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Erschienen in: Lasers in Medical Science 3/2022

22.11.2021 | Original Article

Bioenergetics of photobiomodulated osteoblast mitochondrial cells derived from human pulp stem cells: systematic review

verfasst von: Simone L. Sleep, Deanne Skelly, Robert M. Love, Roy George

Erschienen in: Lasers in Medical Science | Ausgabe 3/2022

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Abstract

Dental pulp cells are a source of multipotent mesenchymal stem cells with a high proliferation rate and multilineage differentiation potential. This study investigated the photobiomodulated bioenergetic effects of mitochondria in osteoblasts that differentiated from human pulp stem cells. The systematic review followed PRISMA guidelines. The PICO question was formulated. Criteria for inclusion and exclusion were established prior to searches being performed on the PubMed/MEDLINE, Embase, and Scopus. Articles were identified and included if published in English within last 10 years; photobiomodulation or low-level laser therapy were discussed; the delivery parameters for dose and time were included and the studies focused on bioenergetics of osteoblast mitochondria. Studies excluded were non-human dental pulp tissue and in vivo studies. A total number of 110 articles were collated, 106 were excluded leaving a total of 4 articles. These studies demonstrated that in vitro use of photobiomodulation was performed using different laser and LED types; InGaAlP; InGaN; and InGaAsP with average wavelengths of 630 to 940 nm. Primary human osteoblastic STRO-1 and mesenchymal stem cell lineages were studied. Three out of four articles confirmed positive bioenergetic effects of photobiomodulation on mitochondria of osteoblasts derived from human pulp cells. This systematic review demonstrated a lack of adequate reporting of bioenergetics of osteoblast mitochondria after photobiomodulation treatment.
Literatur
1.
Zurück zum Zitat Kulkarni S, Meer M, George R (2019) Efficacy of photobiomodulation on accelerating bone healing after tooth extraction: a systematic review. Lasers Med Sci 34(4):685–692PubMedCrossRef Kulkarni S, Meer M, George R (2019) Efficacy of photobiomodulation on accelerating bone healing after tooth extraction: a systematic review. Lasers Med Sci 34(4):685–692PubMedCrossRef
2.
Zurück zum Zitat Zamani ARN, Saberianpour S, Geranmayeh MH, Bani F, Haghighi L, Rahbarghazi R (2020) Modulatory effect of photobiomodulation on stem cell epigenetic memory: a highlight on differentiation capacity. Lasers Med Sci 35(2):299–306PubMedCrossRef Zamani ARN, Saberianpour S, Geranmayeh MH, Bani F, Haghighi L, Rahbarghazi R (2020) Modulatory effect of photobiomodulation on stem cell epigenetic memory: a highlight on differentiation capacity. Lasers Med Sci 35(2):299–306PubMedCrossRef
3.
Zurück zum Zitat Hosseinpour S, Fekrazad R, Arany PR, Ye Q (2019) Molecular impacts of photobiomodulation on bone regeneration: a systematic review. Prog Biophys Mol Biol 149:147–159PubMedCrossRef Hosseinpour S, Fekrazad R, Arany PR, Ye Q (2019) Molecular impacts of photobiomodulation on bone regeneration: a systematic review. Prog Biophys Mol Biol 149:147–159PubMedCrossRef
4.
Zurück zum Zitat Ninomiya T, Hosoya A, Nakamura H, Sano K, Nishisaka T, Ozawa H (2007) Increase of bone volume by a nanosecond pulsed laser irradiation is caused by a decreased osteoclast number and an activated osteoblasts. Bone 40(1):140–148PubMedCrossRef Ninomiya T, Hosoya A, Nakamura H, Sano K, Nishisaka T, Ozawa H (2007) Increase of bone volume by a nanosecond pulsed laser irradiation is caused by a decreased osteoclast number and an activated osteoblasts. Bone 40(1):140–148PubMedCrossRef
6.
