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可生物降解的多层丝素蛋白-PCL 支架治疗宫颈闭锁:体外细胞相容性和体内细胞外基质重塑。

Biodegradable Multi-layered Silk Fibroin-PCL Stent for the Management of Cervical Atresia: In Vitro Cytocompatibility and Extracellular Matrix Remodeling In Vivo.

机构信息

School of Medical Science and Technology, Indian Institute of Technology Kharagpur, Kharagpur 721302, India.

School of Bioscience, Indian Institute of Technology Kharagpur, Kharagpur 721302, India.

出版信息

ACS Appl Mater Interfaces. 2023 Aug 23;15(33):39099-39116. doi: 10.1021/acsami.3c06585. Epub 2023 Aug 14.

DOI:10.1021/acsami.3c06585
PMID:37579196
Abstract

Cervical atresia is a rare congenital Müllerian duct anomaly that manifests as the absence or deformed nonfunctional presence of the cervix. Herein, a multi-layered biodegradable stent is fabricated using a homogeneous blend of silk fibroin with polycaprolactone using hexafluoroisopropanol as a common solution. Briefly, a concentric cylinder of 3D honeycomb layer is sandwiched within electrospun sheets for fixing at the cervico-uterine junction to pave the way of cervical reconstruction. An average length of 40 mm with 3 mm diameter is fabricated for the hybrid stent design. SEM evidences an evenly distributed pore architecture of the electrospun layer, and mechanical characterization of stent reveals a tensile strength of 1.7 ± 0.2 MPa, with a Young's modulus of 5.9 ± 0.1 MPa. Physico-chemical characterization confirms the presence of silk fibroin and poly caprolactone within the engineered stent. Following 14 days of pepsin enzymatic degradation, 18% degradation and a contact angle measurement of 97° are observed. In vitro cytocompatibility studies are performed using site-specific primary human cervical squamous, columnar epithelial cells, and human endometrial stromal cells. The study demonstrates non-cytotoxic cells' viability (no significant toxicity), improved cell anchoring, adherence among the stent layers, and proliferation in the 3D microenvironment. Furthermore, in vivo subcutaneous studies in the rodent model indicate that the implanted stent undergoes constructive remodeling, neo-tissue creation, neo-vasculature formation, and re-epithelialization while maintaining patency for 2 months.

摘要

宫颈闭锁是一种罕见的先天性 Müllerian 管异常,表现为宫颈缺失或畸形无功能。在此,使用丝素蛋白与聚己内酯的均相混合物,并用六氟异丙醇作为通用溶液,制备了一种多层可生物降解支架。简而言之,将 3D 蜂窝层的同心圆柱体夹在电纺片之间,用于在宫颈-子宫交界处固定,为宫颈重建铺平道路。设计的混合支架的平均长度为 40mm,直径为 3mm。SEM 证据表明电纺层具有均匀分布的孔结构,支架的机械特性表明拉伸强度为 1.7±0.2MPa,杨氏模量为 5.9±0.1MPa。物理化学特性证实了丝素蛋白和聚己内酯在工程支架中的存在。在胃蛋白酶酶解 14 天后,观察到 18%的降解和 97°的接触角测量。进行了体外细胞相容性研究,使用特定部位的人宫颈鳞状上皮细胞、柱状上皮细胞和人子宫内膜基质细胞。该研究表明细胞具有非细胞毒性(无显著毒性)、提高细胞锚固、支架层之间的粘附以及在 3D 微环境中的增殖能力。此外,在啮齿动物模型的皮下体内研究表明,植入的支架经历了建设性重塑、新组织形成、新血管形成和再上皮化,同时保持通畅 2 个月。

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