Thermo-responsive peptide-based triblock copolymer hydrogels

被引:18
作者
Sanchez-Ferrer, Antoni [1 ]
Kotharangannagari, Venkata Krishna [1 ,2 ]
Ruokolainen, Janne [3 ]
Mezzenga, Raffaele [1 ]
机构
[1] ETH, Inst Food Nutr & Hlth, LFO, CH-8092 Zurich, Switzerland
[2] Univ Fribourg, Dept Phys, Frimat Ctr Nanomat, CH-1700 Fribourg, Switzerland
[3] AALTO Univ, Dept Appl Phys, FI-00076 Helsinki, Finland
关键词
COIL POLYPEPTIDE DIBLOCK; POLYMERS; REHYDRATION; TEMPERATURE; VESICLES; BEHAVIOR; PROTEIN;
D O I
10.1039/c3sm27690b
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
A series of novel thermo-responsive peptide-based triblock copolymers, poly(L-glutamic acid)-b-poly(N-isopropylacrylamide)-b-poly(L-glutamic acid) (PLGA-b-PNIPAM-b-PLGA), were successfully synthesized via ring opening polymerization (ROP) of the gamma-benzyl L-glutamate derivative (BLG-NCA) using a diaminoterminated PNIPAM as a macroinitiator, followed by de-protection of the benzyl groups. These triblock copolymers form physically crosslinked networks after complexation with a diamino-terminated poly(ethylene oxide) (PEO) in an organic solvent through acid-base proton transfer and successive ionic-bonding confirmed by Fourier transform infrared (FTIR) spectroscopy. The secondary structure of the peptide block, before and after complexation, was confirmed by circular dichroism (CD) experiments, showing an alpha-helix conformation of the PLGA segments. Swelling experiments on the ionic-bonded networks showed that the water uptake process strongly depends on the temperature and relative humidity conditions. Thus, higher humidity and temperatures below the lower critical solubility temperature (LCST) of the PNIPAM block increase the amount of water absorbed into the network. These swollen ionic complexes contract and reject water when these thermo-responsive peptide-based hydrogels are heated up above their LCST, making them promising for biomedical applications and drug delivery systems.
引用
收藏
页码:4304 / 4311
页数:8
相关论文
共 47 条
[1]   Biodegradable poly(ethylene glycol)-co-poly(L-lysine)-g-histidine multiblock copolymers for nonviral gene delivery [J].
Bikram, M ;
Ahn, CH ;
Chae, SY ;
Lee, MY ;
Yockman, JW ;
Kim, SW .
MACROMOLECULES, 2004, 37 (05) :1903-1916
[2]  
Block H., 1983, POLYGAMMA BENZYL L G
[3]   Rheology of block copolypeptide solutions: Hydrogels with tunable properties [J].
Breedveld, V ;
Nowak, AP ;
Sato, J ;
Deming, TJ ;
Pine, DJ .
MACROMOLECULES, 2004, 37 (10) :3943-3953
[4]   Temperature-responsive gels and thermogelling polymer matrices for protein and peptide delivery [J].
Bromberg, LE ;
Ron, ES .
ADVANCED DRUG DELIVERY REVIEWS, 1998, 31 (03) :197-221
[5]   Self-assembly of polypeptide-based block copolymer amphiphiles [J].
Carlsen, Autumn ;
Lecommandoux, Sebastein .
CURRENT OPINION IN COLLOID & INTERFACE SCIENCE, 2009, 14 (05) :329-339
[6]   Structure of polypeptide-based diblock copolymers in solution:: Stimuli-responsive vesicles and micelles [J].
Chécot, F ;
Brûlet, A ;
Oberdisse, J ;
Gnanou, Y ;
Mondain-Monval, O ;
Lecommandoux, S .
LANGMUIR, 2005, 21 (10) :4308-4315
[7]   Dual Stimuli-Responsive Supramolecular Polypeptide-Based Hydrogel and Reverse Micellar Hydrogel Mediated by Host-Guest Chemistry [J].
Chen, Yi ;
Pang, Xiao-Hui ;
Dong, Chang-Ming .
ADVANCED FUNCTIONAL MATERIALS, 2010, 20 (04) :579-586
[8]   Injectable Block Copolymer Hydrogels: Achievements and Future Challenges for Biomedical Applications [J].
Cong Truc Huynh ;
Minh Khanh Nguyen ;
Lee, Doo Sung .
MACROMOLECULES, 2011, 44 (17) :6629-6636
[9]   Hydrogels for tissue engineering: scaffold design variables and applications [J].
Drury, JL ;
Mooney, DJ .
BIOMATERIALS, 2003, 24 (24) :4337-4351
[10]   EFFECT OF COMONOMER HYDROPHILICITY AND IONIZATION ON THE LOWER CRITICAL SOLUTION TEMPERATURE OF N-ISOPROPYLACRYLAMIDE COPOLYMERS [J].
FEIL, H ;
BAE, YH ;
FEIJEN, J ;
KIM, SW .
MACROMOLECULES, 1993, 26 (10) :2496-2500