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MANDİBULAR GÖMÜLÜ KANİNLERİN KONİK IŞINLI BİLGİSAYARLI TOMOGRAFİ İLE AÇISAL, DOĞRUSAL ÖLÇÜMLERİNİN VE DESKRİPTİF ÖZELLİKLERİNİN ÜÇ BOYUTLU ANALİZİ

Year 2020, Volume: 30 Issue: 2, 212 - 218, 15.04.2020
https://doi.org/10.17567/ataunidfd.688820

Abstract

Amaç: Bu çalışmanın amacı, mandibular gömülü kaninlerin konik ışınlı bilgisayarlı tomografi (KIBT) aracılığı ile lokalizasyon, angülasyon ve deskriptif özelliklerini değerlendirmektir.
Gereç ve Yöntem: Çalışmamızda, KIBT görüntülerinde 42 hastada (13 erkek, 29 kadın; ortalama yaşları 20.66 +/– 11.56) toplam 54 mandibular gömülü kanin incelenmiştir. KIBT verileri kullanılarak gömülü kaninlerle ilgili aşağıdaki parametreler analiz edilmiştir: gömülü dişin bulunduğu taraf, lokalizasyon, gömülü kaninlerin oklüzal düzleme ve orta hatta uzaklıkları ile oklüzal düzlem ve orta hat ile yaptığı açılar. Değişkenleri istatistiksel olarak incelemek için Kolmogorov-Smirnov testi ve bağımsız t testi kullanılmıştır.
Bulgular: Mandibular gömülü kaninlerin 27’sinin sağda 27’sinin solda lokalize olduğu görülmüştür. 12 örnekte bilateral gömüklük saptanmış, 30 örnekte ünilateral gömülü kanin tespit edilmiştir. Sağ ve sol ünilateral gömülü kaninlerin kronlarının ve apekslerinin oküzal düzleme ve mandibular orta hatta uzaklıkları arasında istatistiksel olarak anlamlı sonuç bulunmamıştır (p=0.07). Aynı şekilde gömülü mandibular kaninlerin orta hat ve oklüzal düzlem ile yaptığı açılar açısından da sağ ve sol taraf arasında anlamlı bir fark ortaya çıkmamıştır (p>0.05).
Sonuç: Mandibular kaninlerin sağda ve solda gömülü kalması arasında, gerek oklüzal düzlem ve mandibular orta hatta olan mesafeler gerekse orta hat ve oklüzal düzlem ile meydana gelen açılanmalar açısından istatistiksel olarak anlamlı bir sonuç bulunmamıştır. KIBT ile incelenen gömülü dişlerin açısal ve doğrusal ölçümleri konvansiyonel radyografilere göre daha güvenilir veriler sağlamaktadır.
Açısal ölçümler, Konik ışınlı bilgisayarlı tomografi, Etkilenen köpek, Doğrusal ölçümler

ABSTRACT
Aim: The aim of this study is to evaluate the localization, angulation, and descriptive features of mandibular impacted canines through use of cone beam computed tomography.
Material and methods: In our study, cone beam computed tomography scans were examined for 54 mandibular impacted canines among 42 patients. Following impacted canine related parameters were analyzed using CBCT imaging: side of impaction, localization, distance between occlusal plane and midline of impacted canines, and angulation of impacted canines from midline and occlusal plane. A Kolmogorov-Smirnov test and independent statistical t-tests were used to analyze the variables.
Results: In total, 27 mandibular impacted canines were located on the right side and 27 on the left side. Bilateral canine impaction was found in 12 subjects, and 30 subjects had sustained unilateral canine impaction. There were no statistically significant differences between midline distances to impacted canine crown tips on the left and right sides compared to other distance parameters (p=0.07); nor were there any statistically significant differences between the angulation of right and left mandibular impacted canines from midline and occlusal plane (p>0.05).
Conclusion: Mandibular impacted canines were found more unilateral, labial / buccal localization and found more in women. Linear and angular measurements of impacted mandibular canines, which can provide data for future studies, were obtained through three-dimensional images.
Key words: Angular measurements; Cone beam computed tomography; Impacted canine; Linear measurements

