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首页> 外文期刊>Acta biomaterialia >Impact of co-incorporating laminin peptide dopants and neurotrophic growth factors on conducting polymer properties.
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Impact of co-incorporating laminin peptide dopants and neurotrophic growth factors on conducting polymer properties.

机译:共同掺入层粘连蛋白掺杂剂和神经营养生长因子对聚合物性质的影响。

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摘要

Conductive neural interfaces tailored for cell interaction by incorporation of bioactive factors are hypothesized to produce superior neuroprostheses with improved charge transfer capabilities. This study examined the effect of entrapping nerve growth factor (NGF) within the conducting polymer poly(ethylene dioxythiophene) (PEDOT) during electrodeposition to create a polymer capable of stimulating neurite outgrowth from proximal neural tissue. NGF entrapment was performed on polymers doped with laminin peptides DEDEDYFQRYLI and DCDPGYIGSR and, additionally, a conventional dopant, paratoluene sulphonate (pTS). All polymer coatings were analysed for a range of physical, electrical and mechanical properties, with the biological activity of ligands examined using a PC12 neurite outgrowth assay. NGF was successfully entrapped in PEDOT during electrodeposition and was shown to produce a softer interface than conventional conducting polymers and films without the NGF modification. However, it was found that the use of a peptide dopant combined with NGF entrapment resulted in polymers with diminished electrical and mechanical stability. Entrapped NGF was determined to be biologically active, with PEDOT/pTS/NGF producing neurite outgrowth comparable with control films where NGF was supplied via the medium. Future studies will determine the effect of typical neural prosthetic stimulation regimes on the release of neurotrophins and subsequent cell response.
机译:通过掺入生物活性因子,针对细胞相互作用量身定制的导电神经界面,以产生具有改善的电荷转移能力的优异神经调节剂。该研究检测了在电沉积​​期间诱捕神经生长因子(NGF)在电沉积期间导电聚合物聚(乙烯二氧噻吩)(PEDOT)内的效果,以产生能够从近端神经组织刺激神经沸肌产物的聚合物。在掺杂有层粘蛋白肽DedeDyfqryli和DCDPGYIGSR的聚合物上进行NGF熵,另外,常规掺杂剂,双唑苯二甲酸盐(PTS)。分析所有聚合物涂层的一系列物理,电气和机械性能,使用PC12神经沸菌素过度的测定检查配体的生物活性。在电沉积期间成功夹住了NGF,并显示出比常规导电聚合物和没有NGF改性的薄膜产生更软的界面。然而,发现使用肽掺杂剂与NGF陷阱联合产生,导致电气和机械稳定性降低的聚合物。将捕获的NGF确定为生物活性,具有PEDOT / PTS / NGF,其产生神经突槽的NGF与通过培养基供应NGF的对照膜相当。未来的研究将确定典型的神经假体刺激制度对神经营养蛋白释放和随后的细胞反应的影响。

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