Shahid Beheshti University of Medical Sciences
  • Register
  • Login

Journal of Lasers in Medical Sciences

  • Home
  • Issues
    • Current Issue
    • Archives
  • Journal Info
    • About the Journal
    • Editorial Team
    • Indexing/Abstracting
    • Contact Us
  • Author Guideline
    • Submission Guide
    • Author Statement Form
    • Peer Review Process
    • Publication Fee
  • Ethics & Policies
    • Ethical Requirements
    • Authorship Rules
    • Withdrawal Regulations
    • Retraction Considerations
    • Privacy Statement
    • Licensing
    • Copyright Terms
  • Reviewer Guideline
  • New Submission
Advanced Search
  1. Home
  2. Archives
  3. Vol. 16 (2025): Continues Volume
  4. Original Article

Vol. 16 (2025)

Bahman 2025

Effects of Low-Level Gallium-Aluminum-Arsenide Laser Therapy on Human Dermal Fibroblast Proliferation, ATP, and ROS Levels ATP and ROS levels Low level laser effects on fibroblast proliferation

  • Sameerah Hasan Abdullah
  • Manijhe Mokhtari-Dizaji
  • Zeinab Hormozi-Moghaddam
  • Mohsen Bakhshandeh
  • Mohammad Ali Nilforoshzadeh

Journal of Lasers in Medical Sciences, Vol. 16 (2025), 21 Bahman 2025 , Page e27
Published: 2025-08-26

  • View Article
  • Download
  • Cite
  • References
  • Statastics
  • Share

Abstract

Introduction: Fibroblasts, the primary cells of connective tissue, play a crucial role in the healing process of tissues and organs. The study aimed to evaluate the effect of continuous galliumaluminum-arsenide (Ga-Al-As) laser at a wavelength of 830 nm and output powers of 10 mW and 27 mW on adenosine triphosphate (ATP), reactive oxygen species (ROS) production, and fibroblast cell proliferation in culture. Methods: Human fibroblast cells were cultured in a 96-well plate and exposed to continuous radiation from a Ga-Al-As laser at 830 nm, utilizing two different output powers of 10 and 27 mW and various energy densities. After 24 hours of laser exposure, fibroblast cell proliferation was assessed using the MTT assay. ROS production was measured with a microplate reader, and ATP levels were quantified.
Results: The most significant increase in cell proliferation was observed in the 10 mW group at an energy density of 3.78 J/cm² (0.79±0.07) compared to the control group (0.51±0.05). In contrast, the 27 mW group at 10 J/cm² exhibited lower cell proliferation (0.51±0.05) during 90 s. ATP production significantly increased in the 10 mW group at 3.78 J/cm² (15,404±819), compared to the control group (115±51). Additionally, the groups had no significant difference in ROS levels.
Conclusion: The results suggest that low-level laser therapy (LLLT) using a Ga-Al-As laser at 830 nm with an output power of 10 mW for 3.78 J/cm2 significantly affected fibroblast cell proliferation and ATP synthesis.

Keywords:
  • Photobiomodulation, Human dermal fibroblast, Cell proliferation, ATP synthesis, Reactive oxygen species, Wound healing
  • PDF

How to Cite

Hasan Abdullah, S., Mokhtari-Dizaji, M., Hormozi-Moghaddam, Z., Bakhshandeh, M., & Nilforoshzadeh, M. A. (2025). Effects of Low-Level Gallium-Aluminum-Arsenide Laser Therapy on Human Dermal Fibroblast Proliferation, ATP, and ROS Levels ATP and ROS levels: Low level laser effects on fibroblast proliferation. Journal of Lasers in Medical Sciences, 16, e27. Retrieved from https://journals.sbmu.ac.ir/jlms/article/view/46912
  • ACM
  • ACS
  • APA
  • ABNT
  • Chicago
  • Harvard
  • IEEE
  • MLA
  • Turabian
  • Vancouver
  • Endnote/Zotero/Mendeley (RIS)
  • BibTeX

References

please see the references in PDF

  • Abstract Viewed: 166 times
  • PDF Downloaded: 159 times

Download Statastics

  • Linkedin
  • Twitter
  • Facebook
  • Google Plus
  • Telegram

Make a Submission

Make a Submission

Information

  • For Readers
  • For Authors
  • For Librarians

Developed By

Open Journal Systems
  • Home
  • Archives
  • Submissions
  • About the Journal
  • Editorial Team
  • Contact

Iranian Medical Laser Association 

                                        

 

This journal is distributed under the terms of CC BY-NC 4.0.
Design and publishing by SBMU journals. All credits and honors to PKP for their OJS. 

Powered by OJSPlus