References

  • 1. Ardakani FE, Sheikhha M, Ahmadi H. Prevalence of dental developmental anomalies: a radiographic study. Community Dent Health 2007;24:140.
  • 2. Afify AR, Zawawi KH. The prevalence of dental anomalies in the Western region of Saudi Arabia. ISRN Dent 2012;2012:1-5
  • 3. Aitasalo K, Lehtinen R, Oksala E. An orthopantomography study of prevalence of impacted teeth. Int J Oral Surg 1972;1:117-120.
  • 4. Chu F, Li T, Lui V, Newsome P, Chow R, Cheung L. Prevalence of impacted teeth and associated pathologies-a radiographic study of the Hong Kong Chinese population. Hong Kong Med J 2003;9:158-163
  • 5. Rohrer A. Displaced and impacted canines. Int J Orthod Oral Surg Radiogr 1929;15:1003-1020.
  • 6. Dalessandri D, Parrini S, Rubiano R, Gallone D, Migliorati M. Impacted and transmigrant mandibular canines incidence, aetiology, and treatment: a systematic review. Eur J Orthod 2017;39:161-169.
  • 7. Topkara A, Sari Z. Impacted teeth in a turkish orthodontic patient population: prevalence, distribution and relationship with dental arch characteristics. Eur J Paediatr Dent 2012;13:311-316.
  • 8. Ando S, Aizawa K, Nakasjima T, Sanka Y, Shimbo K, Kiyowa K. Transmigration process of the impacted mandibular cuspid. J Nihon Univ Sch Dent 1964;6:66-71.
  • 9. Miranti R, Levbarg M. Extraction of a horizontally transmigrated impacted mandibular canine: report of case. J Am Dent Assoc 1974;88:607-610.
  • 10. Shapira Y, Mischler W, Kuftinec M. The displaced mandibular canine. ASDC J Dent Child 1982;49:362.
  • 11. Al Balbeesi HO, Al Kawari HM, Al Tamimi AS, Al Mubarak I, Al Ibrahim KI, Divakar DD. Association Between Canine Impaction and Skeletal Pattern in the Sagittal and Vertical Planes. Int J Periodontics Restorative Dent 2019.
  • 12. Dağsuyu İM, Kahraman F, Okşayan R. Three-dimensional evaluation of angular, linear, and resorption features of maxillary impacted canines on cone-beam computed tomography. Oral Radiol 2018;34:66-72.
  • 13. Alqerban A, Jacobs R, Fieuws S, Willems G. Comparison of two cone beam computed tomographic systems versus panoramic imaging for localization of impacted maxillary canines and detection of root resorption. Eur J Orthod 2011;33:93-102.
  • 14. Serrant PS, McIntyre GT, Thomson DJ. Localization of ectopic maxillary canines—is CBCT more accurate than conventional horizontal or vertical parallax? J Orthod 2014;41:13-18.
  • 15. Bjerklin K, Ericson S. How a computerized tomography examination changed the treatment plans of 80 children with retained and ectopically positioned maxillary canines. Angle Orthod 2006;76:43-51.
  • 16. Kalabalık F, Ertaş ET. Konik Işınlı Bilgisayarlı Tomografide Artefakt Çeşitleri ve Nedenleri. Atatürk Üniv Diş Hekim Fak Derg 2015;26:162-167.
  • 17. Jacobs R. Dental cone beam CT and its justified use in oral health care. J Belg Soc Radiol 2011;94:254-265.
  • 18. Polat HB, Özan F, Kara Is, Özdemir H, Ay S. Prevalence of commonly found pathoses associated with mandibular impacted third molars based on panoramic radiographs in Turkish population. Oral Surg Oral Med Oral Pathol Oral Radiol Endodontol 2008;105:41-47.
  • 19. William Proffit HWF, David M. Sarver. Early Stages of Development. Contemporary Orthodontics: Elsevier; 2012:83.
  • 20. Mupparapu M. Patterns of intra-osseous transmigration and ectopic eruption of mandibular canines: review of literature and report of nine additional cases. Dentomaxillofac Radiol 2002;31:355-360.
  • 21. Yavuz M, Aras M, Büyükkurt M, Tozoglu S. Impacted mandibular canines. J Contemp Dent Pract 2007;8:78-85.
