FLUID TRANSPORT AND BACTERIAL PENETRATION ALONG ROOT-CANAL FILLINGS

被引:129
作者
WU, MK
DEGEE, AJ
WESSELINK, PR
MOORER, WR
机构
[1] Department of Cariology and Endodontology, Academic Centre for Dentistry Amsterdam (ACTA), Amsterdam
[2] Department of Dental Materials Science, Academic Centre for Dentistry Amsterdam (ACTA), Amsterdam
关键词
FLUID TRANSPORT; LEAKAGE; ROOT CANAL FILLING;
D O I
10.1111/j.1365-2591.1993.tb00560.x
中图分类号
R78 [口腔科学];
学科分类号
1003 ;
摘要
Convective transport of water from the coronal to the apical end of obturated root canals was determined by the movement of an air bubble in a capillary glass tube connected to the apex of the experimental root section using a headspace pressure of 120 kPa (1.2 atm). Water transport through existing voids in the obturated canals could be measured reproducibly in this way. The root canals of 60 human maxillary canines were filled with gutta-percha and sealer by the cold lateral condensation technique. Thirty of these were first exposed to a small motile bacterium, Pseudomonas aeruginosa, growing in a reservoir at the coronal end of each root. After 50 days, two specimens allowed penetration of bacteria to a reservoir at the apical end. All the roots were then assessed quantitatively for convective transport of water. The results were divided into three defined categories: 39 obturated canals were in the 'bacteria tight' category, 14 canals in the 'slight leakage' and 7 canals in the gross leakage' category. The two specimens that showed bacterial penetration fell into the slight and gross leakage categories. The previous test for bacterial passage did not statistically influence the fluid transport pattern of these roots which was measured subsequently. These findings indicate that fluids transport through obturated root canals, most of which do not allow the passage of bacteria.
引用
收藏
页码:203 / 208
页数:6
相关论文
共 18 条
[11]  
Peters LB., Harrison JW., A comparison of leakage of tilling materials in demineralized and non‐demineralized resected root ends under vacuum and non‐vacuum conditions, International Endodontic Journal, 25, pp. 273-278, (1992)
[12]  
Schuurs AHB., Wu M-K., Wesselink PR., Dujvenvoorden HJ., Endodontic leakage studies reconsidered. Part II. Statistical aspects, International Endodontic Journal, 26, pp. 44-52, (1993)
[13]  
Seltzer S., Bender IB., Cognitive dissonance in endodontics, Oral Surgery, Oral Medicine and Oral Pathology, 20, pp. 505-516, (1965)
[14]  
Spaangberg LSW., Acierno TG., Cha BY., Influence of entrapped air on the accuracy of leakage studies using dye penetration methods, Journal of Endodontics, 15, pp. 548-551, (1989)
[15]  
Torabinejad M., Ung B, Kettering JD., In vitro bacterial penetration of coronally unsealed endodontically treated teeth, Journal of Endodontics, 16, pp. 566-569, (1990)
[16]  
Tronstad L., Clinical Endodontics, A Textbook, pp. 157-166, (1991)
[17]  
Van, Ten, Van CA., DER Gulik PS., Compressible laminar flow in a capillary, Journal of Fluid Mechanics, 246, pp. 1-20, (1993)
[18]  
Wu M-K., Wesselink PR., Endodontic leakage studies reconsidered. Part I. Methodology, application and relevancy, International Endodontic Journal, 26, pp. 37-43, (1993)