Acknowledgement
Supported by : Wonkwang Institute of Clinical Medicine
References
- Chvapil M, Owen JA, DeYoung DW. A standardized animal model for evaluation of hemostatic effectiveness of various materials. J Trauma 1983;23:1042-7. https://doi.org/10.1097/00005373-198312000-00004
- Petersen JK, Krogsgaard J, Nielsen KM, et al. A comparison between 2 absorbable hemostatic agents: gelatin sponge (Spongostan) and oxidized regenerated cellulose (Surgicel). Int J Oral Surg 1984;13:406-10. https://doi.org/10.1016/S0300-9785(84)80066-6
- Wagner WR, Pachence JM, Ristich J, et al. Comparative in vitro analysis of topical hemostatic agents. J Surg Res 1996; 66:100-8. https://doi.org/10.1006/jsre.1996.0379
- Jetana T, Vongpipatana C, Usawang S, et al. The use of tropical protein-rich leaves as supplements to Thai swamp buffalo receiving a basal diet of rice straw and treated leucaena (Leucaena leucocephala). Trop Anim Health Prod 2011; 43:57-67. https://doi.org/10.1007/s11250-010-9654-7
- Kang JS. Kang jin-sung plastic surgery. 3rd ed. Seoul: Gun-ja publication; 2004.
- Oz MC, Rondinone JF, Shargill NS. FloSeal Matrix: new generation topical hemostatic sealant. J Card Surg 2003;18: 486-93. https://doi.org/10.1046/j.0886-0440.2003.00302.x
- Tomizawa Y. Clinical benefits and risk analysis of topical hemostats: a review. J Artif Organs 2005;8:137-42. https://doi.org/10.1007/s10047-005-0296-x
- Samudrala S. Topical hemostatic agents in surgery: a surgeon's perspective. AORN J 2008;88:S2-11. https://doi.org/10.1016/S0001-2092(08)00586-3
- Venn RD. Reduction of postsurgical blood-replacement needs with Surgicel hemostasis. Med Times 1965;93:1113-6.
-
Blau S, Kanof NB, Simonsen L. Absorbable hemostatic gauze Surgicel
$^{{\circledR}}$ in dermabrasion and dermatologic surgery. Acta Derm Venereol 1960;40:358-61. - Dineen P. The effect of oxidized regenerated cellulose on experimental infected splenotomies. J Surg Res 1977;23:114-25. https://doi.org/10.1016/0022-4804(77)90198-6
- Spangler D, Rothenburger S, Nguyen K, et al. In vitro antimicrobial activity of oxidized regenerated cellulose against antibiotic-resistant microorganisms. Surg Infect (Larchmt) 2003;4:255-62. https://doi.org/10.1089/109629603322419599
- Bing J. Experimental observations on the use of a danish gelatine sponge preparation (>>spongostan<<) as an absorbable haemostatic agent. Acta Pharmacol Toxicol (Copenh) 1947;3:364-72.
- Cegielski M, Izykowska I, Podhorska-Okolow M, et al. Development of foreign body giant cells in response to implantation of Spongostan as a scaffold for cartilage tissue engineering. In Vivo 2008;22:203-6.
- Raghavendra Rao B, Radhakrishna D. Dynamics of cellulase activity during composting of municipal solid waste. Electronic J Environ Agric Food Chem 2008;7:3191-8.
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