  • 22. Aras M-H, Halicioğlu K, Yavuz M-S, Çağlaroğlu M. Evaluation of surgical-orthodontic treatments on impacted mandibular canines. Med Oral Patol Oral Cir Bucal 2011;16:925-928.
  • 23. Bertl MH, Frey C, Bertl K, Giannis K, Gahleitner A, Strbac GD. Impacted and transmigrated mandibular canines: an analysis of 3D radiographic imaging data. Clin Oral Investig 2018:1-11.
  • 24. Jain S, Shetty KS, Prakash AT, Agrawal M, Jain S. Permanent mandibular canine (s) impaction: expansion of our understanding. Aust Orthod J 2014;30:39.
  • 25. Sajnani AK, King NM. Success rates of different management techniques for impacted mandibular canines and associated complications in children and adolescents. J Investig Clin Dent 2015;6:228-233.
  • 26. Yu HB, Huang YS, Zhang LP, Hong MJ, Yang XH. A clinical analysis of 11 mandibular impacted canines. Int J Clin Exp Med 2019;12:11504-11510.
  • 27. Ewbank L, El‐Nashar R, Middlefell L. Spontaneous regression of a dentigerous cyst associated with an impacted mandibular canine: a case report. Oral Surg 2019;12:48-50.
  • 28. Vera-Guerra JA, Herrera-Atoche JR, Colomé-Ruiz GE. Orthodontic Treatment of Bilateral Impacted Mandibular Canines and a Mupparapu Type 2 Transmigration. Case Rep Dent 2019;2019:1-7.
  • 29. Kara MI, Ay S, Aktan AM, Şener I, Bereket C, Ezirganlı Ş, Demirkol M. Analysis of different type of transmigrant mandibular teeth. Med Oral Patol Oral Cir Bucal 2011;16:335-340.
  • 30. Aydin U, Yilmaz H, Yildirim D. Incidence of canine impaction and transmigration in a patient population. Dentomaxillofac Radiol 2004;33:164-169.
  • 31. Walker L, Enciso R, Mah J. Three-dimensional localization of maxillary canines with cone-beam computed tomography. Am J Orthod Dentofacial Orthop 2005;128:418-423.
  • 32. Qadeer M, Khan H, Najam E, Anwar A, Khan T. Prevalence and patterns of mandibular impacted canines. A CBCT based retrospective study. Pakistan Oral Dent J 2018;38.
  • 33. Alhammadi MS, Asiri HA, Almashraqi AA. Incidence, severity and orthodontic treatment difficulty index of impacted canines in Saudi population. J Clin Exp Dent 2018;10:327.
  • 34. Power SM, Short MB. An investigation into the response of palatally displaced canines to the removal of deciduous canines and an assessment of factors contributing to favourable eruption. Br J Orthod 1993;20:215-223.
  • 35. Joshi M. Transmigrant mandibular canines: a record of 28 cases and a retrospective review of the literature. Angle Orthod 2001;71:12-22.
  • 36. Ericson S, Kurol J. Resorption of maxillary lateral incisors caused by ectopic eruption of the canines: a clinical and radiographic analysis of predisposing factors. Am J Orthod Dentofacial Orthop 1988;94:503-513.
  • 37. Almuhtaseb E, Mao J, Mahony D, Bader R, Zhang Z-x. Three-dimensional localization of impacted canines and root resorption assessment using cone beam computed tomography. J Huazhong Univ Sci Technolog Med Sci 2014;34:425-430.
  • 38. Stewart JA, Heo G, Glover KE, Williamson PC, Lam EW, Major PW. Factors that relate to treatment duration for patients with palatally impacted maxillary canines. Am J Orthod Dentofacial Orthop 2001;119:216-225.
  • 39. Plakwicz P, Abramczyk J, Wojtaszek-Lis J, et al. The retrospective study of 93 patients with transmigration of mandibular canine and a comparative analysis with a control group. Eur J Orthod 2018:1-7
Year 2020, Volume: 30 Issue: 2, 212 - 218, 15.04.2020
https://doi.org/10.17567/ataunidfd.688820

