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Published in: Clinical Oral Investigations 1/2021

Open Access 01-01-2021 | Original Article

Implant removal using thermal necrosis—an in vitro pilot study

Authors: Kristian Kniha, Eva Miriam Buhl, Benita Hermanns-Sachweh, Faruk Al-Sibai, Anna Bock, Florian Peters, Frank Hölzle, Ali Modabber

Published in: Clinical Oral Investigations | Issue 1/2021

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Abstract

Objectives

The purpose of this pilot porcine cadaver study was to evaluate the feasible temperature thresholds, which affect osteocyte viability and bone matrix in a preclinical setup, assessing the potential of thermal necrosis for implant removal for further in vivo investigations.

Materials and methods

After implant bed preparation in the upper and lower jaw, temperature effects on the bone were determined, using two tempering pistons with integrated thermocouples. To evaluate threshold temperature and time intervals leading to bone necrosis, one piston generated warm temperatures at 49 to 56 °C for 10 s and the other generated cold temperatures at 5 to 1 °C for 30 s. Effects were assessed by a semi-quantitative, histomorphometrical scoring system, scanning electron microscopy (SEM), energy-dispersive X-ray spectroscopy (EDX), and transmission electron microscopy (TEM).

Results

The bone matrix was significantly degenerated starting at 51 °C for 10 s and 5 °C for 30 s. The osteocyte condition indicated significant bone damage beginning at cold temperatures of 2 °C. Temperature inputs starting at 53 °C led to decalcification and swollen mitochondria, which lost the structure of their inner cristae.

Conclusions

This study identified temperatures and durations, in both heat and cold, so that the number of samples may be kept low in further studies regarding temperature-induced bone necrosis. Levels of 51 °C for 10 s and 5 °C for 30 s have presented significant matrix degeneration.

