Fluorescence methods (VistaCam iX proof and DIAGNODent pen) for the detection of occlusal carious lesions in teeth recovered from archaeological context.
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Tomasz Lekszycki | Dorota Olczak-Kowalczyk | T. Lekszycki | M. Zalewska | J. Tomczyk | Jacek Tomczyk | Julian Komarnitki | Marta Zalewska | D. Olczak-Kowalczyk | Julian Komarnitki
[1] K. Domett,et al. Agriculture and dental caries? The case of rice in prehistoric Southeast Asia , 2000, World archaeology.
[2] K. Ekstrand,et al. In vitro Comparison of Nyvad’s System and ICDAS-II with Lesion Activity Assessment for Evaluation of Severity and Activity of Occlusal Caries Lesions in Primary Teeth , 2009, Caries Research.
[3] Y. S. Erdal,et al. A new correction procedure for calibrating dental caries frequency. , 1999, American journal of physical anthropology.
[4] P. Lingström,et al. Distribution of dental caries in an early 17th century swedish population with special reference to diet , 1999 .
[5] R. Wilson,et al. Occlusal Caries Diagnosis in Molar Teeth from Bitewing and Panoramic Radiographs , 2001, Primary dental care : journal of the Faculty of General Dental Practitioners.
[6] J J ten Bosch,et al. Optimised microcomputer-guided quantitative microradiography on dental mineralised tissue slices. , 1987, Physics in medicine and biology.
[7] E. de Josselin de Jong,et al. The evaluation of a novel method comparing quantitative light-induced fluorescence (QLF) with spectrophotometry to assess staining and bleaching of teeth , 2010, Clinical Oral Investigations.
[8] A. Lussi,et al. Clinical performance of a laser fluorescence device for detection of occlusal caries lesions. , 2001, European journal of oral sciences.
[9] J. Ezzo. Dietary change and variability at Grasshopper Pueblo, Arizona , 1992 .
[10] S B Dove,et al. Radiographic diagnosis of dental caries. , 2001, Journal of dental education.
[11] V. Baelum,et al. Reliability of a New Caries Diagnostic System Differentiating between Active and Inactive Caries Lesions , 1999, Caries Research.
[12] J. Lukacs. The ‘caries correction factor’: A new method of calibrating dental caries rates to compensate for antemortem loss of teeth , 1995 .
[13] B. Nyvad,et al. Diagnosis versus Detection of Caries , 2004, Caries Research.
[14] S. Kulkarni,et al. Factors that effect dental caries status of medical students in Udaipur city, India. , 2010, International journal of dental hygiene.
[15] A. Lussi,et al. Performance of Fluorescence Methods, Radiographic Examination and ICDAS II on Occlusal Surfaces in vitro , 2008, Caries Research.
[16] D. McComb,et al. Diagnosis of occlusal caries: Part II. Recent diagnostic technologies. , 2001, Journal.
[17] Abdulla Al-Shorman,et al. The frequency and distribution of dental caries and tooth wear in a Byzantine population of Sa'ad, Jordan , 2010 .
[18] Adrian Lussi,et al. Light-emitting diode and laser fluorescence-based devices in detecting occlusal caries. , 2011, Journal of biomedical optics.
[19] C. Deery,et al. Fluorescence-Based Methods for Detecting Caries Lesions: Systematic Review, Meta-Analysis and Sources of Heterogeneity , 2013, PloS one.
[20] A. Keenleyside. Dental pathology and diet at Apollonia, a Greek colony on the Black Sea , 2008 .
[21] Iain A Pretty,et al. Caries detection and diagnosis: novel technologies. , 2006, Journal of dentistry.
[22] S. R. Taban,et al. Comparative study of the effect of direct and indirect digital radiography on the assessment of proximal caries , 2011 .
[23] N B Pitts,et al. Occlusal caries diagnosis: a changing challenge for clinicians and epidemiologists. , 1993, Journal of dentistry.
[24] J. Watson. Prehistoric dental disease and the dietary shift from cactus to cultigens in northwest Mexico , 2008 .