Abstract

References

  • 1. Ardakani FE, Sheikhha M, Ahmadi H. Prevalence of dental developmental anomalies: a radiographic study. Community Dent Health 2007;24:140.
  • 2. Afify AR, Zawawi KH. The prevalence of dental anomalies in the Western region of Saudi Arabia. ISRN Dent 2012;2012:1-5
  • 3. Aitasalo K, Lehtinen R, Oksala E. An orthopantomography study of prevalence of impacted teeth. Int J Oral Surg 1972;1:117-120.
  • 4. Chu F, Li T, Lui V, Newsome P, Chow R, Cheung L. Prevalence of impacted teeth and associated pathologies-a radiographic study of the Hong Kong Chinese population. Hong Kong Med J 2003;9:158-163
  • 5. Rohrer A. Displaced and impacted canines. Int J Orthod Oral Surg Radiogr 1929;15:1003-1020.
  • 6. Dalessandri D, Parrini S, Rubiano R, Gallone D, Migliorati M. Impacted and transmigrant mandibular canines incidence, aetiology, and treatment: a systematic review. Eur J Orthod 2017;39:161-169.
  • 7. Topkara A, Sari Z. Impacted teeth in a turkish orthodontic patient population: prevalence, distribution and relationship with dental arch characteristics. Eur J Paediatr Dent 2012;13:311-316.
  • 8. Ando S, Aizawa K, Nakasjima T, Sanka Y, Shimbo K, Kiyowa K. Transmigration process of the impacted mandibular cuspid. J Nihon Univ Sch Dent 1964;6:66-71.
  • 9. Miranti R, Levbarg M. Extraction of a horizontally transmigrated impacted mandibular canine: report of case. J Am Dent Assoc 1974;88:607-610.
  • 10. Shapira Y, Mischler W, Kuftinec M. The displaced mandibular canine. ASDC J Dent Child 1982;49:362.
  • 11. Al Balbeesi HO, Al Kawari HM, Al Tamimi AS, Al Mubarak I, Al Ibrahim KI, Divakar DD. Association Between Canine Impaction and Skeletal Pattern in the Sagittal and Vertical Planes. Int J Periodontics Restorative Dent 2019.
  • 12. Dağsuyu İM, Kahraman F, Okşayan R. Three-dimensional evaluation of angular, linear, and resorption features of maxillary impacted canines on cone-beam computed tomography. Oral Radiol 2018;34:66-72.
  • 13. Alqerban A, Jacobs R, Fieuws S, Willems G. Comparison of two cone beam computed tomographic systems versus panoramic imaging for localization of impacted maxillary canines and detection of root resorption. Eur J Orthod 2011;33:93-102.
  • 14. Serrant PS, McIntyre GT, Thomson DJ. Localization of ectopic maxillary canines—is CBCT more accurate than conventional horizontal or vertical parallax? J Orthod 2014;41:13-18.
  • 15. Bjerklin K, Ericson S. How a computerized tomography examination changed the treatment plans of 80 children with retained and ectopically positioned maxillary canines. Angle Orthod 2006;76:43-51.
  • 16. Kalabalık F, Ertaş ET. Konik Işınlı Bilgisayarlı Tomografide Artefakt Çeşitleri ve Nedenleri. Atatürk Üniv Diş Hekim Fak Derg 2015;26:162-167.
  • 17. Jacobs R. Dental cone beam CT and its justified use in oral health care. J Belg Soc Radiol 2011;94:254-265.
  • 18. Polat HB, Özan F, Kara Is, Özdemir H, Ay S. Prevalence of commonly found pathoses associated with mandibular impacted third molars based on panoramic radiographs in Turkish population. Oral Surg Oral Med Oral Pathol Oral Radiol Endodontol 2008;105:41-47.
  • 19. William Proffit HWF, David M. Sarver. Early Stages of Development. Contemporary Orthodontics: Elsevier; 2012:83.
  • 20. Mupparapu M. Patterns of intra-osseous transmigration and ectopic eruption of mandibular canines: review of literature and report of nine additional cases. Dentomaxillofac Radiol 2002;31:355-360.
