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In Situ Bioconjugation-novel Laser Based Approach To Pure Nanoparticle-conjugates

机译:原位生物共轭-新颖的基于激光的方法制备纯纳米颗粒-共轭物

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摘要

The generation and characterization of nanoparticulate carrier systems is important for drug delivery, biosensing and in vivo or in vitro diagnostics. Conventional nanoparticle generation is based on chemical synthesis methods requiring time intensive reaction and additive design for each material. Successive purification and surface functionalisation is often required after the nanoparticle generation to achieve pure nanoparticle-bioconjugates. We established a novel single step method, which allows the generation of pure nanoparticles and their in situ conjugation with biomolecules bearing electron donating moieties using pulsed laser ablation in liquids. For comparison between unspecific binding and binding through strong dative bonds (here: S-Au), we applied this preparation method to the conjugation of gold nanoparticles with unmodified and thiolated oligonucleotides. In order to determine optimal parameters (laser pulse energy, focus diameter), the influence on productivity of nanoparticle generation and their interaction with oligonucleotides is studied. We report quenching of nanoparticle growth and modification of the surface plasmon resonance as evidence of a successful functionalisation. Their stability in ionic solutions is evidenced with relevance to biological and medical assays. Negligible differences between the two model bioconjugations evidence the universality of the established in situ bioconjugation method.
机译:纳米颗粒载体系统的产生和表征对于药物递送,生物传感以及体内或体外诊断很重要。常规的纳米颗粒的产生基于化学合成方法,该化学合成方法需要每种材料的时间密集型反应和添加剂设计。在纳米颗粒产生后,通常需要连续的纯化和表面功能化以实现纯的纳米颗粒-生物缀合物。我们建立了一种新颖的单步方法,该方法允许在液体中使用脉冲激光烧蚀来生成纯纳米颗粒,并将它们与带有电子供体的生物分子原位偶联。为了比较非特异性结合和通过强固定键的结合(此处为S-Au),我们将这种制备方法应用于未修饰的硫醇化寡核苷酸与金纳米颗粒的结合。为了确定最佳参数(激光脉冲能量,聚焦直径),研究了对纳米颗粒产生的生产率及其与寡核苷酸相互作用的影响。我们报告淬灭纳米粒子的生长和表面等离振子共振的修饰,作为成功功能化的证据。它们在离子溶液中的稳定性与生物学和医学分析有关。两种模型生物偶联之间的微不足道的差异证明了已建立的原位生物偶联方法的普遍性。

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