Clinical relevance

Temperature thresholds, potentially leading to thermo-explantation of dental implants and other osseointegrated devices, were identified.
Literature
1.
go back to reference Derks J, Hakansson J, Wennstrom JL, Tomasi C, Larsson M, Berglundh T (2015) Effectiveness of implant therapy analyzed in a Swedish population: early and late implant loss. J Dent Res 94(3 Suppl):44S–51SPubMedPubMedCentralCrossRef Derks J, Hakansson J, Wennstrom JL, Tomasi C, Larsson M, Berglundh T (2015) Effectiveness of implant therapy analyzed in a Swedish population: early and late implant loss. J Dent Res 94(3 Suppl):44S–51SPubMedPubMedCentralCrossRef
2.
go back to reference Stajcic Z, Stojcev Stajcic LJ, Kalanovic M, Dinic A, Divekar N, Rodic M (2016) Removal of dental implants: review of five different techniques. Int J Oral Maxillofac Surg 45(5):641–648PubMedCrossRef Stajcic Z, Stojcev Stajcic LJ, Kalanovic M, Dinic A, Divekar N, Rodic M (2016) Removal of dental implants: review of five different techniques. Int J Oral Maxillofac Surg 45(5):641–648PubMedCrossRef
3.
go back to reference Albrektsson T, Canullo L, Cochran D, De Bruyn H (2016) “Peri-implantitis”: a complication of a foreign body or a man-made “disease”. Facts and fiction. Clin Implant Dent Relat Res 18(4):840–849PubMedCrossRef Albrektsson T, Canullo L, Cochran D, De Bruyn H (2016) “Peri-implantitis”: a complication of a foreign body or a man-made “disease”. Facts and fiction. Clin Implant Dent Relat Res 18(4):840–849PubMedCrossRef
4.
go back to reference Stajcic Z, Stojcev Stajcic LJ, Kalanovic M, Dinic A, Divekar N, Rodic M (2015) Removal of dental implants: review of five different techniques. Int J Oral Maxillofac Surg Stajcic Z, Stojcev Stajcic LJ, Kalanovic M, Dinic A, Divekar N, Rodic M (2015) Removal of dental implants: review of five different techniques. Int J Oral Maxillofac Surg
5.
go back to reference Anitua E, Murias-Freijo A, Alkhraisat MH (2016) Conservative implant removal for the analysis of the cause, removal torque, and surface treatment of failed nonmobile dental implants. The Journal of oral implantology 42(1):69–77PubMedCrossRef Anitua E, Murias-Freijo A, Alkhraisat MH (2016) Conservative implant removal for the analysis of the cause, removal torque, and surface treatment of failed nonmobile dental implants. The Journal of oral implantology 42(1):69–77PubMedCrossRef
6.
go back to reference Bowkett A, Laverty D, Patel A, Addy L (2016) Removal techniques for failed implants. Br Dent J 220(3):109–114PubMedCrossRef Bowkett A, Laverty D, Patel A, Addy L (2016) Removal techniques for failed implants. Br Dent J 220(3):109–114PubMedCrossRef
7.
go back to reference Worni A, Marchand L, Sailer I, Cornish D, Hicklin SP (2018) Explantation of an osseointegrated titanium implant using laser-induced thermo-necrosis: a case report. Int J Oral Maxillofac Implants 33(6):e151–e155PubMedCrossRef Worni A, Marchand L, Sailer I, Cornish D, Hicklin SP (2018) Explantation of an osseointegrated titanium implant using laser-induced thermo-necrosis: a case report. Int J Oral Maxillofac Implants 33(6):e151–e155PubMedCrossRef
8.
go back to reference Massei G, Szmukler-Moncler S. (2004) Thermo-explantation. a novel approach to remove osseointegrated implants. European Cells and Materials Vol 7 Suppl 2, (page 48) ISSN 1473–2262 Massei G, Szmukler-Moncler S. (2004) Thermo-explantation. a novel approach to remove osseointegrated implants. European Cells and Materials Vol 7 Suppl 2, (page 48) ISSN 1473–2262
9.
go back to reference Cunliffe J, Barclay C (2011) Removal of a dental implant: an unusual case report. Journal of Dental Implants 1(1):22–25CrossRef Cunliffe J, Barclay C (2011) Removal of a dental implant: an unusual case report. Journal of Dental Implants 1(1):22–25CrossRef
10.
go back to reference Rouiller C, Majno G (1953) Morphological and chemical studies of bones after the application of heat. Beitrage zur pathologischen Anatomie und zur allgemeinen Pathologie 113(1):100–120PubMed Rouiller C, Majno G (1953) Morphological and chemical studies of bones after the application of heat. Beitrage zur pathologischen Anatomie und zur allgemeinen Pathologie 113(1):100–120PubMed
11.