Zurück zum Zitat Paschalidou M, Athanasiadou E, Arapostathis K et al (2020) Biological effects of low-level laser irradiation (LLLI) on stem cells from human exfoliated deciduous teeth (SHED). Clin Oral Investig 24(1):167–180PubMedCrossRef Paschalidou M, Athanasiadou E, Arapostathis K et al (2020) Biological effects of low-level laser irradiation (LLLI) on stem cells from human exfoliated deciduous teeth (SHED). Clin Oral Investig 24(1):167–180PubMedCrossRef
7.
Zurück zum Zitat Lu H, Xie C, Zhao YM, Chen FM (2013) Translational research and therapeutic applications of stem cell transplantation in periodontal regenerative medicine. Cell Transplant 22(2):205–229PubMedCrossRef Lu H, Xie C, Zhao YM, Chen FM (2013) Translational research and therapeutic applications of stem cell transplantation in periodontal regenerative medicine. Cell Transplant 22(2):205–229PubMedCrossRef
8.
Zurück zum Zitat Pittenger MF, Discher DE, Péault BM, Phinney DG, Hare JM, Caplan AI (2019) Mesenchymal stem cell perspective: cell biology to clinical progress. NPJ Regen Med 4:22PubMedPubMedCentralCrossRef Pittenger MF, Discher DE, Péault BM, Phinney DG, Hare JM, Caplan AI (2019) Mesenchymal stem cell perspective: cell biology to clinical progress. NPJ Regen Med 4:22PubMedPubMedCentralCrossRef
9.
Zurück zum Zitat Zheng CX, Sui BD, Qiu XY, Hu CH, Jin Y (2020) Mitochondrial regulation of stem cells in bone homeostasis. Trends Mol Med 26(1):89–104PubMedCrossRef Zheng CX, Sui BD, Qiu XY, Hu CH, Jin Y (2020) Mitochondrial regulation of stem cells in bone homeostasis. Trends Mol Med 26(1):89–104PubMedCrossRef
10.
Zurück zum Zitat Paliwal S, Chaudhuri R, Agrawal A, Mohanty S (2018) Regenerative abilities of mesenchymal stem cells through mitochondrial transfer. J Biomed Sci 25(1):31PubMedPubMedCentralCrossRef Paliwal S, Chaudhuri R, Agrawal A, Mohanty S (2018) Regenerative abilities of mesenchymal stem cells through mitochondrial transfer. J Biomed Sci 25(1):31PubMedPubMedCentralCrossRef
11.
Zurück zum Zitat Monea A, Beresescu G, Boeriu S, Tibor M, Popsor S, Antonescu DM (2015) Bone healing after low-level laser application in extraction sockets grafted with allograft material and covered with a resorbable collagen dressing: a pilot histological evaluation. BMC Oral Health 15:134PubMedPubMedCentralCrossRef Monea A, Beresescu G, Boeriu S, Tibor M, Popsor S, Antonescu DM (2015) Bone healing after low-level laser application in extraction sockets grafted with allograft material and covered with a resorbable collagen dressing: a pilot histological evaluation. BMC Oral Health 15:134PubMedPubMedCentralCrossRef
12.
Zurück zum Zitat Migliario M, Pittarella P, Fanuli M, Rizzi M, Reno F (2014) Laser-induced osteoblast proliferation is mediated by ROS production. Lasers Med Sci 29(4):1463–1467PubMedCrossRef Migliario M, Pittarella P, Fanuli M, Rizzi M, Reno F (2014) Laser-induced osteoblast proliferation is mediated by ROS production. Lasers Med Sci 29(4):1463–1467PubMedCrossRef
13.
Zurück zum Zitat Cronshaw M, Parker S, Arany P (2019) Feeling the heat: evolutionary and microbial basis for the analgesic mechanisms of photobiomodulation therapy Photobiomodul. Photomed Laser Surg 37(9):517–526CrossRef Cronshaw M, Parker S, Arany P (2019) Feeling the heat: evolutionary and microbial basis for the analgesic mechanisms of photobiomodulation therapy Photobiomodul. Photomed Laser Surg 37(9):517–526CrossRef
14.