[25] H. Brkić,et al. The frequency and distribution of caries in the mediaeval population of Bijelo Brdo in Croatia (10th-11th century). , 2005, Archives of oral biology.
[26] D. Fine,et al. A longitudinal study of occlusal caries in Newark New Jersey school children: relationship between initial dental finding and the development of new lesions. , 2012, Archives of Oral Biology.
[27] E. Cunha,et al. Dental caries in a Portuguese identified skeletal sample from the late 19th and early 20th centuries. , 2009, American journal of physical anthropology.
[28] E. Kidd,et al. Relating visual and radiographic ranked scoring systems for occlusal caries detection to histological and microbiological evidence. , 2002, Operative dentistry.
[29] V. Mariotti,et al. Continuity or discontinuity of the life-style in central Italy during the Roman Imperial Age-Early Middle Ages transition: diet, health, and behavior. , 2007, American journal of physical anthropology.
[30] A. Jablonski-Momeni,et al. Use of ICDAS-II, Fluorescence-Based Methods, and Radiography in Detection and Treatment Decision of Occlusal Caries Lesions: An In Vitro Study , 2012, International journal of dentistry.
[31] J. Tomczyk,et al. Brief communication: a pilot study: smooth surface early caries (caries incipiens) detection with KaVo DIAGNODent in historical material. , 2013, American journal of physical anthropology.
[32] É. Crubézy,et al. Dental caries, tooth wear and diet in an adult medieval (12th-14th century) population from mediterranean France. , 2009, Archives of oral biology.
[33] G. Eckert,et al. In vitro evaluation of ICDAS and radiographic examination of occlusal surfaces and their association with treatment decisions. , 2011, Operative dentistry.
[34] Choi Youn Hee. International Caries Detection and Assessment System (ICDAS) , 2011 .
[35] G. Mount,et al. A proposal for a new classification of lesions of exposed tooth surfaces. , 2006, International dental journal.
[36] M. Heinzel-Gutenbrunner,et al. Reproducibility and Accuracy of the ICDAS-II for Detection of Occlusal Caries in vitro , 2008, Caries Research.
[37] I A Pretty,et al. In vitro performance of different methods in detecting occlusal caries lesions. , 2013, Journal of dentistry.
[38] K. Reinhard,et al. Human dental microwear caused by calcium oxalate phytoliths in prehistoric diet of the lower Pecos region, Texas. , 1998, American journal of physical anthropology.
[39] M. Gussy,et al. Case study: caries in young children. , 2012, International Journal of Dental Hygiene.
[40] M. Šlaus,et al. Dental health at the transition from the Late Antique to the early Medieval period on Croatia's eastern Adriatic coast , 2011 .
[41] I. Pretty,et al. The caries continuum: opportunities to detect, treat and monitor the re-mineralization of early caries lesions. , 2013, Journal of dentistry.
[42] F. Sundström,et al. Comparison of laser fluorescence and longitudinal microradiography for quantitative assessment of in vitro enamel caries. , 1992, Caries research.
[43] A. C. Bezerra,et al. USE OF DIAGNODENT® FOR DIAGNOSIS OF NON-CAVITATED OCCLUSALDENTIN CARIES , 2008, Journal of applied oral science : revista FOB.
[44] G. Mount,et al. A revised classification of carious lesions by site and size. , 1997, Quintessence international.
[45] A Lussi,et al. Traditional lesion detection aids. , 2009, Monographs in oral science.
[46] M. Zalewska,et al. The prevalence of pulp stones in historical populations from the middle Euphrates valley (Syria). , 2014, American journal of physical anthropology.
[47] C. Gaucher,et al. Minimal intervention dentistry: part 4. Detection and diagnosis of initial caries lesions , 2012, BDJ.
[48] M. Zalewska,et al. Dental caries and chemical analyses in reconstruction of diet, health and hygienic behaviour in the Middle Euphrates valley (Syria). , 2013, Archives of oral biology.
[49] P. Rechmann,et al. Use of new minimum intervention dentistry technologies in caries management. , 2013, Australian dental journal.