go back to reference Lundskog J (1972) Heat and bone tissue. An experimental investigation of the thermal properties of bone and threshold levels for thermal injury. Scand J Plast Reconstr Surg 9:1–80PubMed Lundskog J (1972) Heat and bone tissue. An experimental investigation of the thermal properties of bone and threshold levels for thermal injury. Scand J Plast Reconstr Surg 9:1–80PubMed
12.
go back to reference Eriksson AR, Albrektsson T (1983) Temperature threshold levels for heat-induced bone tissue injury: a vital-microscopic study in the rabbit. J Prosthet Dent 50(1):101–107PubMedCrossRef Eriksson AR, Albrektsson T (1983) Temperature threshold levels for heat-induced bone tissue injury: a vital-microscopic study in the rabbit. J Prosthet Dent 50(1):101–107PubMedCrossRef
13.
go back to reference Goetz JE, Robinson DA, Pedersen DR, Conzemius MG, Brown TD (2011) Cryoinsult parameter effects on the histologically apparent volume of experimentally induced osteonecrotic lesions. J Orthop Res 29(6):931–937PubMedPubMedCentralCrossRef Goetz JE, Robinson DA, Pedersen DR, Conzemius MG, Brown TD (2011) Cryoinsult parameter effects on the histologically apparent volume of experimentally induced osteonecrotic lesions. J Orthop Res 29(6):931–937PubMedPubMedCentralCrossRef
14.
go back to reference Goetz JE, Pedersen DR, Robinson DA, Conzemius MG, Baer TE, Brown TD (2008) The apparent critical isotherm for cryoinsult-induced osteonecrotic lesions in emu femoral heads. J Biomech 41(10):2197–2205PubMedPubMedCentralCrossRef Goetz JE, Pedersen DR, Robinson DA, Conzemius MG, Baer TE, Brown TD (2008) The apparent critical isotherm for cryoinsult-induced osteonecrotic lesions in emu femoral heads. J Biomech 41(10):2197–2205PubMedPubMedCentralCrossRef
15.
16.
go back to reference Jansen P, Mumme T, Randau T, Gravius S, Hermanns-Sachweh B (2014) Endoglin (CD105) expression differentiates between aseptic loosening and periprosthetic joint infection after total joint arthroplasty. Springerplus. 3:561PubMedPubMedCentralCrossRef Jansen P, Mumme T, Randau T, Gravius S, Hermanns-Sachweh B (2014) Endoglin (CD105) expression differentiates between aseptic loosening and periprosthetic joint infection after total joint arthroplasty. Springerplus. 3:561PubMedPubMedCentralCrossRef
17.
go back to reference Faul F, Erdfelder E, Lang AG, Buchner A (2007) G*power 3: a flexible statistical power analysis program for the social, behavioral, and biomedical sciences. Behav Res Methods 39(2):175–191CrossRefPubMed Faul F, Erdfelder E, Lang AG, Buchner A (2007) G*power 3: a flexible statistical power analysis program for the social, behavioral, and biomedical sciences. Behav Res Methods 39(2):175–191CrossRefPubMed
18.
go back to reference Faul F, Erdfelder E, Buchner A, Lang AG (2009) Statistical power analyses using G*power 3.1: tests for correlation and regression analyses. Behav Res Methods 41(4):1149–1160PubMedCrossRef Faul F, Erdfelder E, Buchner A, Lang AG (2009) Statistical power analyses using G*power 3.1: tests for correlation and regression analyses. Behav Res Methods 41(4):1149–1160PubMedCrossRef
19.
go back to reference Prion S, Haerling KA (2014) Making sense of methods and measurement: spearman-rho ranked-order correlation coefficient. Clinical Simulation In Nursing 10(10):535–536CrossRef Prion S, Haerling KA (2014) Making sense of methods and measurement: spearman-rho ranked-order correlation coefficient. Clinical Simulation In Nursing 10(10):535–536CrossRef
20.
go back to reference Wilcox CW, Wilwerding TM, Watson P, Morris JT (2001) Use of electrosurgery and lasers in the presence of dental implants. Int J Oral Maxillofac Implants 16(4):578–582PubMed Wilcox CW, Wilwerding TM, Watson P, Morris JT (2001) Use of electrosurgery and lasers in the presence of dental implants. Int J Oral Maxillofac Implants 16(4):578–582PubMed
21.
go back to reference Eriksson A, Albrektsson T, Grane B, McQueen D (1982) Thermal injury to bone. A vital-microscopic description of heat effects. Int J Oral Surg 11(2):115–121PubMedCrossRef Eriksson A, Albrektsson T, Grane B, McQueen D (1982) Thermal injury to bone. A vital-microscopic description of heat effects. Int J Oral Surg 11(2):115–121PubMedCrossRef
22.
go back to reference Mohlhenrich SC, Modabber A, Steiner T, Mitchell DA, Holzle F (2015) Heat generation and drill wear during dental implant site preparation: systematic review. Br J Oral Maxillofac Surg 53(8):679–689PubMedCrossRef Mohlhenrich SC, Modabber A, Steiner T, Mitchell DA, Holzle F (2015) Heat generation and drill wear during dental implant site preparation: systematic review. Br J Oral Maxillofac Surg 53(8):679–689PubMedCrossRef