  • 21. Yavuz M, Aras M, Büyükkurt M, Tozoglu S. Impacted mandibular canines. J Contemp Dent Pract 2007;8:78-85.
  • 22. Aras M-H, Halicioğlu K, Yavuz M-S, Çağlaroğlu M. Evaluation of surgical-orthodontic treatments on impacted mandibular canines. Med Oral Patol Oral Cir Bucal 2011;16:925-928.
  • 23. Bertl MH, Frey C, Bertl K, Giannis K, Gahleitner A, Strbac GD. Impacted and transmigrated mandibular canines: an analysis of 3D radiographic imaging data. Clin Oral Investig 2018:1-11.
  • 24. Jain S, Shetty KS, Prakash AT, Agrawal M, Jain S. Permanent mandibular canine (s) impaction: expansion of our understanding. Aust Orthod J 2014;30:39.
  • 25. Sajnani AK, King NM. Success rates of different management techniques for impacted mandibular canines and associated complications in children and adolescents. J Investig Clin Dent 2015;6:228-233.
  • 26. Yu HB, Huang YS, Zhang LP, Hong MJ, Yang XH. A clinical analysis of 11 mandibular impacted canines. Int J Clin Exp Med 2019;12:11504-11510.
  • 27. Ewbank L, El‐Nashar R, Middlefell L. Spontaneous regression of a dentigerous cyst associated with an impacted mandibular canine: a case report. Oral Surg 2019;12:48-50.
  • 28. Vera-Guerra JA, Herrera-Atoche JR, Colomé-Ruiz GE. Orthodontic Treatment of Bilateral Impacted Mandibular Canines and a Mupparapu Type 2 Transmigration. Case Rep Dent 2019;2019:1-7.
  • 29. Kara MI, Ay S, Aktan AM, Şener I, Bereket C, Ezirganlı Ş, Demirkol M. Analysis of different type of transmigrant mandibular teeth. Med Oral Patol Oral Cir Bucal 2011;16:335-340.
  • 30. Aydin U, Yilmaz H, Yildirim D. Incidence of canine impaction and transmigration in a patient population. Dentomaxillofac Radiol 2004;33:164-169.
  • 31. Walker L, Enciso R, Mah J. Three-dimensional localization of maxillary canines with cone-beam computed tomography. Am J Orthod Dentofacial Orthop 2005;128:418-423.
  • 32. Qadeer M, Khan H, Najam E, Anwar A, Khan T. Prevalence and patterns of mandibular impacted canines. A CBCT based retrospective study. Pakistan Oral Dent J 2018;38.
  • 33. Alhammadi MS, Asiri HA, Almashraqi AA. Incidence, severity and orthodontic treatment difficulty index of impacted canines in Saudi population. J Clin Exp Dent 2018;10:327.
  • 34. Power SM, Short MB. An investigation into the response of palatally displaced canines to the removal of deciduous canines and an assessment of factors contributing to favourable eruption. Br J Orthod 1993;20:215-223.
  • 35. Joshi M. Transmigrant mandibular canines: a record of 28 cases and a retrospective review of the literature. Angle Orthod 2001;71:12-22.
  • 36. Ericson S, Kurol J. Resorption of maxillary lateral incisors caused by ectopic eruption of the canines: a clinical and radiographic analysis of predisposing factors. Am J Orthod Dentofacial Orthop 1988;94:503-513.
  • 37. Almuhtaseb E, Mao J, Mahony D, Bader R, Zhang Z-x. Three-dimensional localization of impacted canines and root resorption assessment using cone beam computed tomography. J Huazhong Univ Sci Technolog Med Sci 2014;34:425-430.
  • 38. Stewart JA, Heo G, Glover KE, Williamson PC, Lam EW, Major PW. Factors that relate to treatment duration for patients with palatally impacted maxillary canines. Am J Orthod Dentofacial Orthop 2001;119:216-225.
  • 39. Plakwicz P, Abramczyk J, Wojtaszek-Lis J, et al. The retrospective study of 93 patients with transmigration of mandibular canine and a comparative analysis with a control group. Eur J Orthod 2018:1-7
There are 39 citations in total.

