引导细胞定向生长的3d打印丝素网治疗盆腔器官脱垂。

IF 5.5 2区 医学 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Biomaterials Science & Engineering Pub Date : 2025-04-14 Epub Date: 2025-03-04 DOI:10.1021/acsbiomaterials.5c00368
Zili Zheng, Min Wang, An Ren, Zhangyuan Cheng, Xiangjuan Li, Chengchen Guo
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引用次数: 0

摘要

盆底支撑结构的损伤经常导致盆腔器官脱垂(POP),从而降低生活质量。手术修复通常包括植入补片以加强受损组织。然而,常用的聚丙烯(PP)网片由于与骨盆组织的机械不匹配而导致严重的并发症。在这项研究中,通过低温3D打印和后拉伸处理,开发和优化了3D打印丝素(SF)网,以提高机械性能和生物相容性,用于POP修复。流变学分析表明,30% wt %的sf基油墨具有1838 Pa·s的零剪切粘度和剪切变薄行为,确保了3D打印过程中的平滑挤出。在3D打印后的低温孵育期间,SF的自组装随着β-片结构的形成而发生,导致具有良好形状保真度的坚固结构。拉伸后处理进一步改善了SF链的排列和纤化,从而增强了机械性能和微带表面,促进了细胞的附着、排列和分化。拉伸后比为150%的SF网在水合状态下的极限拉伸强度为1.49±0.14 MPa,断裂伸长率为104±13%,杨氏模量为5.0±0.1 MPa,与盆腔软组织的性能相匹配。体外研究表明,与PP网相比,拉伸后的SF网能更好地促进细胞排列和成肌分化。体内实验结果表明,SF补片具有较好的生物相容性,在长期植入中比PP补片具有更好的细胞浸润和组织整合能力,具有替代传统合成补片安全、有效地用于POP修复和其他临床应用的潜力。
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3D-Printed Silk Fibroin Mesh with Guidance of Directional Cell Growth for Treating Pelvic Organ Prolapse.

Damages to the supportive structure of the pelvic floor frequently result in pelvic organ prolapse (POP), which diminishes the quality of life. Surgical repair typically involves mesh implantation to reinforce the weakened tissues. However, the commonly used polypropylene (PP) mesh can lead to severe complications due to the mechanical mismatch of the mesh with the pelvic tissues. In this study, 3D-printed silk fibroin (SF) meshes are developed and optimized through cryogenic 3D printing followed by post-stretching treatment to enhance mechanical properties and biocompatibility for POP repair. Rheological analysis shows that the 30 wt % SF-based ink exhibited a zero shear viscosity of 1838 Pa·s and shear-thinning behavior, ensuring smooth extrusion during 3D printing. During the cryogenic incubation following 3D printing, self-assembly of SF occurs with the formation of β-sheet structures, leading to robust constructs with good shape fidelity. The post-stretching treatment further improves SF chain alignment and fibrilization, resulting in enhanced mechanical performance and a microstrip surface that promotes cell attachment, alignment, and differentiation. The SF mesh with a post-stretching ratio of 150% shows an ultimate tensile strength of 1.49 ± 0.14 MPa, an elongation at break of 104 ± 13%, and a Young's modulus of 5.0 ± 0.1 MPa at a hydrated condition, matching the properties of soft pelvic tissues. In vitro studies show that post-stretched SF meshes facilitated better cell alignment and myogenic differentiation than PP meshes. In vivo assessments demonstrate enhanced biocompatibility of the SF meshes, with better cellular infiltration and tissue integration than PP meshes in the long-term implantation, showing potential as a safe, effective alternative to traditional synthetic meshes for POP repair and other clinical applications.

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来源期刊
ACS Biomaterials Science & Engineering
ACS Biomaterials Science & Engineering Materials Science-Biomaterials
CiteScore
10.30
自引率
3.40%
发文量
413
期刊介绍: ACS Biomaterials Science & Engineering is the leading journal in the field of biomaterials, serving as an international forum for publishing cutting-edge research and innovative ideas on a broad range of topics: Applications and Health – implantable tissues and devices, prosthesis, health risks, toxicology Bio-interactions and Bio-compatibility – material-biology interactions, chemical/morphological/structural communication, mechanobiology, signaling and biological responses, immuno-engineering, calcification, coatings, corrosion and degradation of biomaterials and devices, biophysical regulation of cell functions Characterization, Synthesis, and Modification – new biomaterials, bioinspired and biomimetic approaches to biomaterials, exploiting structural hierarchy and architectural control, combinatorial strategies for biomaterials discovery, genetic biomaterials design, synthetic biology, new composite systems, bionics, polymer synthesis Controlled Release and Delivery Systems – biomaterial-based drug and gene delivery, bio-responsive delivery of regulatory molecules, pharmaceutical engineering Healthcare Advances – clinical translation, regulatory issues, patient safety, emerging trends Imaging and Diagnostics – imaging agents and probes, theranostics, biosensors, monitoring Manufacturing and Technology – 3D printing, inks, organ-on-a-chip, bioreactor/perfusion systems, microdevices, BioMEMS, optics and electronics interfaces with biomaterials, systems integration Modeling and Informatics Tools – scaling methods to guide biomaterial design, predictive algorithms for structure-function, biomechanics, integrating bioinformatics with biomaterials discovery, metabolomics in the context of biomaterials Tissue Engineering and Regenerative Medicine – basic and applied studies, cell therapies, scaffolds, vascularization, bioartificial organs, transplantation and functionality, cellular agriculture
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