23.
go back to reference Trisi P, Berardini M, Falco A, Vulpiani MP (2015) Effect of temperature on the dental implant osseointegration development in low-density bone: an in vivo histological evaluation. Implant Dent 24(1):96–100PubMedCrossRef Trisi P, Berardini M, Falco A, Vulpiani MP (2015) Effect of temperature on the dental implant osseointegration development in low-density bone: an in vivo histological evaluation. Implant Dent 24(1):96–100PubMedCrossRef
24.
go back to reference Trisi P, Berardini M, Falco A, Vulpiani MP, Masciotra L (2014) Effect of 50 to 60 degrees C heating on osseointegration of dental implants in dense bone: an in vivo histological study. Implant Dent 23(5):516–521PubMedCrossRef Trisi P, Berardini M, Falco A, Vulpiani MP, Masciotra L (2014) Effect of 50 to 60 degrees C heating on osseointegration of dental implants in dense bone: an in vivo histological study. Implant Dent 23(5):516–521PubMedCrossRef
25.
go back to reference Di Stefano DA, Arosio P, Pagnutti S, Vinci R, Gherlone EF (2019) Distribution of trabecular bone density in the maxilla and mandible. Implant Dent 28(4):340–348PubMedCrossRef Di Stefano DA, Arosio P, Pagnutti S, Vinci R, Gherlone EF (2019) Distribution of trabecular bone density in the maxilla and mandible. Implant Dent 28(4):340–348PubMedCrossRef
26.
go back to reference Fajardo JE, Carlevaro CM, Vericat F, Berjano E, Irastorza RM (2018) Effect of the trabecular bone microstructure on measuring its thermal conductivity: a computer modeling-based study. J Therm Biol 77:131–136PubMedCrossRef Fajardo JE, Carlevaro CM, Vericat F, Berjano E, Irastorza RM (2018) Effect of the trabecular bone microstructure on measuring its thermal conductivity: a computer modeling-based study. J Therm Biol 77:131–136PubMedCrossRef
27.
go back to reference Reznikov N, Shahar R, Weiner S (2014) Bone hierarchical structure in three dimensions. Acta Biomater 10(9):3815–3826PubMedCrossRef Reznikov N, Shahar R, Weiner S (2014) Bone hierarchical structure in three dimensions. Acta Biomater 10(9):3815–3826PubMedCrossRef
28.
go back to reference Murshed M (2018) Mechanism of Bone Mineralization. Cold Spring Harbor perspectives in medicine. 8(12) Murshed M (2018) Mechanism of Bone Mineralization. Cold Spring Harbor perspectives in medicine. 8(12)
29.
go back to reference Okata H, Nakamura M, Henmi A, Yamaguchi S, Mikami Y, Shimauchi H, Sasano Y (2015) Calcification during bone healing in a standardised rat calvarial defect assessed by micro-CT and SEM-EDX. Oral Dis 21(1):74–82PubMedCrossRef Okata H, Nakamura M, Henmi A, Yamaguchi S, Mikami Y, Shimauchi H, Sasano Y (2015) Calcification during bone healing in a standardised rat calvarial defect assessed by micro-CT and SEM-EDX. Oral Dis 21(1):74–82PubMedCrossRef
30.
go back to reference Kourkoumelis N, Balatsoukas I, Tzaphlidou M (2012) Ca/P concentration ratio at different sites of normal and osteoporotic rabbit bones evaluated by auger and energy dispersive X-ray spectroscopy. J Biol Phys 38(2):279–291PubMedCrossRef Kourkoumelis N, Balatsoukas I, Tzaphlidou M (2012) Ca/P concentration ratio at different sites of normal and osteoporotic rabbit bones evaluated by auger and energy dispersive X-ray spectroscopy. J Biol Phys 38(2):279–291PubMedCrossRef
31.
go back to reference Oslowski CM, Urano F. (2011) Chapter Four - Measuring ER stress and the unfolded protein response using mammalian tissue culture system. In: Conn PM, ed. Methods in Enzymology. Vol 490. Academic Press:71–92 Oslowski CM, Urano F. (2011) Chapter Four - Measuring ER stress and the unfolded protein response using mammalian tissue culture system. In: Conn PM, ed. Methods in Enzymology. Vol 490. Academic Press:71–92
Metadata
Title
Implant removal using thermal necrosis—an in vitro pilot study
Authors
Kristian Kniha
Eva Miriam Buhl
Benita Hermanns-Sachweh
Faruk Al-Sibai
Anna Bock
Florian Peters
Frank Hölzle
Ali Modabber
Publication date
01-01-2021
Publisher
Springer Berlin Heidelberg
Published in
Clinical Oral Investigations / Issue 1/2021
Print ISSN: 1432-6981
Electronic ISSN: 1436-3771
DOI
https://doi.org/10.1007/s00784-020-03361-x

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