Zurück zum Zitat Liang R, George R, Walsh LJ (2016) Pulpal response following photo-biomodulation with a 904-nm diode laser: a double-blind clinical study. Lasers Med Sci 31(9):1811–1817PubMedCrossRef Liang R, George R, Walsh LJ (2016) Pulpal response following photo-biomodulation with a 904-nm diode laser: a double-blind clinical study. Lasers Med Sci 31(9):1811–1817PubMedCrossRef
15.
Zurück zum Zitat Carroll JD, Milward MR, Cooper PR, Hadis M, Palin WM (2014) Developments in low level light therapy (LLLT) for dentistry Dent. Mater 30(5):465–475 Carroll JD, Milward MR, Cooper PR, Hadis M, Palin WM (2014) Developments in low level light therapy (LLLT) for dentistry Dent. Mater 30(5):465–475
16.
Zurück zum Zitat de Freitas LF, Hamblin MR (2016) Proposed mechanisms of photobiomodulation or low-level light therapy IEEE. J. Sel. Top. Quantum Electron 22(3):7000417CrossRef de Freitas LF, Hamblin MR (2016) Proposed mechanisms of photobiomodulation or low-level light therapy IEEE. J. Sel. Top. Quantum Electron 22(3):7000417CrossRef
17.
Zurück zum Zitat Jenkins PA, Carroll JD (2011) How to report low-level laser therapy (LLLT)/photomedicine dose and beam parameters in clinical and laboratory studies Photomed. Laser Surg 29(12):785–787CrossRef Jenkins PA, Carroll JD (2011) How to report low-level laser therapy (LLLT)/photomedicine dose and beam parameters in clinical and laboratory studies Photomed. Laser Surg 29(12):785–787CrossRef
18.
Zurück zum Zitat Parker S, Cronshaw M, Anagnostaki E, Bordin-Aykroyd SR, Lynch E (2019) Systematic review of delivery parameters used in dental photobiomodulation therapy Photobiomodul. Photomed Laser Surg 37(12):784–797CrossRef Parker S, Cronshaw M, Anagnostaki E, Bordin-Aykroyd SR, Lynch E (2019) Systematic review of delivery parameters used in dental photobiomodulation therapy Photobiomodul. Photomed Laser Surg 37(12):784–797CrossRef
20.
Zurück zum Zitat da Fonseca AdS, da Fonseca AdS (2019) Is there a measure for low power laser dose? Lasers Med Sci 34(1):223–234PubMedCrossRef da Fonseca AdS, da Fonseca AdS (2019) Is there a measure for low power laser dose? Lasers Med Sci 34(1):223–234PubMedCrossRef
21.
Zurück zum Zitat Dompe C, Moncrieff L, Matys J et al (2020) Photobiomodulation-underlying mechanism and clinical applications. J Clin Med 9(6):1724PubMedCentralCrossRef Dompe C, Moncrieff L, Matys J et al (2020) Photobiomodulation-underlying mechanism and clinical applications. J Clin Med 9(6):1724PubMedCentralCrossRef
22.
Zurück zum Zitat Liberati A, Altman DG, Tetzlaff J et al (2009) The PRISMA statement for reporting systematic reviews and meta-analyses of studies that evaluate healthcare interventions: explanation and elaboration Br. Med. J. 339:b2700CrossRef Liberati A, Altman DG, Tetzlaff J et al (2009) The PRISMA statement for reporting systematic reviews and meta-analyses of studies that evaluate healthcare interventions: explanation and elaboration Br. Med. J. 339:b2700CrossRef
23.
24.
Zurück zum Zitat Ginani F, Soares DM, de Oliveira Rocha HA, de Souza LB, Barboza CAG (2018) Low-level laser irradiation induces in vitro proliferation of stem cells from human exfoliated deciduous teeth. Lasers Med Sci 33(1):95–102PubMedCrossRef Ginani F, Soares DM, de Oliveira Rocha HA, de Souza LB, Barboza CAG (2018) Low-level laser irradiation induces in vitro proliferation of stem cells from human exfoliated deciduous teeth. Lasers Med Sci 33(1):95–102PubMedCrossRef
25.
