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Phosphorus magnesium fiber regulates macrophage polarization through TRPM7 to accelerate wound healing AITranslate

Wenzhou University; Wenzhou University; Wenzhou Medical University; Wenzhou Medical University;Department of Orthopaedics, Lishui People`s Hospital;Department of Orthopaedics, Lishui People`s Hospital;Department of Plastic and Reconstructive Surgery, Hand and Microsurgery;Institute of Metal Research; Wenzhou Medical University; Wenzhou University; Wenzhou University; Wenzhou Medical University
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Publisher: Elsevier
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Abstract AITranslate

Highlights • A micro-scale phosphorus magnesium fiber (PMF) was designed by treating pure magnesium rod in etching solution. • PMF promoted macrophage polarization and accelerated wound healing in mouse full-layer skin wound model. • PMF promotes wound repair by activating TRPM7 channel protein through long-term sustained release of metal ions. Wound healing is a complex process that can be delayed by persistent inflammatory responses after trauma. Many studies have found that in situ application of biomaterials releases metal ions into wounds to promote wound healing, but the underlying mechanism has not been elucidated. Therefore, we developed a novel nanoscale functional material, phosphorus magnesium fiber (PMF), as a wound dressing to explore its association with wound healing. In this study, in vivo wound healing results showed that PMF accelerated wound closure in full-thickness wound animal models, accompanied by collagen deposition and granulation formation. Moreover, PMF accelerated macrophage polarization by regulating TRPM7-ERK1/2 signaling through the long-term release of magnesium ions into the wound, which contributes to enhancing cell proliferation, growth factor production, and synthesis of ECM in the wound bed, ultimately facilitating wound healing. In vitro studies revealed that PMF promoted the polarization of macrophages to the anti-inflammatory M2 phenotype. Meanwhile, PMF up-regulated TRPM7-ERK1/2 expression. In conclusion, our study confirmed the relationship between PMF and macrophage behavior mediated by the TRPM7 channel protein and subsequently investigated the function of PMF in wound healing. This magnesium-based nanofiber material offers an innovative method for treating open wounds and is anticipated to be used as a wound dressing in the field of tissue regeneration.

KeyWords AITranslate

Wound healing Phosphorus magnesium fiber Macrophage polarization TRPM7 channel
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Basic Information:

DOI:https://doi.org/10.1016/j.apmt.2023.101758

Chinese Library Classification Number:

Citation Information:

Highlights • A micro-scale phosphorus magnesium fiber (PMF) was designed by treating pure magnesium rod in etching solution. • PMF promoted macrophage polarization and accelerated wound healing in mouse full-layer skin wound model. • PMF promotes wound repair by activating TRPM7 channel protein through long-term sustained release of metal ions. Wound healing is a complex process that can be delayed by persistent inflammatory responses after trauma. Many studies have found that in situ application of biomaterials releases metal ions into wounds to promote wound healing, but the underlying mechanism has not been elucidated. Therefore, we developed a novel nanoscale functional material, phosphorus magnesium fiber (PMF), as a wound dressing to explore its association with wound healing. In this study, in vivo wound healing results showed that PMF accelerated wound closure in full-thickness wound animal models, accompanied by collagen deposition and granulation formation. Moreover, PMF accelerated macrophage polarization by regulating TRPM7-ERK1/2 signaling through the long-term release of magnesium ions into the wound, which contributes to enhancing cell proliferation, growth factor production, and synthesis of ECM in the wound bed, ultimately facilitating wound healing. In vitro studies revealed that PMF promoted the polarization of macrophages to the anti-inflammatory M2 phenotype. Meanwhile, PMF up-regulated TRPM7-ERK1/2 expression. In conclusion, our study confirmed the relationship between PMF and macrophage behavior mediated by the TRPM7 channel protein and subsequently investigated the function of PMF in wound healing. This magnesium-based nanofiber material offers an innovative method for treating open wounds and is anticipated to be used as a wound dressing in the field of tissue regeneration.

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GB/T 7714-2015 [1] Xuebo Wei, Zhiyong Liao, Liangliang Yang, et al. Applied Materials Today, 2023(31). DOI:10.1016/j.apmt.2023.101758.
MLA [1] Xuebo Wei, et al., Applied Materials Today, no. 31, 2023, https://doi.org/10.1016/j.apmt.2023.101758.
APA [1] Xuebo Wei, Zhiyong Liao, Liangliang Yang, Fangfang Wu, Shaodong Chen, Chuxiao Shao, Xin Wang, Keshen Xiao, Jian Xiao, Ke Xu, Da Sun, & Hongyu Zhang. (2023). Applied Materials Today(31). https://doi.org/10.1016/j.apmt.2023.101758
IEEE [1] Xuebo Wei, Zhiyong Liao, Liangliang Yang, Fangfang Wu, Shaodong Chen, Chuxiao Shao, Xin Wang, Keshen Xiao, Jian Xiao, Ke Xu, Da Sun, and Hongyu Zhang, Applied Materials Today, no. 31, 2023, doi: 10.1016/j.apmt.2023.101758. keywords: {Wound healing;Phosphorus magnesium fiber;Macrophage polarization;TRPM7 channel}