Block Copolymer Micelles for Controlled Delivery of Glycolytic Enzyme Inhibitors

被引:21
作者
Akter, Shanjida [1 ]
Clem, Brian F. [2 ]
Lee, Hyun Jin [1 ]
Chesney, Jason [2 ]
Bae, Younsoo [1 ]
机构
[1] Univ Kentucky, Dept Pharmaceut Sci, Coll Pharm, Lexington, KY 40536 USA
[2] Univ Louisville, Dept Med, James Graham Brown Canc Ctr, Louisville, KY 40202 USA
关键词
drug delivery; polymer micelles; glycolysis; fructose-2,6-bisphosphate; cancer; DRUG-DELIVERY; BIOLOGICAL SIGNIFICANCE; POLYMERIC MICELLES; SYSTEMS; DESIGN; RAS; 6-PHOSPHOFRUCTO-2-KINASE; BIODISTRIBUTION; TRANSFORMATION; VEHICLES;
D O I
10.1007/s11095-011-0613-4
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
To develop block copolymer micelles as an aqueous dosage form for a potent glycolytic enzyme inhibitor, 3-(3-pyridinyl)-1-(4-pyridinyl)-2-propen-1-one (3PO). The micelles were prepared from poly(ethylene glycol)-poly(aspartate hydrazide) [PEG-p(HYD)] block copolymers to which 3PO was conjugated through an acid-labile hydrazone bond. The optimal micelle formulation was determined following the screening of block copolymer library modified with various aromatic and aliphatic pendant groups. Both physical drug entrapment and chemical drug conjugation methods were tested to maximize 3PO loading in the micelles during the screening. Particulate characterization showed that the PEG-p(HYD) block copolymers conjugated with 3PO (2.08 similar to 2.21 wt.%) appeared the optimal polymer micelles. Block copolymer compositions greatly affected the micelle size, which was 38 nm and 259 nm when 5 kDa and 12 kDa PEG chains were used, respectively. 3PO release from the micelles was accelerated at pH 5.0, potentiating effective drug release in acidic tumor environments. The micelles retained biological activity of 3PO, inhibiting various cancer cells (Jurkat, He-La and LLC) in concentration ranges similar to free 3PO. A novel micelle formulation for controlled delivery of 3PO was successfully prepared.
引用
收藏
页码:847 / 855
页数:9
相关论文
共 34 条
[1]   Nano-engineering block copolymer aggregates for drug delivery [J].
Allen, C ;
Maysinger, D ;
Eisenberg, A .
COLLOIDS AND SURFACES B-BIOINTERFACES, 1999, 16 (1-4) :3-27
[2]  
Bae Y, 2005, MOL BIOSYST, V1, P242, DOI 10.1039/b500266d
[3]   Preparation and biological characterization of polymeric micelle drug carriers with intracellular pH-triggered drug release property: Tumor permeability, controlled subcellular drug distribution, and enhanced in vivo antitumor efficacy [J].
Bae, Y ;
Nishiyama, N ;
Fukushima, S ;
Koyama, H ;
Yasuhiro, M ;
Kataoka, K .
BIOCONJUGATE CHEMISTRY, 2005, 16 (01) :122-130
[4]   Intelligent polymeric micelles from functional poly(ethylene glycol)-poly(amino acid) block copolymers [J].
Bae, Younsoo ;
Kataoka, Kazunori .
ADVANCED DRUG DELIVERY REVIEWS, 2009, 61 (10) :768-784
[5]  
Berdanier CD, 2005, OXIDAT STRESS DIS, V18, P455
[6]   FUNCTIONAL POLY[(ETHYLENE OXIDE)-CO-(BETA-BENZYL-L-ASPARTATE)] POLYMERIC MICELLES - BLOCK-COPOLYMER SYNTHESIS AND MICELLES FORMATION [J].
CAMMAS, S ;
KATAOKA, K .
MACROMOLECULAR CHEMISTRY AND PHYSICS, 1995, 196 (06) :1899-1905
[7]   Small-molecule inhibition of 6-phosphofructo-2-kinase activity suppresses glycolytic flux and tumor growth [J].
Clem, Brian ;
Telang, Sucheta ;
Clem, Amy ;
Yalcin, Abdullah ;
Meier, Jason ;
Simmons, Alan ;
Rasku, Mary Ann ;
Arumugam, Sengodagounder ;
Dean, William L. ;
Eaton, John ;
Lane, Andrew ;
Trent, John O. ;
Chesney, Jason .
MOLECULAR CANCER THERAPEUTICS, 2008, 7 (01) :110-120
[8]   The benefits and challenges associated with the use of drug delivery systems in cancer therapy [J].
Cukierman, Edna ;
Khan, David R. .
BIOCHEMICAL PHARMACOLOGY, 2010, 80 (05) :762-770
[9]   A MODEL OF MICELLIZATION FOR BLOCK-COPOLYMERS IN SOLUTIONS [J].
GAO, ZS ;
EISENBERG, A .
MACROMOLECULES, 1993, 26 (26) :7353-7360
[10]   Causes and consequences of increased glucose metabolism of cancers [J].
Gillies, Robert J. ;
Robey, Ian ;
Gatenby, Robert A. .
JOURNAL OF NUCLEAR MEDICINE, 2008, 49 :24S-42S