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Tailoring electrospun mesh for a compliant remodeling in the repair of full-thickness abdominal wall defect - The role of decellularized human amniotic membrane and silk fibroin

机译:剪裁Electromun网格符合符合的重塑在全厚腹壁缺陷的修复中 - 脱细胞的人羊膜和丝纤维蛋白的作用

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摘要

Tailored electrospun meshes have been increasingly explored for abdominal wall defect repair in preclinical and clinical studies. However, the fabrication of a bioengineered mesh adapts to the intraperitoneal repair for a compliant remodeling remains a great challenge. In this study, we fabricated a functional mesh by combining polycaprolactone (PCL) with silk fibroin (SF) and decellularized human amniotic membrane (HAM) proportionally via electrospinning. SF was integrated with PCL (40:60 w/w) to regulate the structural flexibility. Micronized HAM was incorporated to PCL/SF (10:90 w/w) to provide a biocompatible milieu with functions being conferred to facilitate intraperitoneal repair. After the blend electrospinning, the PCL/SF/HAM mesh was characterized in vitro and implanted into the rat model with a full-thickness defect for a comprehensive evaluation in comparison to the PCL and PCL/SF meshes. The results demonstrated that electrospinning fabricated PCL stabilized the mechanical elongation toward approximating the native counterparts after integrating with SF. After integrating with HAM, which is coupled with diverse biomolecular compositions, the developed PCL/SF/ HAM mesh provided a better microenvironment for cell proliferation and vasculogenic network over other meshes without HAM addition and possessed the functions capable of inhibiting transforming growth factor 131 (TGF-131) expression and collagen secretion under inflammatory conditions. Moreover, the functional mesh developed less-intensive adhesion along with histologically weaker inflammatory response and foreign body reaction than the PCL and PCL/SF meshes after 90 days in vivo. During the remodeling process, the bioactive structure induced more pronounced neovascularization and remarkable incorporation of collagen and elastin fibers and contractile filaments for a mechanically sufficient and physiologically stiffness-matched healing. This tailor-made mesh expands the intraperitoneal applicability of conventional electrospun meshes for a compliant remodeling in the repair of abdominal wall defects.
机译:在临床前和临床研究中越来越多地探索了量身定制的Electrome网格探索腹壁缺陷修复。然而,生物工程网的制造适应符合符合重塑的腹膜内修复仍然是一个很大的挑战。在这项研究中,我们通过将多己内酯(PCL)与丝素蛋白(SF)和脱皮的人羊膜(火腿)相结合,通过静电纺丝来制造一个功能性网状物。 SF与PCL(40:60 W / W)集成,以调节结构灵活性。将微粉化火腿纳入PCL / SF(10:90 W / W),以提供一种具有赋予功能以促进腹膜内修复的功能的生物相容性的Milieu。在混合静电纺丝之后,PCL / SF / HAM网的特征在于,与PCL和PCL / SF网格相比,具有全厚度缺陷的全厚度缺陷,植入大鼠模型中。结果表明,在与SF集成后,静电纺丝制造的PCL稳定朝向近似天然对应物的机械伸长。在与火腿与不同的生物分子组合物结合后,发育的PCL / SF / HAM网为物质为细胞增殖和血管原性网络提供了更好的微环境,在没有火腿的情况下除火腿的其他网状物中并具有能够抑制转化生长因子131的功能(TGF -131)在炎症条件下表达和胶原蛋白分泌。此外,功能网格呈较少强化粘附以及组织学较弱的炎症反应和异物反应而不是在体内90天后的PCL和PCL / SF网格。在重塑过程中,生物活性结构诱导更明显的新生血管和显着掺入胶原蛋白和弹性蛋白纤维和收缩丝,以获得机械充分和生理刚度匹配的愈合。这种量身定制的网格扩展了常规电纺网格的腹膜内适用性,以符合腹壁缺陷的修复符合标准的重塑。

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  • 来源
    《Materials science & engineering》 |2021年第8期|112235.1-112235.13|共13页
  • 作者单位

    Tongji Univ Shanghai East Hosp Dept Hernia & Abdominal Wall Surg 150 Ji Mo Rd Shanghai 200120 Peoples R China;

    Tongji Univ Shanghai East Hosp Dept Hernia & Abdominal Wall Surg 150 Ji Mo Rd Shanghai 200120 Peoples R China;

    Tongji Univ Shanghai East Hosp Dept Hernia & Abdominal Wall Surg 150 Ji Mo Rd Shanghai 200120 Peoples R China;

    Tongji Univ Shanghai East Hosp Dept Hernia & Abdominal Wall Surg 150 Ji Mo Rd Shanghai 200120 Peoples R China;

    Tongji Univ Shanghai East Hosp Dept Hernia & Abdominal Wall Surg 150 Ji Mo Rd Shanghai 200120 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Tailored mesh; Decellularized human amniotic membrane; Silk fibroin; Stiffness-matched; Compliant remodeling;

    机译:量身定制的网状物;脱细胞的人羊膜;丝素蛋白;刚度匹配;符合补偿;

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