Rapid Assessment of Nanoparticle Extravasation in a Microfluidic Tumor Model

被引:41
作者
Vu, Mai N. [1 ,2 ,3 ,4 ]
Rajasekhar, Pradeep [1 ,3 ]
Poole, Daniel P. [1 ,3 ]
Khor, Song Yang [1 ,2 ]
Truong, Nghia P. [1 ,2 ]
Nowell, Cameron J. [3 ]
Quinn, John F. [1 ,2 ]
Whittaker, Michael [1 ,2 ]
Veldhuis, Nicholas A. [1 ,3 ]
Davis, Thomas P. [1 ,2 ,5 ]
机构
[1] Monash Univ, Australian Res Council Ctr Excellence Convergent, Parkville, Vic 3052, Australia
[2] Monash Univ, Drug Delivery Disposit & Dynam, Monash Inst Pharmaceut Sci, Parkville, Vic 3052, Australia
[3] Monash Univ, Drug Discovery Biol, Monash Inst Pharmaceut Sci, Parkville, Vic 3052, Australia
[4] Hanoi Univ Pharm, Dept Pharmaceut, Hanoi 10000, Vietnam
[5] Univ Warwick, Dept Chem, Gibbet Hill, Coventry CV4 7AL, W Midlands, England
基金
澳大利亚研究理事会;
关键词
microfluidics; tumor; EPR; edema; TRPV4; endothelium; VASCULAR-PERMEABILITY FACTOR; TRPV4; CHANNELS; MACROMOLECULAR THERAPEUTICS; ADHERENS JUNCTIONS; DRUG-DELIVERY; SHEAR-STRESS; VE-CADHERIN; ION-CHANNEL; CELL-CELL; ACTIN;
D O I
10.1021/acsanm.8b02056
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The development of nanoparticle-based targeted therapeutics for the treatment of cancer requires a well-defined understanding of the tumor microenvironment, which is challenging due to tumor complexity and heterogeneity. Recent advancements in three-dimensional (3D) cell models such as tumor-on-a-chip devices can overcome some of these challenges by providing coculture in vitro systems (tumor surrounded by tubular endothelial cells) that mimic native cellular environments to accurately study the enhanced permeability and retention (EPR) potential of drug delivery systems under flow conditions. However, inducing "leaky" vasculature in endothelial cells surrounding solid tumors in microfluidic devices is not readily controllable and highly dependent on tumor cell identity. Utilizing a microfluidic tumor model (MTM) consisting of a tumor region surrounded by a 3D microvascular network, we have simulated the EPR effect by activating a known regulator of endothelial junction formation and edema: the transient receptor potential vanilloid 4 (TRPV4) ion channel, to rapidly assess extravasation and tumor accumulation of nanoparticles of different sizes and surface chemistries. Treatment with a selective TRPV4 agonist stimulated reorganization of the actin cytoskeleton and disruption of adherens junctions to provide a concentration-dependent or "tunable" leakiness, confirmed by increased tumor uptake of fluorescent dextran macromolecular tracers from the vascular channels. Although this controlled 3D in vitro vascular-edema system may not exemplify all of the complexities of edema mechanisms in vivo, it provides a rapid, materials-focused screening method to assess the extravasation and tumor uptake potential of nanoparticles with distinct properties. We show that the passage of nanoparticles through leaky vasculature is not solely governed by particle size but also by surface chemistry, where surface tertiary amines limit tumor cell association due to unwanted endothelial interactions.
引用
收藏
页码:1844 / 1856
页数:25
相关论文
共 72 条
[21]   Effects of particle size and surface charge on cellular uptake and biodistribution of polymeric nanoparticles [J].
He, Chunbai ;
Hu, Yiping ;
Yin, Lichen ;
Tang, Cui ;
Yin, Chunhua .
BIOMATERIALS, 2010, 31 (13) :3657-3666
[22]   Nanoparticles Penetrate into the Multicellular Spheroid-on-Chip: Effect of Surface Charge, Protein Corona, and Exterior Flow [J].
Huang, Ke ;
Boerhan, Rena ;
Liu, Changming ;
Jiang, Guoqiang .
MOLECULAR PHARMACEUTICS, 2017, 14 (12) :4618-4627
[23]   A Human Disease Model of Drug Toxicity-Induced Pulmonary Edema in a Lung-on-a-Chip Microdevice [J].
Huh, Dongeun ;
Leslie, Daniel C. ;
Matthews, Benjamin D. ;
Fraser, Jacob P. ;
Jurek, Samuel ;
Hamilton, Geraldine A. ;
Thorneloe, Kevin S. ;
McAlexander, Michael Allen ;
Ingber, Donald E. .
SCIENCE TRANSLATIONAL MEDICINE, 2012, 4 (159)
[24]   TRPV4 channels in the human urogenital tract play a role in cell junction formation and epithelial barrier [J].
Janssen, D. A. W. ;
Jansen, C. J. F. ;
Hafmans, T. G. ;
Verhaegh, G. W. ;
Hoenderop, J. G. ;
Heesakkers, J. P. F. A. ;
Schalken, J. A. .
ACTA PHYSIOLOGICA, 2016, 218 (01) :38-48
[25]   A Decade of the Protein Corona [J].
Ke, Pu Chun ;
Lin, Sijie ;
Parak, Wolfgang J. ;
Davis, Thomas P. ;
Caruso, Frank .
ACS NANO, 2017, 11 (12) :11773-11776
[26]   VASCULAR-PERMEABILITY FACTOR, AN ENDOTHELIAL-CELL MITOGEN RELATED TO PDGF [J].
KECK, PJ ;
HAUSER, SD ;
KRIVI, G ;
SANZO, K ;
WARREN, T ;
FEDER, J ;
CONNOLLY, DT .
SCIENCE, 1989, 246 (4935) :1309-1312
[27]   Elucidating the Influences of Size, Surface Chemistry, and Dynamic Flow on Cellular Association of Nanoparticles Made by Polymerization-Induced Self-Assembly [J].
Khor, Song Yang ;
Vu, Mai N. ;
Pilkington, Emily H. ;
Johnston, Angus P. R. ;
Whittaker, Michael R. ;
Quinn, John F. ;
Truong, Nghia P. ;
Davis, Thomas P. .
SMALL, 2018, 14 (34)
[28]  
Kim B, 2010, NAT NANOTECHNOL, V5, P465, DOI [10.1038/nnano.2010.58, 10.1038/NNANO.2010.58]
[29]   Claudin-5 Controls Intercellular Barriers of Human Dermal Microvascular but not Human Umbilical Vein Endothelial Cells [J].
Kluger, Martin S. ;
Clark, Paul R. ;
Tellides, George ;
Gerke, Volker ;
Pober, Jordan S. .
ARTERIOSCLEROSIS THROMBOSIS AND VASCULAR BIOLOGY, 2013, 33 (03) :489-+
[30]   Simulation of complex transport of nanoparticles around a tumor using tumor-microenvironment-on-chip [J].
Kwak, Bongseop ;
Ozcelikkale, Altug ;
Shin, Crystal S. ;
Park, Kinam ;
Han, Bumsoo .
JOURNAL OF CONTROLLED RELEASE, 2014, 194 :157-167