纳米功能化治疗周围神经系统损伤。

L Pastorino, Federico Caneva Soumetz, C Ruggiero
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引用次数: 13

摘要

一种基于静电逐层自组装技术的结构已经被制造出来,作为一种定制的装置来促进神经再生。在HYAFF - 11表面沉积了一层由阳离子聚二甲基二烯丙基氯化铵(PDDA)和阴离子聚苯乙烯磺酸盐(PSS)三层前驱体、聚d -赖氨酸(PDL)和转化生长因子1特异性抗体(抗tgf -1)组成的多层纳米涂层。利用石英晶体微天平(QCM)对其进行了表征,并在HYAFF 11上进行了应用。多层膜的结构研究证实了抗tgf -1的逐步沉积,平均层厚度为2.2+/-0.2 nm,平均表面密度为0.36+/-0.03 μ g cm(-2)。扫描电子显微镜已用于表征多层均匀性。最后,对多层结构的免疫活性进行了评价。结果表明,抗tgf -1可以以预定的多层结构的活性形式被包含在HYAFF 11上,并可定量控制层厚和重量,为组织工程提供了一种具有巨大潜力的高工具。
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Nanofunctionalisation for the treatment of peripheral nervous system injuries.

A construct based on the electrostatic layer-by-layer self assembly technique has been fabricated, to be used as a tailored device to encourage nerve regeneration. A multilayered nanocoating composed of three precursor bilayers of cationic poly(dimethyldiallylammonium) chloride (PDDA) and anionic poly(styrenesulfonate) (PSS), followed by bilayers of poly-D-lysine (PDL) and antibody specific to transforming growth factor 1 (anti-TGF-1), has been deposited on HYAFF 11. The assembly process has been monitored by quartz crystal microbalance (QCM) for its characterisation and then it has been used on HYAFF 11. Structural studies of the resulting multilayers confirmed stepwise deposition of anti-TGF-1, with an average layer thickness of 2.2+/-0.2 nm and an average surface density of 0.36+/-0.03 mug cm(-2). Scanning electron microscopy has been used to characterise multilayer uniformity. Finally, the immunological activity of the multilayered structure has been assessed. The results show that anti-TGF-1 can be included in its active form in a predetermined multilayered structure onto HYAFF 11 with quantitative control of layer thickness and weight, providing a high tool with great potential in tissue engineering.

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