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Relation between micro- and nanostructure features and biological properties of the decellularized rat liver

机译:微型和纳米结构特征与脱叶大鼠肝脏的生物学性质的关系

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Organ decellularization is one of the promising technologies of regenerative medicine, which allows obtaining cell-free extracellular matrix (ECM), which provide preservation of the composition, architecture, vascular network and biological activity of the ECM. The method of decellularization opens up wide prospects for its practical application not only in the field of creating full-scale bioengineered structures, but also in the manufacture of vessels, microcarriers, hydrogels, and coatings. The main goal of our work was the investigation of structure and biological properties of lyophilized decellularized Wistar rat liver fragments (LDLFs), as well as we assessed the regenerative potential of the obtained ECM. We obtained decellularized liver of a Wistar rat, the vascular network and the main components of the ECM of tissue were preserved. H&E staining of histological sections confirmed the removal of cells. DNA content of ECM is equal to 0.7% of native tissue DNA content. Utilizing scanning probe nanotomogrphy method, we showed sinuous, rough topography and highly nanoporous structure of ECM, which provide high level of mouse 3T3 fibroblast and Hep-G(2) cells biocompatibility. Obtained LDLF had a high regenerative potential, which we studied in an experimental model of a full-thickness rat skin wound healing: we observed the acceleration of wound healing by 2.2 times in comparison with the control.
机译:器官脱细胞化是再生药物的有希望的技术之一,它允许获得无细胞的细胞外基质(ECM),其提供保存的组成,建筑,血管网络和ECM的生物活性。脱细化的方法不仅开辟了其实际应用的广阔前景,而不仅在创造满量程生物工程结构的领域,而且在制造血管,微载体,水凝胶和涂层的领域开辟了广阔的前景。我们工作的主要目标是调查冻干脱细胞的Wistar大鼠肝片段(LDLF)的结构和生物学特性,以及评估所获得的ECM的再生潜力。我们获得了Wistar大鼠的脱细胞肝,保留了血管网络和组织ECM的主要成分。组织学切片的H&E染色证实了细胞的去除。 ECM的DNA含量等于天然组织DNA含量的0.7%。利用扫描探针纳米缩放方法,我们展示了ECM的蜿蜒,粗糙的地形和高度纳米多孔结构,可提供高水平的小鼠3T3成纤维细胞和HEP-G(2)细胞生物相容性。获得的LDLF具有高再生潜力,我们在全厚大鼠皮肤伤口愈合的实验模型中研究:我们观察到与对照相比,观察到伤口愈合的加速度2.2倍。

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