Jung Seungmoon, Bang Minji, Kim Byung Sun, Lee Sungmun, Kotov Nicholas A, Kim Bongsoo, Jeon Daejong
Department of Bio and Brain Engineering, Korea Advanced Institute of Science and Technology (KAIST), Daejeon, Republic of Korea.
Department of Biomedical Engineering, Khalifa University of Science, Technology, and Research, Abu Dhabi, United Arab Emirates.
PLoS One. 2014 Mar 13;9(3):e91360. doi: 10.1371/journal.pone.0091360. eCollection 2014.
Due to their inert property, gold nanoparticles (AuNPs) have drawn considerable attention; their biological application has recently expanded to include nanomedicine and neuroscience. However, the effect of AuNPs on the bioelectrical properties of a single neuron remains unknown. Here we present the effect of AuNPs on a single neuron under physiological and pathological conditions in vitro. AuNPs were intracellularly applied to hippocampal CA1 neurons from the mouse brain. The electrophysiological property of CA1 neurons treated with 5- or 40-nm AuNPs was assessed using the whole-cell patch-clamp technique. Intracellular application of AuNPs increased both the number of action potentials (APs) and input resistance. The threshold and duration of APs and the after hyperpolarization (AHP) were decreased by the intracellular AuNPs. In addition, intracellular AuNPs elicited paroxysmal depolarizing shift-like firing patterns during sustained repetitive firings (SRF) induced by prolonged depolarization (10 sec). Furthermore, low Mg2+-induced epileptiform activity was aggravated by the intracellular AuNPs. In this study, we demonstrated that intracellular AuNPs alter the intrinsic properties of neurons toward increasing their excitability, and may have deleterious effects on neurons under pathological conditions, such as seizure. These results provide some considerable direction on application of AuNPs into central nervous system (CNS).
由于其惰性特性,金纳米颗粒(AuNPs)已引起了广泛关注;其生物学应用最近已扩展到纳米医学和神经科学领域。然而,AuNPs对单个神经元生物电特性的影响仍然未知。在此,我们展示了在体外生理和病理条件下AuNPs对单个神经元的影响。将AuNPs细胞内应用于来自小鼠大脑的海马CA1神经元。使用全细胞膜片钳技术评估用5或40纳米AuNPs处理的CA1神经元的电生理特性。细胞内应用AuNPs增加了动作电位(APs)的数量和输入电阻。细胞内AuNPs降低了APs的阈值和持续时间以及超极化后电位(AHP)。此外,在由长时间去极化(10秒)诱导的持续重复放电(SRF)期间,细胞内AuNPs引发了阵发性去极化移位样放电模式。此外,细胞内AuNPs加剧了低镁离子诱导的癫痫样活动。在本研究中,我们证明细胞内AuNPs改变神经元的内在特性以增加其兴奋性,并且在病理条件下(如癫痫发作)可能对神经元产生有害影响。这些结果为AuNPs在中枢神经系统(CNS)中的应用提供了一些重要指导。