Elasticity of Nanopartides Influences Their Blood Circulation, Phagocytosis, Endocytosis, and Targeting

被引:509
作者
Anselmo, Aaron C. [1 ]
Zhang, Mengwen [1 ]
Kumar, Sunny [1 ]
Vogus, Douglas R. [1 ]
Menegatti, Stefano [1 ]
Helgeson, Matthew E. [1 ]
Mitragotri, Samir [1 ]
机构
[1] Univ Calif Santa Barbara, Dept Chem Engn, Ctr Bioengn, Santa Barbara, CA 93106 USA
基金
美国国家科学基金会;
关键词
elasticity; nanogel; nanoemulsion; biodistribution; circulation; targeting; nanomedicine; nanoparticles; SHAPE; DELIVERY; BIODISTRIBUTION; DESIGN; ICAM-1; SIZE; NANOMEDICINE; PARTICLES; STIFFNESS; GROWTH;
D O I
10.1021/acsnano.5b00147
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The impact of physical and chemical modifications of nanoparticles on their biological function has been systemically investigated and exploited to improve their circulation and targeting. However, the impact of nanoparticles' flexibility (i.e., elastic modulus) on their function has been explored to a far lesser extent, and the potential benefits of tuning nanoparticle elasticity are not clear. Here, we describe a method to synthesize polyethylene glycol (PEG)-based hydrogel nanoparticles of uniform size (200 nm) with elastic moduli ranging from 0.255 to 3000 kPa. These particles are used to investigate the role of particle elasticity on key functions including blood circulation time, biodistribution, antibody-mediated targeting, endocytosis, and phagocytosis. Our results demonstrate that softer nanoparticles (10 kPa) offer enhanced circulation and subsequently enhanced targeting compared to harder nanoparticles (3000 kPa) in vivo. Furthermore, in vitro experiments show that softer nanoparticles exhibit significantly reduced cellular uptake in immune cells (J774 macrophages), endothelial cells (bEnd.3), and cancer cells (4T1). Tuning nanoparticle elasticity potentially offers a method to improve the biological fate of nanoparticles by offering enhanced circulation, reduced immune system uptake, and improved targeting.
引用
收藏
页码:3169 / 3177
页数:9
相关论文
共 45 条
[21]   Squishy Non-Spherical Hydrogel Microparticles [J].
Haghgooie, Ramin ;
Toner, Mehmet ;
Doyle, Patrick S. .
MACROMOLECULAR RAPID COMMUNICATIONS, 2010, 31 (02) :128-134
[22]   Hydrogel nanoparticles in drug delivery [J].
Hamidi, Mehrdad ;
Azadi, Amir ;
Rafiei, Pedram .
ADVANCED DRUG DELIVERY REVIEWS, 2008, 60 (15) :1638-1649
[23]  
Hayes SH, 2009, INT J CLIN EXP PATHO, V2, P553
[24]   Mechanics of neutrophil phagocytosis: behavior of the cortical tension [J].
Herant, M ;
Heinrich, V ;
Dembo, M .
JOURNAL OF CELL SCIENCE, 2005, 118 (09) :1789-1797
[25]   Vascular Targeting of Nanocarriers: Perplexing Aspects of the Seemingly Straightforward Paradigm [J].
Howard, Melissa ;
Zern, Blaine J. ;
Anselmo, Aaron C. ;
Shuvaev, Vladimir V. ;
Mitragotri, Samir ;
Muzykantov, Vladimir .
ACS NANO, 2014, 8 (05) :4100-4132
[26]  
Jain R, 1999, IEEE MULTIMEDIA, V6, P1, DOI 10.1109/MMUL.1999.809225
[27]   Using shape effects to target antibody-coated nanoparticles to lung and brain endothelium [J].
Kolhar, Poornima ;
Anselmo, Aaron C. ;
Gupta, Vivek ;
Pant, Kapil ;
Prabhakarpandian, Balabhaskar ;
Ruoslahti, Erkki ;
Mitragotri, Samir .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2013, 110 (26) :10753-10758
[28]   Non-viral gene delivery regulated by stiffness of cell adhesion substrates [J].
Kong, HJ ;
Liu, JD ;
Riddle, K ;
Matsumoto, T ;
Leach, K ;
Mooney, DJ .
NATURE MATERIALS, 2005, 4 (06) :460-464
[29]   Hydrogels in Miniemulsions [J].
Landfester, Katharina ;
Musyanovych, Anna .
CHEMICAL DESIGN OF RESPONSIVE MICROGELS, 2010, 234 :39-63
[30]   ICAM-1 signaling in endothelial cells [J].
Lawson, Charlotte ;
Wolf, Sabine .
PHARMACOLOGICAL REPORTS, 2009, 61 (01) :22-32