Details

Primary Language Turkish
Subjects Dentistry
Journal Section Araştırma Makalesi
Authors

Mehmet Aydın This is me 0000-0002-8688-813X

Mehmet Uğurlu This is me 0000-0001-7555-3177

Publication Date April 15, 2020
Published in Issue Year 2020 Volume: 30 Issue: 2

Cite

APA Aydın, M., & Uğurlu, M. (2020). MANDİBULAR GÖMÜLÜ KANİNLERİN KONİK IŞINLI BİLGİSAYARLI TOMOGRAFİ İLE AÇISAL, DOĞRUSAL ÖLÇÜMLERİNİN VE DESKRİPTİF ÖZELLİKLERİNİN ÜÇ BOYUTLU ANALİZİ. Atatürk Üniversitesi Diş Hekimliği Fakültesi Dergisi, 30(2), 212-218. https://doi.org/10.17567/ataunidfd.688820
AMA Aydın M, Uğurlu M. MANDİBULAR GÖMÜLÜ KANİNLERİN KONİK IŞINLI BİLGİSAYARLI TOMOGRAFİ İLE AÇISAL, DOĞRUSAL ÖLÇÜMLERİNİN VE DESKRİPTİF ÖZELLİKLERİNİN ÜÇ BOYUTLU ANALİZİ. Ata Diş Hek Fak Derg. April 2020;30(2):212-218. doi:10.17567/ataunidfd.688820
Chicago Aydın, Mehmet, and Mehmet Uğurlu. “MANDİBULAR GÖMÜLÜ KANİNLERİN KONİK IŞINLI BİLGİSAYARLI TOMOGRAFİ İLE AÇISAL, DOĞRUSAL ÖLÇÜMLERİNİN VE DESKRİPTİF ÖZELLİKLERİNİN ÜÇ BOYUTLU ANALİZİ”. Atatürk Üniversitesi Diş Hekimliği Fakültesi Dergisi 30, no. 2 (April 2020): 212-18. https://doi.org/10.17567/ataunidfd.688820.
EndNote Aydın M, Uğurlu M (April 1, 2020) MANDİBULAR GÖMÜLÜ KANİNLERİN KONİK IŞINLI BİLGİSAYARLI TOMOGRAFİ İLE AÇISAL, DOĞRUSAL ÖLÇÜMLERİNİN VE DESKRİPTİF ÖZELLİKLERİNİN ÜÇ BOYUTLU ANALİZİ. Atatürk Üniversitesi Diş Hekimliği Fakültesi Dergisi 30 2 212–218.
IEEE M. Aydın and M. Uğurlu, “MANDİBULAR GÖMÜLÜ KANİNLERİN KONİK IŞINLI BİLGİSAYARLI TOMOGRAFİ İLE AÇISAL, DOĞRUSAL ÖLÇÜMLERİNİN VE DESKRİPTİF ÖZELLİKLERİNİN ÜÇ BOYUTLU ANALİZİ”, Ata Diş Hek Fak Derg, vol. 30, no. 2, pp. 212–218, 2020, doi: 10.17567/ataunidfd.688820.
ISNAD Aydın, Mehmet - Uğurlu, Mehmet. “MANDİBULAR GÖMÜLÜ KANİNLERİN KONİK IŞINLI BİLGİSAYARLI TOMOGRAFİ İLE AÇISAL, DOĞRUSAL ÖLÇÜMLERİNİN VE DESKRİPTİF ÖZELLİKLERİNİN ÜÇ BOYUTLU ANALİZİ”. Atatürk Üniversitesi Diş Hekimliği Fakültesi Dergisi 30/2 (April 2020), 212-218. https://doi.org/10.17567/ataunidfd.688820.
JAMA Aydın M, Uğurlu M. MANDİBULAR GÖMÜLÜ KANİNLERİN KONİK IŞINLI BİLGİSAYARLI TOMOGRAFİ İLE AÇISAL, DOĞRUSAL ÖLÇÜMLERİNİN VE DESKRİPTİF ÖZELLİKLERİNİN ÜÇ BOYUTLU ANALİZİ. Ata Diş Hek Fak Derg. 2020;30:212–218.
MLA Aydın, Mehmet and Mehmet Uğurlu. “MANDİBULAR GÖMÜLÜ KANİNLERİN KONİK IŞINLI BİLGİSAYARLI TOMOGRAFİ İLE AÇISAL, DOĞRUSAL ÖLÇÜMLERİNİN VE DESKRİPTİF ÖZELLİKLERİNİN ÜÇ BOYUTLU ANALİZİ”. Atatürk Üniversitesi Diş Hekimliği Fakültesi Dergisi, vol. 30, no. 2, 2020, pp. 212-8, doi:10.17567/ataunidfd.688820.
Vancouver Aydın M, Uğurlu M. MANDİBULAR GÖMÜLÜ KANİNLERİN KONİK IŞINLI BİLGİSAYARLI TOMOGRAFİ İLE AÇISAL, DOĞRUSAL ÖLÇÜMLERİNİN VE DESKRİPTİF ÖZELLİKLERİNİN ÜÇ BOYUTLU ANALİZİ. Ata Diş Hek Fak Derg. 2020;30(2):212-8.

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