Skip to main content
Top
Published in: Lasers in Medical Science 1/2013

01-01-2013 | Original Article

Oral mucosa response to laser patterned microcoagulation (LPM) treatment. An animal study

Authors: Georgios E. Romanos, Natalia D. Gladkova, Felix I. Feldchtein, Maria M. Karabut, Elena B. Kiseleva, Lyudmila B. Snopova, Yulia V. Fomina

Published in: Lasers in Medical Science | Issue 1/2013

Login to get access

Abstract

In this study a minimally invasive microsurgical approach was used for laser patterned microcoagulation (LPM) to initiate gingival and oral mucosal tissue regeneration. We performed a feasibility assessment and histological examination of laser damage and regeneration in the gingiva and oral mucosa using an animal model. The study animals comprised 18 healthy rabbits which were treated in vivo with single pulses from a diode laser at a wavelength of 980 nm and a power of up to 20 W applied to the gingival and oral mucosa at multiple time points. Biopsies were stained with hematoxylin and eosin, nitroblue tetrazolium chloride and picrosirius red, and evaluated by two pathologists blinded to the parameters and date of laser exposure. Histological analysis revealed that the continuity of the epithelial basal cell layer had been reestablished by 1–2 days after LPM, and complete epithelial regeneration had occurred by 7–12 days. A pronounced reactive inflammation developed in the column area 1 day after treatment. High activity of fibroblasts producing new collagen participated in the formation of a network of new thin-wall blood vessel. By the 28th day the tissue structure was almost completely restored with a similar increase of vascularity, and there were no signs of scarring. By the 90th day, tissue structure was completely restored, indicating complete healing. A single LPM treatment induces a wound healing response in the oral mucosa, showing the potential of LPM for the initiation of oral mucosa and gingival regeneration. Complete healing observed in 3 months after treatment with no keratinization change or scar tissue formation.
Literature
1.
go back to reference Manstein D, Herron GS, Sink RK, Tanner H, Anderson RR (2004) Fractional photothermolysis: a new concept for cutaneous remodeling using microscopic patterns of thermal injury. Lasers Surg Med 34(5):426–438PubMedCrossRef Manstein D, Herron GS, Sink RK, Tanner H, Anderson RR (2004) Fractional photothermolysis: a new concept for cutaneous remodeling using microscopic patterns of thermal injury. Lasers Surg Med 34(5):426–438PubMedCrossRef
2.
go back to reference Altshuler G, Smirnov M, Yaroslavsky I (2005) Lattice of optical islets: a novel treatment modality in photomedicine. J Phys D Appl Phys 38(15):2732–2747CrossRef Altshuler G, Smirnov M, Yaroslavsky I (2005) Lattice of optical islets: a novel treatment modality in photomedicine. J Phys D Appl Phys 38(15):2732–2747CrossRef
3.
go back to reference Geronemus RG (2006) Fractional photothermolysis: current and future applications. Lasers Surg Med 38(3):169–176PubMedCrossRef Geronemus RG (2006) Fractional photothermolysis: current and future applications. Lasers Surg Med 38(3):169–176PubMedCrossRef
4.
go back to reference Jih MH, Kimyai-Asadi A (2008) Fractional photothermolysis: a review and update. Semin Cutan Med Surg 27(1):63–71PubMedCrossRef Jih MH, Kimyai-Asadi A (2008) Fractional photothermolysis: a review and update. Semin Cutan Med Surg 27(1):63–71PubMedCrossRef
5.
go back to reference Moretti M (2008) Fractional skin rejuvenation: a major new technology category. Medical Insight, Aliso Viejo, CA Moretti M (2008) Fractional skin rejuvenation: a major new technology category. Medical Insight, Aliso Viejo, CA
6.
go back to reference Paulus YM, Jain A, Gariano RF, Stanzel BV, Marmor M, Blumenkranz MS, Palanker D (2008) Healing of retinal photocoagulation lesions. Invest Ophthalmol Vis Sci 49(12):5540–5545PubMedCrossRef Paulus YM, Jain A, Gariano RF, Stanzel BV, Marmor M, Blumenkranz MS, Palanker D (2008) Healing of retinal photocoagulation lesions. Invest Ophthalmol Vis Sci 49(12):5540–5545PubMedCrossRef
7.
