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Laser perforation and cell seeding improve bacterial nanocellulose as a potential cartilage implant in the in vitro cartilage punch model

机译:激光穿孔和细胞播种改善细菌纳米纤维素作为体外软骨冲床模型中的潜在软骨植入物

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摘要

Bacterial nanocellulose (BNC) shows high biocompatibility as wound dressing or dura mater, blood vessel, and cartilage implant. Three-dimensional perforation ( 3-D-empty set) favors migration of chondrocytes into the BNC and cartilage matrix formation. Thus, the regenerative capacity of 3-D-empty set BNC implants was tested in a standardized bovine cartilage punch model. Cartilage rings containing a central defect with an outer diameter of 6 mm and an inner diameter of 2 mm were prepared from the trochlear groove (femur-patellar articulation site). Three-D-empty set BNC implants (cell-free or cell-loaded) were cultured inside the cartilage rings for up to 12 weeks. Cartilage-BNC-constructs were then investigated by histology (hematoxylin/eosin; safranin O) and immunohistology (aggrecan, collagens 1 and 2), as well as for protein content, RNA expression, and implant push-out force. Cartilage-BNC-constructs remained vital with preserved matrix integrity during culture and almost no loss of matrix-bound proteoglycan (aggrecan) or collagen 2 from 'host' cartilage (with very limited quantities of collagen 1). Interestingly, 3-D-empty set BNC implants displayed: (1) significantly increased superficial, but also 3-D cell seeding over time (cell-loaded significantly earlier than cell-free); (2) progressively increased aggrecan/collagen 1 and collagen 2/collagen 1 mRNA ratios, as well as aggrecan and collagen 2 protein levels; and (3) significantly increased push-out forces over time (cell-loaded). Progressively increasing cell seeding and chondrogenic differentiation suggest beginning cartilage regeneration of the 3-D-empty set BNC in this model system, and indicate an excellent potential of 3-D-empty set BNC as a cartilage replacement material. Cell-loading may favor implant performance by accelerating cell colonization.
机译:细菌纳米纤维素(BNC)显示出高生物相容性作为伤口敷料或硬脑膜,血管和软骨植入物。三维穿孔(3-D-空集)融合软骨细胞迁移到BNC和软骨基质形成中。因此,在标准化的牛软骨冲头模型中测试了3-D-空集BNC植入物的再生能力。从Trochlear沟槽(股骨 - 髌骨铰接部位)制备含有6mm的外径和内径为2mm的中央缺陷的软骨环。在软骨环内培养三维空集BNC植入物(无细胞或载能量),长达12周。然后通过组织学(苏木精/曙红; Safranin O)和免疫组织(蛋白核桃,胶原1和2)以及蛋白质含量,RNA表达和植入式推出力来研究软骨-BNC构建体。软骨-BNC构建体仍然存在于培养过程中保存的基质完整性,并且几乎没有来自“宿主”软骨(具有非常有限的胶原1)的基质结合的蛋白多糖(Eggrecan)或胶原2的损失。有趣的是,显示3-D-空集合BNC植入物:(1)显着增加浅表,但随着时间的推移,3d细胞播种(比无细胞显着提高); (2)逐渐增加骨髓/胶原1和胶原2 /胶原1 mRNA比,以及蛋白和胶原2蛋白水平; (3)随着时间的推移显着增加了推出力(Cell-Loaded)。逐渐增加的细胞播种和软骨形成分化表明了该模型系统中的3-D字集BNC的启动软骨再生,并指示3-D字形集BNC作为软骨置换材料的优异电位。细胞负载可以通过加速细胞定植来利用植入性能。

著录项

  • 来源
    《Cellulose 》 |2019年第1期| 共18页
  • 作者单位

    Waldkrankenhaus Rudolf Elle Jena Univ Hosp Dept Orthoped Expt Rheumatol Unit Klosterlausnitzer Str 81 D-07607 Eisenberg Germany;

    Waldkrankenhaus Rudolf Elle Jena Univ Hosp Dept Orthoped Expt Rheumatol Unit Klosterlausnitzer Str 81 D-07607 Eisenberg Germany;

    Tech Univ Munich Klinikum Rechts Isar Dept Orthoped &

    Sportsorthoped Biomech Lab Ismaninger Str 22 D-81675 Munich Germany;

    Polymet Jena eV Wildenbruchstr 15 Jena Germany;

    Polymet Jena eV Wildenbruchstr 15 Jena Germany;

    Waldkrankenhaus Rudolf Elle Jena Univ Hosp Dept Orthoped Chair Orthoped Klosterlausnitzer Str 81 D-07607 Eisenberg Germany;

    Waldkrankenhaus Rudolf Elle Jena Univ Hosp Dept Orthoped Chair Orthoped Klosterlausnitzer Str 81 D-07607 Eisenberg Germany;

    Tech Univ Munich Klinikum Rechts Isar Dept Orthoped &

    Sportsorthoped Biomech Lab Ismaninger Str 22 D-81675 Munich Germany;

    Polymet Jena eV Wildenbruchstr 15 Jena Germany;

    Waldkrankenhaus Rudolf Elle Jena Univ Hosp Dept Orthoped Expt Rheumatol Unit Klosterlausnitzer Str 81 D-07607 Eisenberg Germany;

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

    Bovine cartilage punch model; Three-dimensional perforation; Bacterial nanocellulose; Articular cartilage; Implant push-out force;

    机译:牛软骨打孔模型;三维穿孔;细菌纳米纤维素;关节软骨;植入物推出力;

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