Zurück zum Zitat Paschalidou M, Athanasiadou E, Arapostathis K et al (2020) Biological effects of low-level laser irradiation (LLLI) on stem cells from human exfoliated deciduous teeth (SHED) Clin. Oral Investig 24(1):167–180CrossRef Paschalidou M, Athanasiadou E, Arapostathis K et al (2020) Biological effects of low-level laser irradiation (LLLI) on stem cells from human exfoliated deciduous teeth (SHED) Clin. Oral Investig 24(1):167–180CrossRef
26.
Zurück zum Zitat Turrioni AP, Montoro LA, Basso FG, de Almeida LF, Costa CA, Hebling J (2015) Dose-responses of stem cells from human exfoliated teeth to infrared LED irradiation. Braz Dent J 26(4):409–415PubMedCrossRef Turrioni AP, Montoro LA, Basso FG, de Almeida LF, Costa CA, Hebling J (2015) Dose-responses of stem cells from human exfoliated teeth to infrared LED irradiation. Braz Dent J 26(4):409–415PubMedCrossRef
27.
Zurück zum Zitat Pereira LO, Longo JP, Azevedo RB (2012) Laser irradiation did not increase the proliferation or the differentiation of stem cells from normal and inflamed dental pulp. Arch Oral Biol 57(8):1079–1085PubMedCrossRef Pereira LO, Longo JP, Azevedo RB (2012) Laser irradiation did not increase the proliferation or the differentiation of stem cells from normal and inflamed dental pulp. Arch Oral Biol 57(8):1079–1085PubMedCrossRef
28.
Zurück zum Zitat Yasui T, Mabuchi Y, Morikawa S et al (2017) Isolation of dental pulp stem cells with high osteogenic potential Inflamm. Regen 37:8 Yasui T, Mabuchi Y, Morikawa S et al (2017) Isolation of dental pulp stem cells with high osteogenic potential Inflamm. Regen 37:8
29.
Zurück zum Zitat Undale AH, Westendorf JJ, Yaszemski MJ, Khosla S (2009) Mesenchymal stem cells for bone repair and metabolic bone diseases Mayo Clin. Proc 84(10):893–902 Undale AH, Westendorf JJ, Yaszemski MJ, Khosla S (2009) Mesenchymal stem cells for bone repair and metabolic bone diseases Mayo Clin. Proc 84(10):893–902
30.
Zurück zum Zitat Kantawong F, Robertson ME, Gadegaard N, Oreffo RO, Burchmore RJ, Dalby MJ (2011) Protein expression of STRO-1 cells in response to different topographic features J. Tissue Eng. 534603 Kantawong F, Robertson ME, Gadegaard N, Oreffo RO, Burchmore RJ, Dalby MJ (2011) Protein expression of STRO-1 cells in response to different topographic features J. Tissue Eng. 534603
31.
Zurück zum Zitat Ginani F, Ginani F, Soares DM et al (2018) Low-level laser irradiation induces in vitro proliferation of stem cells from human exfoliated deciduous teeth. Lasers Med Sci 33(1):95–102PubMedCrossRef Ginani F, Ginani F, Soares DM et al (2018) Low-level laser irradiation induces in vitro proliferation of stem cells from human exfoliated deciduous teeth. Lasers Med Sci 33(1):95–102PubMedCrossRef
32.
Zurück zum Zitat Mechiche Alami S, Gangloff SC, Laurent-Maquin D, Wang Y, Kerdjoudj H (2016) Concise review: in vitro formation of bone-like nodules sheds light on the application of stem cells for bone regeneration Stem Cells Transl. Med 5(11):1587–1593 Mechiche Alami S, Gangloff SC, Laurent-Maquin D, Wang Y, Kerdjoudj H (2016) Concise review: in vitro formation of bone-like nodules sheds light on the application of stem cells for bone regeneration Stem Cells Transl. Med 5(11):1587–1593
33.
