Enhancement of hemostatic property of plant derived oxidized nanocellulose-silk fibroin based scaffolds by thrombin loading

被引:52
作者
Shefa, Anha Afrin [1 ]
Taz, Mirana [1 ]
Lee, Sun Young [3 ]
Lee, Byong-Taek [1 ,2 ]
机构
[1] Soonchunhyang Univ, Coll Med, Dept Regenerat Med, Cheonan 31151, South Korea
[2] Soonchunhyang Univ 366 1, Coll Med, Inst Tissue Regenerat, Cheonan 31151, South Korea
[3] Korea Forest Res Inst, Dept Forest Prod, Div Environm Mat Engn, Gyeongju, South Korea
基金
新加坡国家研究基金会;
关键词
TEMPO-Oxidized cellulose nanofiber; Silk fibroin; Thrombin; Porous scaffold; Hemostatic; VON-WILLEBRAND-FACTOR; IN-VITRO; CELLULOSE NANOFIBER; FIBRIN SEALANT; GELATIN SPONGE; CHITOSAN; MODEL; COMPOSITE; PERFORMANCE; HEMORRHAGE;
D O I
10.1016/j.carbpol.2018.12.056
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
To combat post-surgical and traumatic bleeding conditions effective hemostasis is of great importance. The study was designed to investigate the effect of thrombin (Th) loading on hemostatic performance of TEMPO-oxidized cellulose nanofiber (TOCN)-silk fibroin (SF) scaffolds. Addition of SF with TOCN significantly (*** P < 0.001) increased blood absorption capacity and improved biocompatibility of TOCN. Thrombin loading potentiated platelet activation and hemostatic property of scaffolds (TOCN-SF-Th) compared to samples without thrombin (TOCN-SF). The hemostatic time of TOCN-SF5-Th in rabbit ear artery bleeding model was reduced (*** P < 0.001) to 114 s from 220 s of TOCN-SF5. Reduction in bleeding time and blood loss of TOCN-SF5-Th in rat tail amputation and liver avulsion model was comparable to commercial hemostat (Floseal). Surface morphology (SEM) of samples applied on bleeding site showed that RBCs and fibrin fiber could strongly interact with TOCNSF and TOCN-SF-Th scaffolds. The result suggests that TOCN-SF-Th can be a promising candidate for designing hemostatic agents.
引用
收藏
页码:168 / 179
页数:12
相关论文
共 101 条
[1]   Silk-based biomaterials [J].
Altman, GH ;
Diaz, F ;
Jakuba, C ;
Calabro, T ;
Horan, RL ;
Chen, JS ;
Lu, H ;
Richmond, J ;
Kaplan, DL .
BIOMATERIALS, 2003, 24 (03) :401-416
[2]   Designing of Combined Nano and Microfiber Network by Immobilization of Oxidized Cellulose Nanofiber on Polycaprolactone Fibrous Scaffold [J].
Amirian, Jhaleh ;
Lee, Sun-Young ;
Lee, Byong-Taek .
JOURNAL OF BIOMEDICAL NANOTECHNOLOGY, 2016, 12 (10) :1864-1875
[3]   Blood Clot Initiation by Mesocellular Foams: Dependence on Nanopore Size and Enzyme Immobilization [J].
Baker, Sarah E. ;
Sawvel, April M. ;
Fan, Jie ;
Shi, Qihui ;
Strandwitz, Nicholas ;
Stucky, Galen D. .
LANGMUIR, 2008, 24 (24) :14254-14260
[4]   Physical characterization of porous materials and correlation with the activity of immobilized enzyme in organic medium [J].
Barros, RJ ;
Wehtje, E ;
Garcia, FAP ;
Adlercreutz, P .
BIOCATALYSIS AND BIOTRANSFORMATION, 1998, 16 (01) :67-85
[5]   Fast method for computing pore size distributions of model materials [J].
Bhattacharya, Supriyo ;
Gubbins, Keith E. .
LANGMUIR, 2006, 22 (18) :7726-7731
[6]  
BICK RL, 1978, SEMIN THROMB HEMOST, V5, P1
[7]   Achieving Hemostasis in the Surgical Field [J].
Boucher, Bradley A. ;
Traub, Oren .
PHARMACOTHERAPY, 2009, 29 (07) :2S-7S
[8]   Carbodiimide Induced Cross-Linking, Ligand Addition, and Degradation in Gelatin [J].
Cammarata, Christopher R. ;
Hughes, Mitchell E. ;
Ofner, Clyde M., III .
MOLECULAR PHARMACEUTICS, 2015, 12 (03) :783-793
[9]  
Cannon JG., 1997, Journal of Medicinal Chemistry, V40, P631
[10]   Structural Characteristics and Biological Performance of Silk Fibroin Nanofiber Containing Microalgae Spirulina Extract [J].
Cha, Bum-Gyu ;
Kwak, Hyo Won ;
Park, A. Reum ;
Kim, Shin Hwan ;
Park, Sook-Young ;
Kim, Hyun-Jeong ;
Kim, Ick-Soo ;
Lee, Ki Hoon ;
Park, Young Hwan .
BIOPOLYMERS, 2014, 101 (04) :307-318