首页> 美国卫生研究院文献>Beilstein Journal of Nanotechnology >The different ways to chitosan/hyaluronic acid nanoparticles: templated vs direct complexation. Influence of particle preparation on morphology cell uptake and silencing efficiency
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The different ways to chitosan/hyaluronic acid nanoparticles: templated vs direct complexation. Influence of particle preparation on morphology cell uptake and silencing efficiency

机译:壳聚糖/透明质酸纳米粒子的不同方法:模板化与直接络合。颗粒制备对形态细胞摄取和沉默效率的影响

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摘要

This study is about linking preparative processes of nanoparticles with the morphology of the nanoparticles and with their efficiency in delivering payloads intracellularly. The nanoparticles are composed of hyaluronic acid (HA) and chitosan; the former can address a nanoparticle to cell surface receptors such as CD44, the second allows both for entrapment of nucleic acids and for an endosomolytic activity that facilitates their liberation in the cytoplasm. Here, we have systematically compared nanoparticles prepared either A) through a two-step process based on intermediate (template) particles produced via ionotropic gelation of chitosan with triphosphate (TPP), which are then incubated with HA, or B) through direct polyelectrolyte complexation of chitosan and HA. Here we demonstrate that HA is capable to quantitatively replace TPP in the template process and significant aggregation takes place during the TPP–HA exchange. The templated chitosan/HA nanoparticles therefore have a mildly larger size (measured by dynamic light scattering alone or by field flow fractionation coupled to static or dynamic light scattering), and above all a higher aspect ratio ( / ) and a lower fractal dimension. We then compared the kinetics of uptake and the (antiluciferase) siRNA delivery performance in murine RAW 264.7 macrophages and in human HCT-116 colorectal tumor cells. The preparative method (and therefore the internal particle morphology) had little effect on the uptake kinetics and no statistically relevant influence on silencing (templated particles often showing a lower silencing). Cell-specific factors, on the contrary, overwhelmingly determined the efficacy of the carriers, with, e.g., those containing low-MW chitosan performing better in macrophages and those with high-MW chitosan in HCT-116.
机译:这项研究是关于将纳米颗粒的制备过程与纳米颗粒的形态以及它们在细胞内递送有效载荷的效率联系起来。纳米颗粒由透明质酸(HA)和壳聚糖组成;前者可以处理细胞表面受体(如CD44)的纳米粒子,后者可以捕获核酸并具有内溶酶活性,从而促进其在细胞质中的释放。在这里,我们系统地比较了通过两步法制备的纳米颗粒,该过程是基于壳聚糖与三磷酸(TPP)的离子凝胶化产生的中间(模板)颗粒,该中间步骤(模板),然后将其与HA或B)通过直接聚电解质络合孵育壳聚糖和医管局。在这里,我们证明了HA能够在模板过程中定量替代TPP,并且在TPP-HA交换过程中发生了显着的聚集。因此,模板化的壳聚糖/ HA纳米颗粒具有适度的较大尺寸(通过单独的动态光散射或通过与静态或动态光散射耦合的场流分级测量),并且首先是更高的长宽比( / )和较低的分形维数。然后,我们比较了小鼠RAW 264.7巨噬细胞和人HCT-116结直肠肿瘤细胞摄取和(抗萤光素酶)siRNA传递动力学。制备方法(以及内部颗粒形态)对吸收动力学的影响很小,对沉默的影响也没有统计学上的相关性(模板颗粒通常显示出较低的沉默)。相反,细胞特异性因素绝大多数决定了载体的功效,例如,含有低分子量壳聚糖的载体在巨噬细胞中表现更好,而具有高分子量壳聚糖的载体在HCT-116中表现更好。

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