Zurück zum Zitat Almeida Lde F, Turrioni AP, Basso FG, Montoro LA, Souza-Costa CA, Hebling J (2016) Red LED photobiomodulates the metabolic activity of odontoblast-like cells. Braz dent j 27(4):375–380PubMedCrossRef Almeida Lde F, Turrioni AP, Basso FG, Montoro LA, Souza-Costa CA, Hebling J (2016) Red LED photobiomodulates the metabolic activity of odontoblast-like cells. Braz dent j 27(4):375–380PubMedCrossRef
34.
Zurück zum Zitat Brondon P, Stadler I, Lanzafame RJ (2005) A study of the effects of phototherapy dose interval on photobiomodulation of cell cultures. Lasers Surg Med 36(5):409–413PubMedCrossRef Brondon P, Stadler I, Lanzafame RJ (2005) A study of the effects of phototherapy dose interval on photobiomodulation of cell cultures. Lasers Surg Med 36(5):409–413PubMedCrossRef
35.
Zurück zum Zitat Fekrazad R, Fekrazad R, Asefi S et al (2019) Photobiomodulation with single and combination laser wavelengths on bone marrow mesenchymal stem cells: proliferation and differentiation to bone or cartilage. Lasers Med Sci 34(1):115–126PubMedCrossRef Fekrazad R, Fekrazad R, Asefi S et al (2019) Photobiomodulation with single and combination laser wavelengths on bone marrow mesenchymal stem cells: proliferation and differentiation to bone or cartilage. Lasers Med Sci 34(1):115–126PubMedCrossRef
36.
Zurück zum Zitat Zainuri M, Putri RR, Bachtiar EW (2018) Establishing methods for isolation of stem cells from human exfoliated deciduous from carious deciduous teeth. Interv. Med. App.l Sci 10(1):33–37 Zainuri M, Putri RR, Bachtiar EW (2018) Establishing methods for isolation of stem cells from human exfoliated deciduous from carious deciduous teeth. Interv. Med. App.l Sci 10(1):33–37
37.
Zurück zum Zitat Bezawork-Geleta A, Rohlena J, Dong L, Pacak K, Neuzil J (2017) Mitochondrial complex II: at the crossroads Trends Biochem. Sci 42(4):312–325 Bezawork-Geleta A, Rohlena J, Dong L, Pacak K, Neuzil J (2017) Mitochondrial complex II: at the crossroads Trends Biochem. Sci 42(4):312–325
38.
Zurück zum Zitat Telles PD, Machado MA, Sakai VT, Nör JE (2011) Pulp tissue from primary teeth: new source of stem cells J Appl. Oral Sci 19(3):189–194 Telles PD, Machado MA, Sakai VT, Nör JE (2011) Pulp tissue from primary teeth: new source of stem cells J Appl. Oral Sci 19(3):189–194
39.
Zurück zum Zitat Chang WH, Chen LT, Sun JS, Lin FH (2004) Effect of pulse-burst electromagnetic field stimulation on osteoblast cell activities. Bioelectromagnetics 25(6):457–465PubMedCrossRef Chang WH, Chen LT, Sun JS, Lin FH (2004) Effect of pulse-burst electromagnetic field stimulation on osteoblast cell activities. Bioelectromagnetics 25(6):457–465PubMedCrossRef
40.
Zurück zum Zitat Hamblin MR (2018) Mechanisms and mitochondrial redox signaling in photobiomodulation Photochem. Photobiol 94(2):199–212CrossRef Hamblin MR (2018) Mechanisms and mitochondrial redox signaling in photobiomodulation Photochem. Photobiol 94(2):199–212CrossRef
41.
Zurück zum Zitat Atashi F, Modarressi A, Pepper MS (2015) The role of reactive oxygen species in mesenchymal stem cell adipogenic and osteogenic differentiation: a review. Stem Cells Dev 24(10):1150–1163PubMedPubMedCentralCrossRef Atashi F, Modarressi A, Pepper MS (2015) The role of reactive oxygen species in mesenchymal stem cell adipogenic and osteogenic differentiation: a review. Stem Cells Dev 24(10):1150–1163PubMedPubMedCentralCrossRef
42.
