Aliphatic Chain Modification of Collagen Type I: Development of Elastomeric, Compliant, and Suturable Scaffolds

被引:7
作者
Yu, Christine [1 ]
Sharma, Shivang [2 ]
Fang, Chen Hao [2 ]
Jeong, Harrison [2 ]
Li, Jiuru [2 ]
Joke, Gregory [3 ]
Bivalacqua, Trinity J. [3 ,4 ,5 ,6 ]
Singh, Anirudha [2 ,3 ]
机构
[1] Johns Hopkins Univ, Dept Biomed Engn, Baltimore, MD 21218 USA
[2] Johns Hopkins Univ, Dept Chem & Biomol Engn, Baltimore, MD 21218 USA
[3] Johns Hopkins Sch Med, James Buchanan Brady Urol Inst, Dept Urol, Baltimore, MD 21287 USA
[4] Johns Hopkins Med Inst, Dept Surg, Baltimore, MD 21287 USA
[5] Johns Hopkins Med Inst, Dept Oncol, Baltimore, MD 21287 USA
[6] Sidney Kimmel Comprehens Canc Ctr SKCC, Baltimore, MD 21287 USA
关键词
collagen; compliance; rubber; suture strength; scaffolds; bioelastomer; hyperextensible; BLADDER ACELLULAR MATRIX; HUMAN URINARY-BLADDER; SMOOTH-MUSCLE; STEM-CELLS; RAT MODEL; TISSUE; AUGMENTATION; ELASTIN; BIOMATERIALS; REGENERATION;
D O I
10.1021/acsabm.9b00781
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Collagen type I is one of the most suitable natural biomaterials for constructing tissue-engineering scaffolds. Despite their biocompositional similarities to physiological tissues, these scaffolds lack host specific and matching mechanical properties. While it is possible to enhance their stiffness by cross-linking, it often compromises their abilities to expand or strain under minimal stress, that is, compliance (inverse of stiffness). Here, we report a simple, inexpensive, cross-linking- and elastin-free collagen-based material composition for developing elastomeric scaffolds that are highly compliant, soft yet strong, and suturable, therefore, clinically attractive. Our strategy utilizes room-temperature modification of collagen type I scaffolds with linear aliphatic chains of various lengths (C7-C18). In particular, dodecenylsuccinic anhydride (size: C12, DDSA) modified scaffolds elongated up to 400% of its initial length compared to only similar to 20% for collagen-control within the applied tensile stress of 0.2 MPa without breaking. Furthermore, the suture retention strength value increased to 60 g-force from 30 g-force for collagen control. We confirmed that the C12-modified material remained structurally stable at the physiological temperature (37 degrees C) with a tan value of similar to 0.3, similar to collagen control; however, tan d increased sharply for C12-modified collagen above 42 degrees C, compared to 59 degrees C for collagen control. To understand the mechanism of hyperextensibility, we studied the morphology of the resultant material by transmission electron microscopy (TEM), which showed an altered microstructure of C12-modified collagen scaffolds. While the partially C12-modified sample had a mixture of typical collagen type I triple helix and diffused gelatinized random coil-like configuration, the fully modified samples showed thick wrinkled and entangled ribbon-like microstructures, which was different than that of thermally denatured gelatin. We further confirmed that the resultant material allowed cell growth in vitro and in vivo in a subcutaneous mouse model.
引用
收藏
页码:1331 / 1343
页数:13
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