), and quantitative real-time polymerase chain reaction (qPCR) were used to analyze periodontal tissue pathology and local inflammation. Serum and brain levels of lipopolysaccharide (LPS), interleukin-1β (IL-1β), interleukin-6 (IL-6), and tumor necrosis factor-α (TNF-α) were measured using enzyme-linked immunosorbent assay (ELISA). The composition of the oral microbiota was analyzed based on 16S rRNA sequencing.

Results

Behavioral tests showed that anxiety-like behavior was significantly exacerbated in the R and PR groups, and spatial and recognition memory impairments in the PR and P groups were more severe compared with the R and C groups, respectively (P < 0.05). Histological and molecular biological analyses revealed that periodontal inflammation infiltration, alveolar bone resorption, and local expression of pro-inflammatory cytokines (TNF-α, IL-1β, IL-6) were further exacerbated in the PR and P groups compared with the R and C groups, respectively (P < 0.05). ELISA results showed that in serum, LPS levels in group P and group PR were increased compared with group C and group R, respectively. The levels of TNF-α, IL-1β, and IL-6 in group PR were significantly higher than those in group P and group R, with a synergistic increase in TNF-α level (P < 0.05). In brain tissue, LPS and TNF-α, IL-1β, IL-6 levels in group P were significantly higher than those in group C; all the above indicators in group PR were significantly higher than those in group P and group R, and LPS and IL-6 levels showed a synergistic increase (P < 0.05). Oral microbiota analysis found that microwave radiation further reduced microbial diversity on the basis of periodontitis, leading to increased relative abundances of Lactobacillus and Enterococcus, and decreased relative abundances of Staphylococcus. Correlation analysis confirmed that these differential bacterial genera were positively correlated with brain inflammation levels and negatively correlated with cognitive function indicators.

Conclusion

Microwave radiation exposure can exacerbate cognitive impairment in mice with experimental periodontitis, and its mechanism may be related to aggravated local periodontal damage, disruption of oral microbiota homeostasis, and subsequent induction of systemic and central neuroinflammatory cascades.

Open Access Research Article Issue
Self-powered triboelectric nanogenerator patch with ZIF-67 integrated conductive hydrogel for infected wound healing
Nano Research 2026, 19(5): 94908364
Published: 24 March 2026
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The clinical management of infected wounds remains challenging due to limitations of conventional therapies and risks of bacterial infections. Though electrical stimulation (ES) is promising for infected wound healing, conventional ES devices face practical barriers. Triboelectric nanogenerators (TENGs) offer a new strategy for ES in wound healing, yet bacterial infections can corrode TENG materials and reduce their efficacy. Here, we developed a self-powered wound dressing system based on TENG, incorporating an antibacterial conductive hydrogel composed of polydopamine (PDA), polyacrylamide (PAM), and metal-organic framework zeolitic imidazolate framework-67 (ZIF-67). This hydrogel exhibits excellent mechanical properties and intrinsic antibacterial activity, reducing infection risks and protecting TENG integrity. In vitro studies revealed that such TENG patch promoted the proliferation, adhesion and migration of keratinocytes, and achieving over 96% bactericidal efficiency against both S. aureus and E. coli. Moreover, the TENG patch facilitated the infected rat skin wound to heal within 14 days by reducing inflammatory response and promoting tissue regeneration. This work provides a new solution with clinical potential for treating infected wounds by synergistic effects of electrical stimulation and novel antibacterial materials, and opens up a new insight in designing TENG devices.

Research Article Issue
Enhancing bioactivity and stability of polymer-based material-tissue interface through coupling multiscale interfacial interactions with atomic-thin TiO2 nanosheets
Nano Research 2023, 16(4): 5247-5255
Published: 05 December 2022
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Stable and bioactive material–tissue interface (MTF) basically determines the clinical applications of biomaterials in wound healing, sustained drug release, and tissue engineering. Although many inorganic nanomaterials have been widely explored to enhance the stability and bioactivity of polymer-based biomaterials, most are still restricted by their stability and biocompatibility. Here we demonstrate the enhanced bioactivity and stability of polymer-matrix bio-composite through coupling multiscale material–tissue interfacial interactions with atomically thin TiO2 nanosheets. Resin modified with TiO2 nanosheets displays improved mechanical properties, hydrophilicity, and stability. Also, we confirm that this resin can effectively stimulate the adhesion, proliferation, and differentiation into osteogenic and odontogenic lineages of human dental pulp stem cells using in vitro cell–resin interface model. TiO2 nanosheets can also enhance the interaction between demineralized dentinal collagen and resin. Our results suggest an approach to effectively up-regulate the stability and bioactivity of MTFs by designing biocompatible materials at the sub-nanoscale.

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