go back to reference Bedi VP, Chan KF, Sink RK, Hantash BM, Herron GS, Rahman Z, Struck SK, Zachary CB (2007) The effects of pulse energy variations on the dimensions of microscopic thermal treatment zones in nonablative fractional resurfacing. Lasers Surg Med 39(2):145–155PubMedCrossRef Bedi VP, Chan KF, Sink RK, Hantash BM, Herron GS, Rahman Z, Struck SK, Zachary CB (2007) The effects of pulse energy variations on the dimensions of microscopic thermal treatment zones in nonablative fractional resurfacing. Lasers Surg Med 39(2):145–155PubMedCrossRef
8.
go back to reference Szpaderska AM, Zuckerman JD, DiPietro LA (2003) Differential injury responses in oral mucosal and cutaneous wounds. J Dent Res 82(8):621–626PubMedCrossRef Szpaderska AM, Zuckerman JD, DiPietro LA (2003) Differential injury responses in oral mucosal and cutaneous wounds. J Dent Res 82(8):621–626PubMedCrossRef
9.
go back to reference Altshuler GB, Anderson RR, Manstein D, Zenzie HH, Smirnov MZ (2001) Extended theory of selective photothermolysis. Lasers Surg Med 29(5):416–432PubMedCrossRef Altshuler GB, Anderson RR, Manstein D, Zenzie HH, Smirnov MZ (2001) Extended theory of selective photothermolysis. Lasers Surg Med 29(5):416–432PubMedCrossRef
10.
go back to reference Hukki J, Lipasti J, Castren M, Puolakkainen P, Schroder T (1989) Lactate dehydrogenase in laser incisions: a comparative analysis of skin wounds made with steel scalpel, electrocautery, superpulse–continuous wave mode carbon-dioxide lasers, and contact Nd:YAG laser. Lasers Surg Med 9(6):589–594PubMedCrossRef Hukki J, Lipasti J, Castren M, Puolakkainen P, Schroder T (1989) Lactate dehydrogenase in laser incisions: a comparative analysis of skin wounds made with steel scalpel, electrocautery, superpulse–continuous wave mode carbon-dioxide lasers, and contact Nd:YAG laser. Lasers Surg Med 9(6):589–594PubMedCrossRef
11.
go back to reference Junqueira LC, Bignolas G, Brentani RR (1979) Picrosirius staining plus polarization microscopy, a specific method for collagen detection in tissue sections. Histochem J 11(4):447–455PubMedCrossRef Junqueira LC, Bignolas G, Brentani RR (1979) Picrosirius staining plus polarization microscopy, a specific method for collagen detection in tissue sections. Histochem J 11(4):447–455PubMedCrossRef
12.
go back to reference Laubach HJ, Tannous Z, Anderson RR, Manstein D (2006) Skin responses to fractional photothermolysis. Lasers Surg Med 38(2):142–149PubMedCrossRef Laubach HJ, Tannous Z, Anderson RR, Manstein D (2006) Skin responses to fractional photothermolysis. Lasers Surg Med 38(2):142–149PubMedCrossRef
14.
go back to reference Burns JA, Kobler JB, Heaton JT, Lopez-Guerra G, Anderson RR, Zeitels SM (2007) Thermal damage during thulium laser dissection of laryngeal soft tissue is reduced with air cooling: ex vivo calf model study. Ann Otol Rhinol Laryngol 116(11):853–857PubMed Burns JA, Kobler JB, Heaton JT, Lopez-Guerra G, Anderson RR, Zeitels SM (2007) Thermal damage during thulium laser dissection of laryngeal soft tissue is reduced with air cooling: ex vivo calf model study. Ann Otol Rhinol Laryngol 116(11):853–857PubMed
15.
go back to reference Baranoski S, Ayello EA (2008) Wound care essentials: practice principles, 2nd edn. Lippincott Williams & Wilkins, Philadelphia Baranoski S, Ayello EA (2008) Wound care essentials: practice principles, 2nd edn. Lippincott Williams & Wilkins, Philadelphia
16.
go back to reference Romanos GE, Schroeter-Kermani C, Hinz N, Wachtel HC, Bernimoulin JP (1991) Immunohistochemical localization of collagenous components in healthy periodontal tissues of the rat and marmoset (Callithrix jacchus). II. Distribution of collagen types IV, V and VI. J Periodontal Res 26(4):323–332PubMedCrossRef Romanos GE, Schroeter-Kermani C, Hinz N, Wachtel HC, Bernimoulin JP (1991) Immunohistochemical localization of collagenous components in healthy periodontal tissues of the rat and marmoset (Callithrix jacchus). II. Distribution of collagen types IV, V and VI. J Periodontal Res 26(4):323–332PubMedCrossRef
17.
