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超短单壁碳纳米管通过自旋转插入肺表面活性剂单分子层:形成孔道及机械抑制作用。

Ultrashort Single-Walled Carbon Nanotubes Insert into a Pulmonary Surfactant Monolayer via Self-Rotation: Poration and Mechanical Inhibition.

作者信息

Yue Tongtao, Xu Yan, Li Shixin, Luo Zhen, Zhang Xianren, Huang Fang

机构信息

State Key Laboratory of Organic-Inorganic Composites, Beijing University of Chemical Technology , Beijing 100029, China.

出版信息

J Phys Chem B. 2017 Apr 6;121(13):2797-2807. doi: 10.1021/acs.jpcb.7b00297. Epub 2017 Mar 22.

Abstract

It has been widely accepted that longer single-walled carbon nanotubes (SWCNTs) exhibit higher toxicity by causing severe pneumonia once inhaled, yet relatively little is known regarding the potential toxicity of ultrashort SWCNTs, which are of central importance to the development of suitable vehicles for biomedical applications. Here, by combining coarse-grained molecular dynamics (CGMD), pulling simulations, and scaling analysis, we demonstrate that the inhalation toxicity of ultrashort SWCNTs (1.5 nm < l < 5.5 nm) can be derived from the unique behaviors on interaction with the pulmonary surfactant monolayer (PSM), which is located at the air-water interface of alveoli and forms the frontline of the lung host defense. Molecular dynamics (MD) simulations suggest that ultrashort SWCNTs spontaneously insert into the PSM via fast self-rotation. Further translocation toward the water or air phase involves overcoming a high free-energy barrier, indicating that removal of inhaled ultrashort SWCNTs from the PSM is difficult, possibly leading to the accumulation of SWCNTs in the PSM, with prolonged retention and increased inflammation potentials. Under certain conditions, the inserted SWCNTs are found to open hydrophilic pores in the PSM via a mechanism that mimics that of the antimicrobial peptide. Besides, the mechanical property of the PSM is inhibited by the deposited ultrashort SWCNTs through segregation of the inner lipid molecules from the outer phase. Our results bring to the forefront the concern of the inhalation toxicity of ultrashort SWCNTs and provide guidelines for future design of inhaled nanodrug carriers with minimized side effects.

摘要

人们普遍认为,较长的单壁碳纳米管(SWCNT)一旦被吸入会引发严重肺炎,从而表现出更高的毒性,然而对于超短SWCNT的潜在毒性却知之甚少,而超短SWCNT对于开发适用于生物医学应用的载体至关重要。在此,通过结合粗粒度分子动力学(CGMD)、拉伸模拟和标度分析,我们证明超短SWCNT(1.5纳米<长度<5.5纳米)的吸入毒性可能源于其与肺表面活性剂单层(PSM)相互作用的独特行为,肺表面活性剂单层位于肺泡的气-水界面,构成肺部宿主防御的前沿。分子动力学(MD)模拟表明,超短SWCNT通过快速自转自发插入PSM。进一步向水相或气相转移需要克服较高的自由能垒,这表明从PSM中清除吸入的超短SWCNT很困难,可能导致SWCNT在PSM中积累,滞留时间延长且炎症潜力增加。在某些条件下,发现插入的SWCNT通过一种类似于抗菌肽的机制在PSM中打开亲水性孔。此外,沉积的超短SWCNT通过使内部脂质分子与外部相分离来抑制PSM的机械性能。我们的研究结果凸显了对超短SWCNT吸入毒性的关注,并为未来设计副作用最小的吸入式纳米药物载体提供了指导。

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