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生物活性有机玫瑰花结纳米管促进感觉神经突生长。

Bioactive Organic Rosette Nanotubes Support Sensory Neurite Outgrowth.

作者信息

Puzan Marissa L, Legesse Belete, Koppes Ryan A, Fenniri Hicham, Koppes Abigail N

出版信息

ACS Biomater Sci Eng. 2018 May 14;4(5):1630-1640. doi: 10.1021/acsbiomaterials.8b00326. Epub 2018 Apr 5.

Abstract

Regardless of the intervention for peripheral nerve repair, slow rates of axonal regeneration often result in poor clinical outcomes. Thus, using new materials such as biologically inspired, biocompatible, organic rosette nanotubes (RNTs) could provide a tailorable scaffold to modulate neurite extension and attachment for improved nerve repair. RNTs are obtained through the spontaneous self-assembly of a synthetic DNA base analogue featuring the hydrogen bond triads of both guanine and cytosine, the G∧C base. Here, we investigated the potential of RNTs functionalized with lysine and Arg-Gly-Asp-Ser-Lys (SK) peptide to support neural growth. We hypothesized that (a) due to their dimensions, the RNTs would support neuron attachment, and (b) their conjugation to the integrin-binding peptide SK would further enhance neurite outgrowth compared to unfunctionalized RNT. Neurite extension was examined on a variety of RNT structures, including RNT with a lysine side chain (K1), a mixture of the K1 and a free RGDS peptide, RNT alone, an RGDSK-functionalized RNT, in addition to poly-d-lysine and laminin controls. Both whole dorsal root ganglion (DRG) and single dissociated DRG neurons were seeded onto RNT-coated substrates containing various ratios of peptides. Analysis of neuron morphometrics showed that RNT blends support DRG neuron attachment and neurite extension, with RGDS presentation increasing neurite outgrowth from whole DRG by up to 47% over a 7-day period compared to K1 alone ( < 0.013). In addition, while RNTs increased the sprouting of primary neurites extending from dissociated DRG neurons, the total neurite outgrowth per neuron remained the same. These results show that functionalized biomimetic RNTs provide a support for neurite growth and extension and have the ability to modulate neuronal morphology. These results also pave the way for the design of injectable RNT-based nanomaterials that support guided neural regeneration following traumatic injury.

摘要

无论采用何种外周神经修复干预措施,轴突再生速度缓慢往往导致临床效果不佳。因此,使用诸如受生物启发的、生物相容性的有机玫瑰花结纳米管(RNTs)等新材料,可以提供一种可定制的支架,以调节神经突的延伸和附着,从而改善神经修复。RNTs是通过一种具有鸟嘌呤和胞嘧啶氢键三联体的合成DNA碱基类似物(G∧C碱基)的自发自组装获得的。在此,我们研究了用赖氨酸和精氨酸-甘氨酸-天冬氨酸-丝氨酸-赖氨酸(SK)肽功能化的RNTs支持神经生长的潜力。我们假设:(a)由于其尺寸,RNTs将支持神经元附着;(b)与未功能化的RNTs相比,它们与整合素结合肽SK的结合将进一步增强神经突的生长。在多种RNT结构上检测神经突延伸情况,包括带有赖氨酸侧链的RNT(K1)、K1与游离RGDS肽的混合物、单独的RNT、RGDSK功能化的RNT,此外还有聚-d-赖氨酸和层粘连蛋白对照。将整个背根神经节(DRG)和单个解离的DRG神经元接种到含有不同肽比例的RNT包被底物上。对神经元形态计量学的分析表明,RNT混合物支持DRG神经元附着和神经突延伸,与单独的K1相比,在7天内,RGDS呈现使整个DRG的神经突生长增加了高达47%(P<0.013)。此外,虽然RNTs增加了从解离的DRG神经元延伸出的初级神经突的发芽,但每个神经元的总神经突生长保持不变。这些结果表明,功能化的仿生RNTs为神经突生长和延伸提供了支持,并具有调节神经元形态的能力。这些结果也为设计基于RNT的可注射纳米材料铺平了道路,该材料可支持创伤性损伤后的引导神经再生。

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