go back to reference Romanos GE, Schroeter-Kermani C, Hinz N, Wachtel HC, Bernimoulin JP (1992) Immunohistochemical localization of collagenous components in healthy periodontal tissues of the rat and marmoset (Callithrix jacchus). I. Distribution of collagen types I and III. J Periodontal Res 27(2):101–110PubMedCrossRef Romanos GE, Schroeter-Kermani C, Hinz N, Wachtel HC, Bernimoulin JP (1992) Immunohistochemical localization of collagenous components in healthy periodontal tissues of the rat and marmoset (Callithrix jacchus). I. Distribution of collagen types I and III. J Periodontal Res 27(2):101–110PubMedCrossRef
18.
go back to reference Ramachandran GN, Reddi AH (1976) Biochemistry of collagen. Plenum, New York Ramachandran GN, Reddi AH (1976) Biochemistry of collagen. Plenum, New York
19.
go back to reference Fratzl P (2008) Collagen: structure and mechanics. Springer, New York Fratzl P (2008) Collagen: structure and mechanics. Springer, New York
20.
go back to reference Kesler G, Koren R, Kesler A, Kristt D, Gal R (2000) Differences in histochemical characteristics of gingival collagen after ER:YAG laser periodontal plastic surgery. J Clin Laser Med Surg 18(4):203–207PubMedCrossRef Kesler G, Koren R, Kesler A, Kristt D, Gal R (2000) Differences in histochemical characteristics of gingival collagen after ER:YAG laser periodontal plastic surgery. J Clin Laser Med Surg 18(4):203–207PubMedCrossRef
21.
go back to reference Matteini P, Rossi F, Menabuoni L, Pini R (2007) Microscopic characterization of collagen modifications induced by low-temperature diode-laser welding of corneal tissue. Lasers Surg Med 39(7):597–604PubMedCrossRef Matteini P, Rossi F, Menabuoni L, Pini R (2007) Microscopic characterization of collagen modifications induced by low-temperature diode-laser welding of corneal tissue. Lasers Surg Med 39(7):597–604PubMedCrossRef
22.
go back to reference DiPietro LA, Burns AL (2003) Wound healing: methods and protocols. Humana, TotowaCrossRef DiPietro LA, Burns AL (2003) Wound healing: methods and protocols. Humana, TotowaCrossRef
23.
go back to reference Kim BJ, Lee DH, Kim MN, Song KY, Cho WI, Lee CK, Kim JY, Kwon OS (2008) Fractional photothermolysis for the treatment of striae distensae in Asian skin. Am J Clin Dermatol 9(1):33–37PubMedCrossRef Kim BJ, Lee DH, Kim MN, Song KY, Cho WI, Lee CK, Kim JY, Kwon OS (2008) Fractional photothermolysis for the treatment of striae distensae in Asian skin. Am J Clin Dermatol 9(1):33–37PubMedCrossRef
24.
go back to reference Allemann IB, Kaufman J (2010) Fractional photothermolysis – an update. Lasers Med Sci 25:137CrossRef Allemann IB, Kaufman J (2010) Fractional photothermolysis – an update. Lasers Med Sci 25:137CrossRef
25.
go back to reference Hantash BM, Bedi VP, Kapadia B, Rahman Z, Jiang K, Tanner H, Chan KF, Zachary CB (2007) In vivo histological evaluation of a novel ablative fractional resurfacing device. Lasers Surg Med 39(2):96–107PubMedCrossRef Hantash BM, Bedi VP, Kapadia B, Rahman Z, Jiang K, Tanner H, Chan KF, Zachary CB (2007) In vivo histological evaluation of a novel ablative fractional resurfacing device. Lasers Surg Med 39(2):96–107PubMedCrossRef
26.
go back to reference Hantash BM, Bedi VP, Chan KF, Zachary CB (2007) Ex vivo histological characterization of a novel ablative fractional resurfacing device. Lasers Surg Med 39(2):87–95PubMedCrossRef Hantash BM, Bedi VP, Chan KF, Zachary CB (2007) Ex vivo histological characterization of a novel ablative fractional resurfacing device. Lasers Surg Med 39(2):87–95PubMedCrossRef
27.
go back to reference Woolley DE, Evanson JM (1980) Collagenase in normal and pathological connective tissues. Wiley, Chichester Woolley DE, Evanson JM (1980) Collagenase in normal and pathological connective tissues. Wiley, Chichester
Metadata
Title
Oral mucosa response to laser patterned microcoagulation (LPM) treatment. An animal study
Authors
Georgios E. Romanos
Natalia D. Gladkova
Felix I. Feldchtein
Maria M. Karabut
Elena B. Kiseleva
Lyudmila B. Snopova
Yulia V. Fomina
Publication date
01-01-2013
Publisher
Springer-Verlag
Published in
Lasers in Medical Science / Issue 1/2013
Print ISSN: 0268-8921
Electronic ISSN: 1435-604X
DOI
https://doi.org/10.1007/s10103-011-1024-9

Other articles of this Issue 1/2013

Lasers in Medical Science 1/2013 Go to the issue