Background: Low-level Laser Therapy (LLLT) has demonstrated its potential in promoting fiber matrix maturation, collagen synthesis, and fibroblast proliferation, contributing to tissue regeneration. Our study aimed to investigate the impact of LLLT on collagen type I synthesis, cell proliferation, and viability in human ligament fibroblasts derived from the Anterior Cruciate Ligament (ACL).
Methods: Tissue samples were obtained from individuals undergoing arthroscopic ACL reconstruction surgery. Primary human fibroblasts were isolated, and immunohistochemical assays confirmed their characteristics. LLLT at 850 nm was administered in three groups: Low dose (1.0 J/cm²), High dose (5.0 J/cm²), and Control (0.0 J/cm²). Cell viability was calculated using a membrane integrity assay, proliferation was determined by automated counting, and collagen type I concentration in cell culture was measured using an immunoassay.
Results: Fibroblasts showed decreased viability after low and high doses of LLLT, increased proliferation at the low dose, and increased collagen synthesis at the high dose on day 10 for both sexes after treatment.
Conclusion: Our study demonstrated that LLLT may improve the early ligament healing process by increasing cell proliferation at the low dose and enhancing collagen type I synthesis at the high dose in human ligament fibroblasts.
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http://dx.doi.org/10.1007/s10103-024-04151-7 | DOI Listing |
Electromagn Biol Med
January 2025
Programa de Pós- Graduação em Biociências e Saúde, UNIOESTE, Cascavel, Brazil.
Objective: The aim of this study was to systematically review the preclinical studies that have applied the static magnetic field to wound healing.
Methods: The search strategy was performed in databases: PubMed, Embase, Scopus, Web of Science, LILACS, CINAHL and Cochrane Database, and in gray literature. The inclusion criteria were: Pre-clinical studies, either with a separate control/sham parallel-group or cross-over design in rodents that used magnets to treat skin injuries anywhere on the body.
J Cosmet Dermatol
January 2025
Centre Esthétique et Laser de Toulouse, Private Practice, Toulouse, France.
Int J Biol Macromol
January 2025
Tissue Engineering and Biomaterials Laboratory, Department of Biotechnology, Bhupat and Jyoti Mehta School of Biosciences, Indian Institute of Technology Madras, Chennai 600036, India. Electronic address:
Herein, we have presented a lauric acid (LA)-loaded jelly fig pectin (JFP)-based biocompatible hydrogel, which possesses strong antioxidant and antibacterial properties to treat diabetic wounds. The antioxidant and antibacterial activity of the JFP + LA hydrogels were beneficial in eliminating the reactive oxygen species (ROS) and bacterial infection in the wound bed, thereby protecting the wound surface and accelerating the tissue repair process. The in vivo diabetic wound healing studies demonstrated that applying JFP + LA hydrogels improved the rate of wound contraction and reduced the epithelialization time significantly.
View Article and Find Full Text PDFJ Anim Sci Biotechnol
January 2025
Key Laboratory of Northwest China's Pig Breading and Reproduction, Ministry of Agriculture and Rural Affairs of the People's Republic of China, College of Animal Science and Technology, Northwest A&F University, Yangling, 712100, Shaanxi, China.
Background: Increased backfat thickness of sows in early gestation is negative to reproductive performance. Endometrial receptivity is an important determinant of reproductive success, but it is unclear whether the effect of sow backfat thickness on litter size is associated with endometrial receptivity and whether melatonin treatment may have benefits. The present study seeks to answer these questions through in vitro and in vivo investigations.
View Article and Find Full Text PDFInt J Biol Macromol
January 2025
Medical Microbiology and Immunology Department, Faculty of Medicine, Mansoura University, Mansoura, Egypt.
Collagen nanoparticles (collagen-NPs) possess numerous applications owing to their minimal immunogenicity, non-toxic nature, excellent biodegradability and biocompatibility. This study presents a novel sustainable technique for one-step green synthesis of hydrolyzed fish collagen-NPs (HFC-NPs) using a hot-water extract of Ulva fasciata biomass. HFC-NPs were characterized using TEM, FTIR, XRD, ζ-potential analyses, etc.
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