Development of PLGA micro- and nanorods with high capacity of surface ligand conjugation for enhanced targeted delivery

被引:0
作者
Jiafu Cao [1 ]
JinSeok Choi [1 ,2 ]
Murtada AOshi [1 ]
Juho Lee [1 ]
Nurhasni Hasan [1 ]
Jihyun Kim [1 ,3 ]
JinWook Yoo [1 ]
机构
[1] College of Pharmacy, Pusan National University
[2] Department of Medical Management, Chodang University
[3] College of Nanoscience & Nanotechnology, Pusan National University
关键词
Particle shape; PLGA nanoparticles; Film-stretching method; Surface modification; Targeted drug delivery;
D O I
暂无
中图分类号
R943 [制剂学];
学科分类号
100602 ; 100702 ;
摘要
Particle shape has been recognized as one of the key properties of nanoparticles in biomedical applications including targeted drug delivery. Targeting ability of shape-engineered particles depends largely on targeting ligands conjugated on the particle surface. However, poor capacity for surface ligand conjugation remains a problem in anisotropic nanoparticles made with biodegradable polymers such as PLGA. In this study, we prepared anisotropic PLGA nanoparticles with abundant conjugatable surface functional groups by a film stretching-based fabrication method with poly(ethylene-alt-maleic acid)(PEMA). Scanning electron microscopy images showed that microrods and nanorods were successfully fabricated by the PEMA-based film stretching method. The presence of surface carboxylic acid groups was confirmed by confocal microscopy and zeta potential measurements. Using the improved film-stretching method, the amount of protein conjugated to the surface of nanorods was increased three-fold. Transferrin-conjugated, nanorods fabricated by the improved method exhibited higher binding and internalization than unmodified counterparts. Therefore, the PEMA-based film-stretching system presented in this study would be a promising fabrication method for non-spherical biodegradable polymeric micro-and nanoparticles with high capacity of surface modifications for enhanced targeted delivery.
引用
收藏
页码:86 / 94
页数:9
相关论文
共 25 条
[1]   Recent advance of pH-sensitive nanocarriers targeting solid tumors [J].
Sim T. ;
Lim C. ;
Hoang N.H. ;
Oh K.T. .
Journal of Pharmaceutical Investigation, 2017, 47 (5) :383-394
[2]   Surface modification of lipid-based nanocarriers for cancer cell-specific drug targeting [J].
Kim C.H. ;
Lee S.G. ;
Kang M.J. ;
Lee S. ;
Choi Y.W. .
Journal of Pharmaceutical Investigation, 2017, 47 (3) :203-227
[3]   An automated multidimensional thin film stretching device for the generation of anisotropic polymeric micro- and nanoparticles [J].
Meyer, Randall A. ;
Meyer, Randall S. ;
Green, Jordan J. .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2015, 103 (08) :2747-2757
[4]  
Shape and size-dependent immune response to antigen-carrying nanoparticles[J] . Sunny Kumar,Aaron C. Anselmo,Amrita Banerjee,Michael Zakrewsky,Samir Mitragotri.Journal of Controlled Release . 2015
[5]  
Non-spherical micro- and nanoparticles: fabrication, characterization and drug delivery applications[J] . Roman Mathaes,Gerhard Winter,Ahmed Besheer,Julia Engert.Expert Opinion on Drug Delivery . 2015 (3)
[6]  
Size-controlled biodegradable nanoparticles: Preparation and size-dependent cellular uptake and tumor cell growth inhibition[J] . Jin-Seok Choi,Jiafu Cao,Muhammad Naeem,Jinki Noh,Nurhasni Hasan,Hoo-Kyun Choi,Jin-Wook Yoo.Colloids and Surfaces B: Biointerfaces . 2014
[7]   Particle shape dependence of CD8+T cell activation by artificial antigen presenting cells [J].
Sunshine, Joel C. ;
Perica, Karlo ;
Schneck, Jonathan P. ;
Green, Jordan J. .
BIOMATERIALS, 2014, 35 (01) :269-277
[8]   Mammalian cells preferentially internalize hydrogel nanodiscs over nanorods and use shape-specific uptake mechanisms [J].
Agarwal, Rachit ;
Singh, Vikramjit ;
Jurney, Patrick ;
Shi, Li ;
Sreenivasan, S. V. ;
Roy, Krishnendu .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2013, 110 (43) :17247-17252
[9]   The margination propensity of ellipsoidal micro/nanoparticles to the endothelium in human blood flow [J].
Thompson, Alex J. ;
Mastria, Eric M. ;
Eniola-Adefeso, Omolola .
BIOMATERIALS, 2013, 34 (23) :5863-5871
[10]  
The Effect of Nanoparticle Size, Shape, and Surface Chemistry on Biological Systems[J] . Alexandre Albanese,Peter S. Tang,Warren C.W. Chan.Annual Review of Biomedical Engineering . 2012