Immunomodulatory piezoelectric master electrospun membranes for pelvic floor repair

生物医学工程 化学 压电 纳米技术 盆底 材料科学 静电纺丝 组织工程 生物相容性材料 生物物理学 再生医学 仿生材料 原子力显微镜
作者
Xiaohan Fu,Haibo Chen,Wei Geng,Xiao Hou,Wenlan Xing,Min Cui,Xiumei Mo,Xiuyun Li
出处
期刊:Journal of Nanobiotechnology [BioMed Central]
卷期号:24 (1)
标识
DOI:10.1186/s12951-026-04582-0
摘要

Pelvic floor dysfunction (PFD) in women is characterized primarily by the functional degeneration of pelvic support structures, with pelvic organ prolapse (POP) being a common clinical manifestation. Current materials for repairing POP are limited by suboptimal mechanical performance and inadequate anti-inflammatory and antibacterial capabilities. Herein, a immunomodulatory piezoelectric master electrospun membrane is innovatively designed to provide integrated mechanical support, piezoelectric responsiveness, and immune microenvironment regulation. Electrospun membranes with uniformly loaded zinc oxide (ZnO) nanoparticles enabled the sustained release of Zn²⁺ for more than 20 days and achieved a piezoelectric coefficient ( d 33 ) of 5.34 pm/V. The voltage output remained stable under mechanical stimulation cycles, and the ultimate tensile strength could reach 12.11 MPa while maintaining sufficient ductility. In vitro, the immunomodulatory piezoelectric master electrospun membrane exhibited excellent biocompatibility, significantly promoted tube formation by human umbilical vein endothelial cells (HUVECs), and upregulating the expression of IL-4 and IL-10. Moreover, it effectively inhibited inflammatory cell infiltration, promoted orderly collagen deposition, stimulated angiogenesis and accelerated tissue repair when used in vivo to treat abdominal wall muscle defects in rats. Therefore, immunomodulatory piezoelectric master electrospun membrane provides a promising approach for advanced soft tissue regeneration with broad clinical significance. The immunomodulatory piezoelectric master electrospun membrane possesses excellent piezoelectric, anti-inflammatory and antibacterial properties. They have achieved the transformation from passive support to active response, and from single function to multiple synergistic effects, thereby enabling the repair of soft tissues
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