Open Access

Are lasers justified in everyday clinical dental practice?

   | Jul 16, 2020

Cite

1. Myers T D, Myers W D, Stone R M. First soft tissue study utilising a pulsed Nd YAG dental laser. Northwest Dent 1989; 68: 14-17.Search in Google Scholar

2. Johnson C, Guy A. Nonionizing electromagnetic wave effects in biological materials and systems. Proceedings of the IEEE 1972;60(6):692 – 718.10.1109/PROC.1972.8728Search in Google Scholar

3. Parker S. Introduction, history of lasers and light production. Br. Dent J. 2007;202:(1)21-31.10.1038/bdj.2006.11317220848Search in Google Scholar

4. Kurtz P. Human Nature, Homeostasis, and Value. Philosophy and Phenomenological Research 1956;17(1):36-55.10.2307/2104686Search in Google Scholar

5. Parker S. Ch. 3: Laser-tissue Interaction pp. 29-53 in Coluzzi DJ, Parker SPA: Lasers in Dentistry - Current Concepts: Springer 2017; ISBN: 978-3-319-51943-2.Search in Google Scholar

6. Niemz M. Thermal Interaction Ch. 3.2 pp. 58-87 in Laser tissue interactions, 3rd ed. Springer, 2007. NY, USA. ISBN 978-3-540-72192-5Search in Google Scholar

7. Karu TI, Kolyakov SF. Exact action spectra for cellular responses relevant to phototherapy. Photomed Laser Surg 2005;23:355-361.10.1089/pho.2005.23.35516144476Search in Google Scholar

8. Anders JJ, Lanzafame RJ, Arany PR. Low-level light/laser therapy versus photobiomodulation therapy. Photomed Laser Surg 2015;33(4):183–184.10.1089/pho.2015.9848439021425844681Search in Google Scholar

9. Young S, Bolton P, Dyson M, Harvey W, Diamantopoulos C. Macrophage responsiveness to light therapy. Lasers Surg Med 1989;9:497–505.10.1002/lsm.19000905132811573Search in Google Scholar

10. El Sayed S, Dyson M. Comparison of the effect of multiwavelength light produced by a cluster of semi-conductor diodes and of each individual diode on mast cell number and degranulation in intact and injured skin. Lasers Surg Med 1990;10:1–10.10.1002/lsm.19001006082263155Search in Google Scholar

11. Almeida-Lopes L. In-vitro analysis of proliferation of cells of human gingival fibroblasts irradiated with low intensity laser using different parameters of irradiation. Doctoral thesis. Sao Carlos: Instituto de fisica de Sao Carlos, Universidade de Sao Paulo, 2003; p. 164.Search in Google Scholar

12. Bashkatov A, Genina E, Tuchin V. Optical properties of skin, subcutaneous and muscle tissues: a review. J Innovative Opt Health Sci 2011;4:9–38.10.1142/S1793545811001319Search in Google Scholar

13. Amaroli A, Ravera S, Parker S, Panfoli I, Benedicenti A, Benedicenti S. An 808-nm diode laser with a flattop handpiece positively photobiomodulates mitochondria activities. Photomed Laser Surg 2016;34:564–571.10.1089/pho.2015.403527622977Search in Google Scholar

14. Ureturk S, Sarac¸ M, Fıratlı S, et al. The effect of low-level laser therapy on tooth movement during canine distalization. Lasers Med Sci 2017;32:757–764.10.1007/s10103-017-2159-028289894Search in Google Scholar

15. Tortamano A, Lenzi D, Haddad A, et al. Low-level laser therapy for pain caused by placement of the first orthodontic archwire: a randomized clinical trial. Am J Orthod Dentofacial Orthop 2009;136:662–667.10.1016/j.ajodo.2008.06.02819892282Search in Google Scholar

16. Sivaramakrishnan G, Sridharan K. Photodynamic therapy for the treatment of peri-implant diseases: A network meta-analysis of randomized controlled trials. Photodiagnosis Photodyn Ther. 2018 Mar;21:1-9.10.1016/j.pdpdt.2017.10.01329079351Search in Google Scholar

17. Parker S, Cronshaw M, Anagnostaki E, Lynch E. Parameters for Photobiomodulation Therapy in Clinical Dentistry: A Systematic Review. J. Photobiomodul Photomed Laser Surg. 2019;Sept:1-14. doi: 10.1089/photob.2019.4694.10.1089/photob.2019.469431573388Search in Google Scholar

eISSN:
2601-6877
Language:
English
Publication timeframe:
2 times per year
Journal Subjects:
Life Sciences, other, Medicine, Clinical Medicine, Surgery, Materials Sciences