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Selective Targeting of Neurons with Inorganic Nanoparticles: Revealing the Crucial Role of Nanoparticle Surface Charge

机译:具有无机纳米粒子的神经元的选择性靶向:揭示纳米颗粒表面电荷的至关重要作用

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Nanoparticles (NPs) are increasingly used in biomedical applications, but the factors that influence their interactions with living cells need to be elucidated. Here, we reveal the role of NP surface charge in determining their neuronal interactions and electrical responses. We discovered that negatively charged NPs administered at low concentration (10 nM) interact with the neuronal membrane and at the synaptic cleft, whereas positively and neutrally charged NPs never localize on neurons. This effect is shape and material independent. The presence of negatively charged NPs on neuronal cell membranes influences the excitability of neurons by causing an increase in the amplitude and frequency of spontaneous postsynaptic currents at the single cell level and an increase of both the spiking activity and synchronous firing at neural network level. The negatively charged NPs exclusively bind to excitable neuronal cells, and never to nonexcitable glial cells. This specific interaction was also confirmed by manipulating the electrophysiological activity of neuronal cells. Indeed, the interaction of negatively charged NPs with neurons is either promoted or hindered by pharmacological suppression or enhancement of the neuronal activity with tetrodotoxin or bicuculline, respectively. We further support our main experimental conclusions by using numerical simulations. This study demonstrates that negatively charged NPs modulate the excitability of neurons, revealing the potential use of NPs for controlling neuron activity.
机译:纳米颗粒(NPS)越来越多地用于生物医学应用中,但需要阐明影响其与活细胞相互作用的因素。在这里,我们揭示了NP表面电荷在确定其神经元相互作用和电反应时的作用。我们发现,在低浓度(10nm)以低浓度(10nm)施用带负电的NP与神经元膜和突触裂缝相互作用,而正面和中性的NPS从未定位在神经元上。这种效果是形状和材料无关。在神经元细胞膜上存在带负电的NPS通过导致单个细胞水平的自发突触电流的幅度和频率的增加和神经网络水平的同步射击的增加来影响神经元的兴奋性。带负电的NPS专门与激发性神经元细胞结合,而不是不可用的胶质细胞。还通过操纵神经元细胞的电生理活性来证实该特异性相互作用。实际上,带负电荷的NPS与神经元的相互作用分别通过药理抑制或通过具有四曲毒素或双酸碱的神经元活性的增强来促进或阻碍。我们通过使用数值模拟进一步支持我们的主要实验结论。该研究表明,带负电的NPS调节神经元的兴奋性,揭示NPS用于控制神经元活性的潜在使用。

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