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In Vitro Studies of Bacterial Cellulose and Magnetic NanoparticlesSmart Nanocomposites for Efficient Chronic Wounds Healing

机译:细菌纤维素和磁性纳米粒子的体外研究智能纳米复合材料可有效治疗慢性伤口

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摘要

The quality of life of patients with chronic wounds can be extremely poor and, therefore, over the past decades, great efforts have been made to develop efficient strategies to improve the healing process and the social impact associated with these conditions. Cell based therapy, as a modern tissue engineering strategy, involves the design of 3D cell-scaffold bioconstructs obtained by preseeding drug loaded scaffolds with undifferentiated cells in order to achieve in situ functional de novo tissue. This paper reports on the development of bionanocomposites based on bacterial cellulose and magnetic nanoparticles (magnetite) for efficient chronic wounds healing. Composites were obtained directly in the cellulose bacterial culture medium by dispersing various amounts of magnetite nanoparticles during the biosynthesis process. After purification and drying, the membranes were characterized by Raman spectroscopy and X-ray diffraction to reveal the presence of magnetite within the bacterial cellulose matrix. Morphological investigation was employed through SEM and TEM analyses on bionanocomposites. The biocompatibility of these innovative materials was studied in relation to human adipose derived stem cells in terms of cellular morphology, viability, and proliferation as well as scaffolds cytotoxic potential.
机译:患有慢性伤口的患者的生活质量可能非常差,因此,在过去的几十年中,人们做出了巨大的努力来开发有效的策略来改善愈合过程以及与这些疾病相关的社会影响。基于细胞的疗法,作为现代组织工程学策略,涉及3D细胞支架生物构建体的设计,该构建体是通过将未分化细胞预装在载有药物的支架中以获得原位功能的新生组织而获得的。本文报道了基于细菌纤维素和磁性纳米颗粒(磁铁矿)的仿生复合材料的开发,可有效治愈慢性伤口。通过在生物合成过程中分散各种数量的磁铁矿纳米颗粒,可以直接在纤维素细菌培养基中获得复合材料。纯化和干燥后,通过拉曼光谱和X射线衍射对膜进行表征,以揭示细菌纤维素基质内存在磁铁矿。通过SEM和TEM分析对仿生复合物进行形态学研究。就细胞形态,生存力和增殖以及支架的细胞毒性潜力而言,针对人类脂肪干细胞对这些创新材料的生物相容性进行了研究。

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