Influence of Surface Ligand Density and Particle Size on the Penetration of the Blood-Brain Barrier by Porous Silicon Nanoparticles

被引:15
作者
Zhang, Weisen [1 ]
Zhu, Douer [1 ]
Tong, Ziqiu [1 ]
Peng, Bo [1 ,2 ]
Cheng, Xuan [3 ]
Esser, Lars [1 ,3 ]
Voelcker, Nicolas H. [1 ,4 ,5 ]
机构
[1] Monash Univ, Monash Inst Pharmaceut Sci, Drug Delivery Disposit & Dynam, Parkville, Vic 3052, Australia
[2] Northwestern Polytech Univ, Xian Inst Flexible Elect IFE, Xian Inst Biomed Mat & Engn IBME, Frontiers Sci Ctr Flexible Elect, Xian 710072, Peoples R China
[3] Commonwealth Sci & Ind Res Org CSIRO, Clayton, Vic 3168, Australia
[4] Victorian Node Australian Natl Fabricat Facil, Melbourne Ctr Nanofabricat, Clayton, Vic 3168, Australia
[5] Monash Univ, Dept Mat Sci & Engn, Clayton, Vic 3800, Australia
关键词
blood-brain barrier; nanoparticles; porous silicon nanoparticles; BBB-on-a-chip; ligand density; organ-on-a-chip; nanomedicine; microfluidic model; DRUG-DELIVERY; POLYMERIC NANOPARTICLES; SHAPE; TRANSCYTOSIS; STRATEGIES; CARRIERS; RECEPTOR; AVIDITY;
D O I
10.3390/pharmaceutics15092271
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Overcoming the blood-brain barrier (BBB) remains a significant challenge with regard to drug delivery to the brain. By incorporating targeting ligands, and by carefully adjusting particle sizes, nanocarriers can be customized to improve drug delivery. Among these targeting ligands, transferrin stands out due to the high expression level of its receptor (i.e., transferrin receptor) on the BBB. Porous silicon nanoparticles (pSiNPs) are a promising drug nanocarrier to the brain due to their biodegradability, biocompatibility, and exceptional drug-loading capacity. However, an in-depth understanding of the optimal nanoparticle size and transferrin surface density, in order to maximize BBB penetration, is still lacking. To address this gap, a diverse library of pSiNPs was synthesized using bifunctional poly(ethylene glycol) linkers with methoxy or/and carboxyl terminal groups. These variations allowed us to explore different transferrin surface densities in addition to particle sizes. The effects of these parameters on the cellular association, uptake, and transcytosis in immortalized human brain microvascular endothelial cells (hCMEC/D3) were investigated using multiple in vitro systems of increasing degrees of complexity. These systems included the following: a 2D cell culture, a static Transwell model, and a dynamic BBB-on-a-chip model. Our results revealed the significant impact of both the ligand surface density and size of pSiNPs on their ability to penetrate the BBB, wherein intermediate-level transferrin densities and smaller pSiNPs exhibited the highest BBB transportation efficiency in vitro. Moreover, notable discrepancies emerged between the tested in vitro assays, further emphasizing the necessity of using more physiologically relevant assays, such as a microfluidic BBB-on-a-chip model, for nanocarrier testing and evaluation.
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页数:19
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共 61 条
[1]   Effectiveness of porous silicon nanoparticle treatment at inhibiting the migration of a heterogeneous glioma cell population [J].
Abdalla, Youssef ;
Luo, Meihua ;
Makila, Ermei ;
Day, Bryan W. ;
Voelcker, Nicolas H. ;
Tong, Wing Yin .
JOURNAL OF NANOBIOTECHNOLOGY, 2021, 19 (01)
[2]   Management of neurosurgical implant-associated infections [J].
Anna, Conen ;
Andreas, Raabe ;
Karl, Schaller ;
Christoph, Fux A. ;
Peter, Vajkoczy ;
Andrej, Trampuz .
SWISS MEDICAL WEEKLY, 2020, 150 :w20208
[3]   Nanoparticles in the clinic: An update [J].
Anselmo, Aaron C. ;
Mitragotri, Samir .
BIOENGINEERING & TRANSLATIONAL MEDICINE, 2019, 4 (03)
[4]   Targeting receptor-ligand chemistry for drug delivery across blood-brain barrier in brain diseases [J].
Anthony, Danielle Paige ;
Hegde, Manasa ;
Shetty, Shreya S. ;
Rafic, Thasneema ;
Mutalik, Srinivas ;
Rao, B. S. Satish .
LIFE SCIENCES, 2021, 274
[5]   Anticancer drug-loaded hydrogels as drug delivery systems for the local treatment of glioblastoma [J].
Bastiancich, C. ;
Danhier, P. ;
Preat, V. ;
Danhier, F. .
JOURNAL OF CONTROLLED RELEASE, 2016, 243 :29-42
[6]   The effect of nanoparticle size on the ability to cross the blood-brain barrier: an in vivo study [J].
Betzer, Oshra ;
Shilo, Malka ;
Opochinsky, Renana ;
Barnoy, Eran ;
Motiei, Menachem ;
Okun, Eitan ;
Yadid, Gal ;
Popovtzer, Rachela .
NANOMEDICINE, 2017, 12 (13) :1533-1546
[7]   Functional hydrophobin-coating of thermally hydrocarbonized porous silicon microparticles [J].
Bimbo, Luis M. ;
Makila, Ermei ;
Raula, Janne ;
Laaksonen, Timo ;
Laaksonen, Paivi ;
Strommer, Katharina ;
Kauppinen, Esko I. ;
Salonen, Jarno ;
Linder, Markus B. ;
Hirvonen, Jouni ;
Santos, Helder A. .
BIOMATERIALS, 2011, 32 (34) :9089-9099
[8]   Principles of nanoparticle design for overcoming biological barriers to drug delivery [J].
Blanco, Elvin ;
Shen, Haifa ;
Ferrari, Mauro .
NATURE BIOTECHNOLOGY, 2015, 33 (09) :941-951
[9]   Effect of Nanoparticle Composition, Size, Shape, and Stiffness on Penetration Across the Blood-Brain Barrier [J].
Brown, Tyler D. ;
Habibi, Nahal ;
Wu, Debra ;
Lahann, Joerg ;
Mitragotri, Samir .
ACS BIOMATERIALS SCIENCE & ENGINEERING, 2020, 6 (09) :4916-4928
[10]   Focused ultrasound-mediated drug delivery through the blood-brain barrier [J].
Burgess, Alison ;
Shah, Kairavi ;
Hough, Olivia ;
Hynynen, Kullervo .
EXPERT REVIEW OF NEUROTHERAPEUTICS, 2015, 15 (05) :477-491