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  4. Influence of Three Laser Wavelengths with Different Power Densities on the Mitochondrial Activity of Human Gingival Fibroblasts in Cell Culture
 
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Influence of Three Laser Wavelengths with Different Power Densities on the Mitochondrial Activity of Human Gingival Fibroblasts in Cell Culture

Type
Journal article
Language
English
Date issued
2023
Author
Nowak-Terpiłowska, Agnieszka Magdalena 
Zeyland, Joanna 
Hryhorowicz, Magdalena Julita 
Śledziński, Paweł
Wyganowska, Marzena
Faculty
Wydział Rolnictwa, Ogrodnictwa i Biotechnologii
Journal
Life (Basel).
DOI
10.3390/life13051136
Web address
https://www.mdpi.com/2075-1729/13/5/1136
Volume
13
Number
5
Pages from-to
art. 1136
Abstract (EN)
Phototherapy plays a key role in wound healing and tissue regeneration. The use of lasers has the potential to become an effective and minimally invasive treatment in periodontal and peri-implant disease. The aim of this study was to evaluate the influence of three laser wavelengths with the combination of parameters such as power density and energy density on human gingival fibroblasts (hGFs) in vitro culture. Isolated cells were seeded in 96-well plates with culture medium (DMEM, Dulbecco’s modified Eagle’s medium) supplemented with 10% fetal bovine serum (FBS). After 24 h cells were irradiated (1064, 980 and 635 nm, various energy density value). After 24, 48 and 72 h, cells were evaluated for viability. Data were analyzed by ANOVA followed by Tukey’s HSD test. We found the best outcomes for hGFs irradiated with laser 1064 nm for all combinations of power output (50/400/1000 mW) and energy dose (3/25/64 J/cm2) after 48 h and 72 h compared with control group. Cell viability increase ranged from 0.6× (3 J/cm2, 50 mW) to 1.3× (64 J/cm2, 1000 mW). Our findings indicate that the appropriate use of low-level laser irradiation (LLLI) can increase the proliferation rate of cultured cells. The use of LLLI can be extremely useful in tissue engineering and regenerative medicine.
Keywords (EN)
  • gingival fibroblasts

  • cell culture

  • low-level laser therapy

  • proliferation

License
cc-bycc-by CC-BY - Attribution
Open access date
May 6, 2023
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