Zurück zum Zitat Pall ML (2013) Electromagnetic fields act via activation of voltage-gated calcium channels to produce beneficial or adverse effects. J Cell Mol Med 17(8):958–965PubMedPubMedCentralCrossRef Pall ML (2013) Electromagnetic fields act via activation of voltage-gated calcium channels to produce beneficial or adverse effects. J Cell Mol Med 17(8):958–965PubMedPubMedCentralCrossRef
43.
Zurück zum Zitat Hawkins DH, Abrahamse H (2007) Time-dependent responses of wounded human skin fibroblasts following phototherapy. J Photochem Photobiol B 88(2–3):147–155PubMedCrossRef Hawkins DH, Abrahamse H (2007) Time-dependent responses of wounded human skin fibroblasts following phototherapy. J Photochem Photobiol B 88(2–3):147–155PubMedCrossRef
44.
Zurück zum Zitat Zaccara IM, Ginani F, Mota-Filho HG, Henriques ÁCG, Barboza CAG (2015) Effect of low-level laser irradiation on proliferation and viability of human dental pulp stem cells. Lasers Med Sci 30(9):2259–2264PubMedCrossRef Zaccara IM, Ginani F, Mota-Filho HG, Henriques ÁCG, Barboza CAG (2015) Effect of low-level laser irradiation on proliferation and viability of human dental pulp stem cells. Lasers Med Sci 30(9):2259–2264PubMedCrossRef
45.
Zurück zum Zitat Gurel Pekozer G, Ramazanoglu M, Schlegel KA, Kok FN, Torun Kose G (2018) Role of STRO-1 sorting of porcine dental germ stem cells in dental stem cell-mediated bone tissue engineering. Artif Cells Nanomed Biotechnol 46(3):607–618PubMedCrossRef Gurel Pekozer G, Ramazanoglu M, Schlegel KA, Kok FN, Torun Kose G (2018) Role of STRO-1 sorting of porcine dental germ stem cells in dental stem cell-mediated bone tissue engineering. Artif Cells Nanomed Biotechnol 46(3):607–618PubMedCrossRef
46.
Zurück zum Zitat Cronshaw M, Parker S, Anagnostaki E, Mylona V, Lynch E, Grootveld M (2020) Photobiomodulation dose parameters in dentistry: a systematic review and meta-analysis. J. Dent. 8(4):114CrossRef Cronshaw M, Parker S, Anagnostaki E, Mylona V, Lynch E, Grootveld M (2020) Photobiomodulation dose parameters in dentistry: a systematic review and meta-analysis. J. Dent. 8(4):114CrossRef
47.
Zurück zum Zitat Calabrese EJ, Baldwin LA (2003) The hormetic dose-response model is more common than the threshold model in toxicology. J Toxicol sci 71(2):246–250CrossRef Calabrese EJ, Baldwin LA (2003) The hormetic dose-response model is more common than the threshold model in toxicology. J Toxicol sci 71(2):246–250CrossRef
48.
Zurück zum Zitat Dompe C, Moncrieff L, Matys J et al (2020) Photobiomodulation—underlying Mechanism and Clinical Applications. J Clin Med 9(6):1724PubMedCentralCrossRef Dompe C, Moncrieff L, Matys J et al (2020) Photobiomodulation—underlying Mechanism and Clinical Applications. J Clin Med 9(6):1724PubMedCentralCrossRef
Metadaten
Titel
Bioenergetics of photobiomodulated osteoblast mitochondrial cells derived from human pulp stem cells: systematic review
verfasst von
Simone L. Sleep
Deanne Skelly
Robert M. Love
Roy George
Publikationsdatum
22.11.2021
Verlag
Springer London
Erschienen in
Lasers in Medical Science / Ausgabe 3/2022
Print ISSN: 0268-8921
Elektronische ISSN: 1435-604X
DOI
https://doi.org/10.1007/s10103-021-03439-2

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