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Updated: Aug 13, 2026

Application of Laser Micro-irradiation for Examination of Single and Double Strand Break Repair in Mammalian Cells
Published on: September 5, 2017
Pilot screening of potential matrikines resulting from collagen breakages through ionizing radiation
Juliette Montanari1, Lucas Schwob2, Aurélie Marie-Brasset1
1UMR6252 CIMAP, CEA - CNRS - ENSICAEN - Université de Caen Normandie, Caen, 14000, France.
Abstract:
Little is known regarding radiation-induced matrikines and the possible degradation of extracellular matrix following therapeutic irradiation. The goal of this study was to determine if irradiation can cut collagen proteins at specific sites, inducing potentially biologically active peptides against cartilage cells. Chondrocytes cultured as 3D models were evaluated for extracellular matrix production. Bystander molecules were analyzed in vitro in the conditioned medium of X-irradiated chondrocytes. Preferential breakage sites were analyzed in collagen polypeptide by mass spectrometry and resulting peptides were tested against chondrocytes. 3D models of chondrocytes displayed a light extracellular matrix able to maintain the structure. Irradiated and bystander chondrocytes showed a surprising radiation sensitivity at low doses, characteristic of the presence of bystander factors, particularly following 0.1 Gy. The glycine-proline peptidic bond was observed as a preferential cleavage site and a possible weakness of the collagen polypeptide after irradiation. From the 46 collagen peptides analyzed against chondrocytes culture, 20 peptides induced a reduction of viability and 5 peptides induced an increase of viability at the highest concentration between 0.1 and 1 µg/ml. We conclude that irradiation promoted a site-specific degradation of collagen. The potentially resulting peptides induce negative or positive regulations of chondrocyte growth. Taken together, these results suggest that ionizing radiation causes a degradation of cartilage proteins, leading to a functional unbalance of cartilage homeostasis after exposure, contributing to cartilage dysfunction.
Insights
Ionizing radiation degrades cartilage collagen, creating peptides that affect chondrocyte viability. This collagen breakdown may disrupt cartilage homeostasis and lead to dysfunction after radiation therapy.
Area of Science:
- Biochemistry
- Cell Biology
- Radiology
Background:
- Extracellular matrix (ECM) degradation following therapeutic irradiation is not well understood.
- The role of radiation-induced matrikines in cartilage homeostasis is unknown.
Purpose of the Study:
- To investigate if irradiation cleaves collagen proteins at specific sites.
- To determine if these cleavage products (peptides) impact cartilage cells (chondrocytes).
Main Methods:
- Chondrocytes were cultured in 3D models to assess ECM production.
- Conditioned medium from X-irradiated chondrocytes was analyzed for bystander molecules.
- Collagen polypeptide cleavage sites were identified using mass spectrometry.
- Generated collagen peptides were tested for their effects on chondrocyte viability.
Main Results:
- Irradiated and bystander chondrocytes exhibited sensitivity to low radiation doses (0.1 Gy).
- The glycine-proline bond was identified as a preferential collagen cleavage site.
- Of 46 collagen peptides tested, 20 reduced chondrocyte viability, and 5 increased it.
Conclusions:
- Irradiation induces site-specific collagen degradation, yielding bioactive peptides.
- These peptides can modulate chondrocyte growth, suggesting a role in cartilage dysfunction.
- Ionizing radiation disrupts cartilage protein balance, potentially impairing homeostasis.
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