Oxidatively Responsive Chain Extension to Entangle Engineered Protein Hydrogels

被引:47
作者
Tang, Shengchang [1 ]
Glassman, Matthew J. [1 ]
Li, Shuaili [2 ]
Socrate, Simona [3 ]
Olsen, Bradley D. [1 ]
机构
[1] MIT, Dept Chem Engn, Cambridge, MA 02139 USA
[2] CALTECH, Div Chem & Chem Engn, Pasadena, CA 91125 USA
[3] MIT, Harvard Mit Div Hlth Sci & Technol, Cambridge, MA 02139 USA
关键词
CROSS-LINKED NETWORKS; VISCOELASTIC PROPERTIES; ASSOCIATING POLYMERS; THERMOREVERSIBLE GELATION; IN-SITU; DYNAMICS; LIGATION; RHEOLOGY; BEHAVIOR; MATRIX;
D O I
10.1021/ma401684w
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Engineering artificial protein hydrogels for medical applications requires precise control over their mechanical properties, including stiffness, toughness, extensibility, and stability in the physiological environment. Here we demonstrate topological entanglement as an effective strategy to robustly increase the mechanical tunability of a transient hydrogel network based on coiled-coil interactions. Chain extension and entanglement are achieved by coupling the cysteine residues near the N- and C-termini, and the resulting chain distribution is found to agree with the Jacobson Stockmayer theory. By exploiting the reversible nature of the disulfide bonds, the entanglement effect can be switched on and off by redox stimuli. With the presence of entanglements, hydrogels exhibit a 7.2-fold enhanced creep resistance and a suppressed erosion rate by a factor of 5.8, making the gels more mechanically stable in a physiologically relevant open system. While hardly affecting material stiffness (only resulting in a 1.5-fold increase in the plateau modulus), the entanglements remarkably lead to hydrogels with a toughness of 65 000 J m(-3) and extensibility to approximately 3000% engineering strain, which enables the preparation of tough yet soft tissue simulants. This improvement in mechanical properties resembles that from double-network hydrogels but is achieved with the use of a single associating network and topological entanglement. Therefore, redox-triggered chain entanglement offers an effective approach for constructing mechanically enhanced and responsive injectable hydrogels.
引用
收藏
页码:791 / 799
页数:9
相关论文
共 61 条
  • [1] THE RHEOLOGY OF SOLUTIONS OF ASSOCIATING POLYMERS - COMPARISON OF EXPERIMENTAL BEHAVIOR WITH TRANSIENT NETWORK THEORY
    ANNABLE, T
    BUSCALL, R
    ETTELAIE, R
    WHITTLESTONE, D
    [J]. JOURNAL OF RHEOLOGY, 1993, 37 (04) : 695 - 726
  • [2] Protein polymer hydrogels by in situ, rapid and reversible self-gelation
    Asai, Daisuke
    Xu, Donghua
    Liu, Wenge
    Quiroz, Felipe Garcia
    Callahan, Daniel J.
    Zalutsky, Michael R.
    Craig, Stephen L.
    Chilkoti, Ashutosh
    [J]. BIOMATERIALS, 2012, 33 (21) : 5451 - 5458
  • [3] Protein Engineering in the Development of Functional Hydrogels
    Banta, Scott
    Wheeldon, Ian R.
    Blenner, Mark
    [J]. ANNUAL REVIEW OF BIOMEDICAL ENGINEERING, VOL 12, 2010, 12 : 167 - 186
  • [4] Characterization of a genetically engineered elastin-like polypeptide for cartilaginous tissue repair
    Betre, H
    Setton, LA
    Meyer, DE
    Chilkoti, A
    [J]. BIOMACROMOLECULES, 2002, 3 (05) : 910 - 916
  • [5] Mechanical Properties of Ultrahigh Molecular Weight PHEMA Hydrogels Synthesized Using Initiated Chemical Vapor Deposition
    Bose, Ranjita K.
    Lau, Kenneth K. S.
    [J]. BIOMACROMOLECULES, 2010, 11 (08) : 2116 - 2122
  • [7] Hydrophilic elastomeric biomaterials based on resilin-like polypeptides
    Charati, Manoj B.
    Ifkovits, Jamie L.
    Burdick, Jason A.
    Linhardt, Jeffery G.
    Kiick, Kristi L.
    [J]. SOFT MATTER, 2009, 5 (18) : 3412 - 3416
  • [8] Chen YL, 2012, NAT CHEM, V4, P467, DOI [10.1038/nchem.1314, 10.1038/NCHEM.1314]
  • [9] Multifunctional Materials through Modular Protein Engineering
    DiMarco, Rebecca L.
    Heilshorn, Sarah C.
    [J]. ADVANCED MATERIALS, 2012, 24 (29) : 3923 - 3940
  • [10] Phase diagram of solutions of associative polymers
    Dobrynin, AV
    [J]. MACROMOLECULES, 2004, 37 (10) : 3881 - 3893