脂质体
生物物理学
抗弯刚度
纳米技术
渗透(战争)
内化
刚度(电磁)
脂质双层
材料科学
纳米医学
化学
小泡
药物输送
膜
纳米颗粒
生物
复合材料
生物化学
细胞
工程类
运筹学
作者
Zhuo Dai,Miaorong Yu,Xin Yi,Zeming Wu,Falin Tian,Yunqiu Miao,Wenyi Song,Shufang He,Ejaj Ahmad,Shiyan Guo,Chunliu Zhu,Xinxin Zhang,Yiming Li,Xinghua Shi,Rui Wang,Yong Gan
出处
期刊:ACS Nano
[American Chemical Society]
日期:2019-06-08
卷期号:13 (7): 7676-7689
被引量:62
标识
DOI:10.1021/acsnano.9b01181
摘要
Small unilamellar vesicles (SUVs), ubiquitous in organisms, play key and active roles in various biological processes. Although the physical properties of the constituent lipid molecules (i.e., the acyl chain length and saturation) are known to affect the mechanical properties of SUVs and consequently regulate their biological behaviors and functions, the underlying mechanism remains elusive. Here, we combined theoretical modeling and experimental investigation to probe the mechanical behaviors of SUVs with different lipid compositions. The membrane bending rigidity of SUVs increased with increasing chain length and saturation, resulting in differences in the vesicle rigidity and deformable capacity. Furthermore, we tested the tumor delivery capacity of liposomes with low, intermediate, and high rigidity as typical models for SUVs. Interestingly, liposomes with intermediate rigidity exhibited better tumor extracellular matrix diffusion and multicellular spheroid (MCS) penetration and retention than that of their stiffer or softer counterparts, contributing to improved tumor suppression. Stiff SUVs had superior cellular internalization capacity but intermediate tumor delivery efficacy. Stimulated emission depletion microscopy directly showed that the optimal formulation was able to transform to a rod-like shape in MCSs, which stimulated fast transport in tumor tissues. In contrast, stiff liposomes hardly deformed, whereas soft liposomes changed their shape irregularly, which slowed their MCS penetration. Our findings introduce special perspectives from which to map the detailed mechanical properties of SUVs with different compositions, provide clues for understanding the biological functions of SUVs, and suggest that liposome mechanics may be a design parameter for enhancing drug delivery.
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