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本文引用的文献

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Multiscale Biofabrication of Articular Cartilage: Bioinspired and Biomimetic Approaches.关节软骨的多尺度生物制造:仿生和仿生灵学方法。
Tissue Eng Part B Rev. 2015 Dec;21(6):543-59. doi: 10.1089/ten.TEB.2015.0142. Epub 2015 Oct 20.
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Digestion of Nucleic Acids Starts in the Stomach.核酸的消化始于胃部。
Sci Rep. 2015 Jul 14;5:11936. doi: 10.1038/srep11936.
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Decellularized cartilage may be a chondroinductive material for osteochondral tissue engineering.脱细胞软骨可能是用于骨软骨组织工程的软骨诱导材料。
PLoS One. 2015 May 12;10(5):e0121966. doi: 10.1371/journal.pone.0121966. eCollection 2015.
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Methods of tissue decellularization used for preparation of biologic scaffolds and in vivo relevance.用于制备生物支架的组织去细胞化方法及其体内相关性。
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Enabling Surgical Placement of Hydrogels Through Achieving Paste-Like Rheological Behavior in Hydrogel Precursor Solutions.通过使水凝胶前体溶液具有类似糊状物的流变行为来实现水凝胶的手术放置。
Ann Biomed Eng. 2015 Oct;43(10):2569-76. doi: 10.1007/s10439-015-1277-8. Epub 2015 Feb 18.
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Crosslinkable hydrogels derived from cartilage, meniscus, and tendon tissue.源自软骨、半月板和肌腱组织的可交联水凝胶。
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The bioactivity of cartilage extracellular matrix in articular cartilage regeneration.关节软骨再生中软骨细胞外基质的生物活性。
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Mapping glycosaminoglycan-hydroxyapatite colloidal gels as potential tissue defect fillers.将糖胺聚糖-羟基磷灰石胶体凝胶作为潜在的组织缺损填充材料进行映射。
Langmuir. 2014 Apr 1;30(12):3528-37. doi: 10.1021/la4041985. Epub 2014 Mar 20.
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Electrospun cartilage-derived matrix scaffolds for cartilage tissue engineering.用于软骨组织工程的电纺软骨衍生基质支架
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10
Cell-derived polymer/extracellular matrix composite scaffolds for cartilage regeneration, Part 2: construct devitalization and determination of chondroinductive capacity.用于软骨再生的细胞衍生聚合物/细胞外基质复合支架,第2部分:构建体失活及软骨诱导能力的测定
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由天然来源的失活软骨组成的软骨诱导水凝胶糊剂。

Chondroinductive Hydrogel Pastes Composed of Naturally Derived Devitalized Cartilage.

作者信息

Beck Emily C, Barragan Marilyn, Tadros Madeleine H, Kiyotake Emi A, Acosta Francisca M, Kieweg Sarah L, Detamore Michael S

机构信息

Department of Surgery, University of Kansas Medical Center, Kansas City, MO, 66160, USA.

Department of Molecular Biosciences, University of Kansas, Lawrence, KS, 66045, USA.

出版信息

Ann Biomed Eng. 2016 Jun;44(6):1863-80. doi: 10.1007/s10439-015-1547-5. Epub 2016 Jan 7.

DOI:10.1007/s10439-015-1547-5
PMID:26744243
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5209355/
Abstract

Hydrogel precursors are liquid solutions that are prone to leaking from the defect site once implanted in vivo. Therefore, the objective of the current study was to create a hydrogel precursor that exhibited a yield stress. Additionally, devitalized cartilage extracellular matrix (DVC) was mixed with DVC that had been solubilized and methacrylated (MeSDVC) to create hydrogels that were chondroinductive. Precursors composed of 10% MeSDVC or 10% MeSDVC with 10% DVC were first evaluated rheologically, where non-Newtonian behavior was observed in all hydrogel precursors. Rat bone marrow stem cells (rBMSCs) were mixed in the precursor solutions, and the solutions were then crosslinked and cultured in vitro for 6 weeks with and without exposure to human transforming growth factor β3 (TGF-β3). The compressive modulus, gene expression, biochemical content, swelling, and histology of the gels were analyzed. The DVC-containing gels consistently outperformed the MeSDVC-only group in chondrogenic gene expression, especially at 6 weeks, where the relative collagen II expression of the DVC-containing groups with and without TGF-β3 exposure was 40- and 78-fold higher, respectively, than that of MeSDVC alone. Future work will test for chondrogenesis in vivo and overall, these two cartilage-derived components are promising materials for cartilage tissue engineering applications.

摘要

水凝胶前体是液体溶液,一旦植入体内就容易从缺损部位渗漏。因此,本研究的目的是制备一种具有屈服应力的水凝胶前体。此外,将失活软骨细胞外基质(DVC)与已溶解并甲基丙烯酸化的DVC(MeSDVC)混合,以制备具有软骨诱导性的水凝胶。首先对由10% MeSDVC或10% MeSDVC与10% DVC组成的前体进行流变学评估,发现所有水凝胶前体均表现出非牛顿行为。将大鼠骨髓干细胞(rBMSCs)混入前体溶液中,然后将溶液交联,并在体外培养6周,分别在有和没有暴露于人类转化生长因子β3(TGF-β3)的情况下培养。分析了凝胶的压缩模量、基因表达、生化成分、肿胀情况和组织学。含DVC的凝胶在软骨生成基因表达方面始终优于仅含MeSDVC的组,尤其是在6周时,在有和没有暴露于TGF-β3的情况下,含DVC组的相对胶原蛋白II表达分别比单独的MeSDVC高40倍和78倍。未来的工作将测试体内软骨生成情况,总体而言,这两种源自软骨的成分是软骨组织工程应用中有前景的材料。