论文标题

氧化铝纳米颗粒在模型肺表面活性剂中诱导的溶胶 - 凝胶过渡

Sol-gel transition induced by alumina nanoparticles in a model pulmonary surfactant

论文作者

Berret, Jean-François, Mousseau, Fanny, Oikonomou, Rémi Le Borgne et Evdokia K.

论文摘要

吸入的空气传播颗粒大于100 nm进入气道,已显示出在肺的肺泡区域中大量沉积。肺泡的内部被约1微米厚的衬里覆盖,称为肺表面活性剂。吸入的纳米颗粒易于与肺液相互作用并修饰肺功能。在这里,我们评估了肺表面活性剂替代品的结构和流变特性,该特性用于治疗呼吸窘迫综合征的早产婴儿。在组成,结构和功能方面,咖喱被认为是内源性肺表面活性剂的可靠模型。使用基于磁性驱动的电线的活动微流变学,我们发现Curosurf分散剂在0至80 g L-1的脂质浓度下表现出牛顿的行为,并且粘度遵循了针对各种胶体的Krieger-Dougherty定律。添加了40 nm氧化铝纳米片,会发现康维罗夫流变学的显着变化。然后,分散体进入以无限粘度和非零平衡弹性模量为特征的软固相。由纳米颗粒诱导的溶胶 - 凝胶过渡被解释为氧化铝/囊泡相互作用的结果,这是通过透射电子显微镜进行了说明的。它还表明与肺液结构和动力学特性的修饰有关的潜在毒性。

Inhaled airborne particles smaller than 100 nm entering the airways have been shown to deposit in significant amount in the alveolar region of the lungs. The interior of the alveoli is covered with a ~ 1 micron thick lining fluid, called pulmonary surfactant. Inhaled nanoparticles are susceptible to interact with the lung fluid and modify pulmonary functions. Here we evaluate the structural and rheological properties of the pulmonary surfactant substitute Curosurf which is administered to premature babies for the treatment of respiratory distress syndrome. Curosurf is considered a reliable model of endogenous pulmonary surfactant in terms of composition, structure and function. Using active microrheology based on magnetically actuated wires, we find that Curosurf dispersions exhibit a Newtonian behavior at lipid concentration from 0 to 80 g L-1, and that the viscosity follows the Krieger-Dougherty law observed for a wide variety of colloids. Upon addition of 40 nm alumina nanoplatelets, a significant change of the Curosurf rheology is noticed. The dispersions then enter a soft solid phase characterized by an infinite viscosity and a non-zero equilibrium elastic modulus. The sol-gel transition induced by the nanoparticles is interpreted as the result of the alumina/vesicle interaction, which are illustrated by transmission electron microscopy. It also suggests a potential toxicity associated with the modification of the lung fluid structural and dynamical properties.

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