Manganese Enhances the Osteogenic Effect of Silicon-Hydroxyapatite Nanowires by Targeting T Lymphocyte Polarization.
Ruomei LiZhiyu ZhuBolin ZhangTing JiangCheng ZhuPeng MeiYu JinRuiqing WangYixin LiWeiming GuoChengxiao LiuLunguo XiaBing FangPublished in: Advanced science (Weinheim, Baden-Wurttemberg, Germany) (2023)
Biomaterials encounter considerable challenges in extensive bone defect regeneration. The amelioration of outcomes may be attainable through the orchestrated modulation of both innate and adaptive immunity. Silicon-hydroxyapatite, for instance, which solely focuses on regulating innate immunity, is inadequate for long-term bone regeneration. Herein, extra manganese (Mn)-doping is utilized for enhancing the osteogenic ability by mediating adaptive immunity. Intriguingly, Mn-doping engenders heightened recruitment of CD4 + T cells to the bone defect site, concurrently manifesting escalated T helper (Th) 2 polarization and an abatement in Th1 cell polarization. This consequential immune milieu yields a collaborative elevation of interleukin 4, secreted by Th2 cells, coupled with attenuated interferon gamma, secreted by Th1 cells. This orchestrated interplay distinctly fosters the osteogenesis of bone marrow stromal cells and effectuates consequential regeneration of the mandibular bone defect. The modulatory mechanism of Th1/Th2 balance lies primarily in the indispensable role of manganese superoxide dismutase (MnSOD) and the phosphorylation of adenosine 5'-monophosphate-activated protein kinase (AMPK). In conclusion, this study highlights the transformative potential of Mn-doping in amplifying the osteogenic efficacy of silicon-hydroxyapatite nanowires by regulating T cell-mediated adaptive immunity via the MnSOD/AMPK pathway, thereby creating an anti-inflammatory milieu favorable for bone regeneration.
Keyphrases
- bone regeneration
- bone marrow
- protein kinase
- mesenchymal stem cells
- transition metal
- room temperature
- induced apoptosis
- stem cells
- cell cycle arrest
- immune response
- dendritic cells
- anti inflammatory
- skeletal muscle
- cell therapy
- endoplasmic reticulum stress
- cell death
- single cell
- hydrogen peroxide
- type diabetes
- peripheral blood
- metal organic framework
- risk assessment
- weight loss
- insulin resistance
- cell proliferation
- human health