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首页> 外文期刊>Biomaterials >The effect of quantum dots on synaptic transmission and plasticity in the hippocampal dentate gyrus area of anesthetized rats.
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The effect of quantum dots on synaptic transmission and plasticity in the hippocampal dentate gyrus area of anesthetized rats.

机译:量子点对麻醉大鼠海马齿状回区域突触传递和可塑性的影响。

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摘要

Recently, quantum dots (QDs) have attracted widespread interest in biology and medicine. They are rapidly being used as new tools for both diagnostic and therapeutic purposes. Critical issues for further applications of QDs include the assessment of biocompatibility and biosafety of QDs. Most of previous researches concerning QD cytotoxicity focused on in vitro studies. In the present study, the impairments of acute exposure to well-modified and unmodified QDs (streptavidin-CdSe/ZnS and CdSe QDs, respectively) on synaptic transmission and plasticity were examined in adult rat hippocampal dentate gyrus (DG) area in vivo. The input/output (I/O) functions, paired-pulse ratio (PPR), field excitatory postsynaptic potential (fEPSP) and population spike (PS) amplitude were measured. The results showed that PPR and long-term potentiation (LTP) were all significantly decreased in these two types of QD-exposed rats compared to those in control rats. While the I/O functions and the amplitudes of fEPSP slope and PS amplitude of the baseline were significantly increased under QD exposure. These findings suggest that exposure to QDs, no matter whether they are well modified or not, could impair synaptic transmission and plasticity in the rat DG area in vivo and reveal the potential risks of QD applications in biology and medicine, especially in the toxin-susceptible central nervous system (CNS).
机译:最近,量子点(QD)在生物学和医学领域引起了广泛的兴趣。它们被迅速用作诊断和治疗目的的新工具。 QD进一步应用的关键问题包括QD的生物相容性和生物安全性评估。先前有关QD细胞毒性的研究大多集中于体外研究。在本研究中,在成年大鼠海马齿状回(DG)区域检查了急性暴露于充分修饰和未修饰的QD(分别为链霉亲和素-CdSe / ZnS和CdSe QD)对突触传递和可塑性的损害。测量了输入/输出(I / O)功能,成对脉冲比率(PPR),场兴奋性突触后电位(fEPSP)和种群尖峰(PS)幅度。结果显示,与对照组大鼠相比,这两种暴露于QD的大鼠的PPR和长期增强(LTP)均显着降低。在QD暴露下,I / O功能以及fEPSP斜率的幅度和基线的PS幅度显着增加。这些发现表明,无论量子点是否经过良好修饰,其暴露都可能损害大鼠DG体内的突触传递和可塑性,并揭示了量子点在生物学和医学上的潜在风险,尤其是在对毒素敏感的领域中枢神经系统(CNS)。

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