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Complementation of Splicing Activity by a Galectin-3 - U1 snRNP Complex on Beads
Published on: December 9, 2020
Extracellular localization of galectin-3 has a deleterious role in joint tissues
Audrée Janelle-Montcalm1, Christelle Boileau, Françoise Poirier
1Unité de Recherche en Arthrose, Centre de Recherche de l'Université de Montréal (CRCHUM), Montréal, Québec, Canada. kawa_akari@yahoo.ca
Abstract:
In this study we examine the extracellular role of galectin-3 (gal-3) in joint tissues. Following intra-articular injection of gal-3 or vehicle in knee joints of mice, histological evaluation of articular cartilage and subchondral bone was performed. Further studies were then performed using human osteoarthritic (OA) chondrocytes and subchondral bone osteoblasts, in which the effect of gal-3 (0 to 10 microg/ml) was analyzed. Osteoblasts were incubated in the presence of vitamin D3 (50 nM), which is an inducer of osteocalcin, encoded by an osteoblast terminal differentiation gene. Genes of interest mainly expressed in either chondrocytes or osteoblasts were analyzed with real-time RT-PCR and enzyme immunoassays. Signalling pathways regulating osteocalcin were analyzed in the presence of gal-3. Intra-articular injection of gal-3 induced knee swelling and lesions in both cartilage and subchondral bone. On human OA chondrocytes, gal-3 at 1 microg/ml stimulated ADAMTS-5 expression in chondrocytes and, at higher concentrations (5 and 10 microg/ml), matrix metalloproteinase-3 expression. Experiments performed with osteoblasts showed a weak but bipolar effect on alkaline phosphatase expression: stimulation at 1 microg/ml or inhibition at 10 microg/ml. In the absence of vitamin D3, type I collagen alpha 1 chain expression was inhibited by 10 microg/ml of gal-3. The vitamin D3 induced osteocalcin was strongly inhibited in a dose-dependent manner in the presence of gal-3, at both the mRNA and protein levels. This inhibition was mainly mediated by phosphatidylinositol-3-kinase. These findings indicate that high levels of extracellular gal-3, which could be encountered locally during the inflammatory process, have deleterious effects in both cartilage and subchondral bone tissues.
Insights
Extracellular galectin-3 (gal-3) causes joint swelling and damage to cartilage and bone. High gal-3 levels impair osteoblast function and inhibit key bone-forming genes, indicating detrimental effects in inflammatory joint conditions.
Area of Science:
- Biochemistry
- Cell Biology
- Immunology
Background:
- Galectin-3 (gal-3) is implicated in inflammatory processes.
- Its extracellular role in joint tissue homeostasis is not fully understood.
Purpose of the Study:
- To investigate the extracellular function of galectin-3 (gal-3) in articular cartilage and subchondral bone.
- To determine the impact of gal-3 on human osteoarthritic chondrocytes and osteoblasts.
Main Methods:
- Intra-articular injection of gal-3 in mouse knee joints followed by histological analysis.
- In vitro studies on human OA chondrocytes and osteoblasts exposed to varying gal-3 concentrations.
- Analysis of gene and protein expression using real-time RT-PCR and enzyme immunoassays.
- Investigation of signaling pathways, including phosphatidylinositol-3-kinase.
Main Results:
- Intra-articular gal-3 induced knee swelling and lesions in cartilage and subchondral bone.
- Gal-3 stimulated ADAMTS-5 and matrix metalloproteinase-3 expression in chondrocytes.
- Gal-3 exhibited a dose-dependent inhibitory effect on vitamin D3-induced osteocalcin production in osteoblasts, mediated by phosphatidylinositol-3-kinase.
Conclusions:
- Elevated extracellular galectin-3 levels exert detrimental effects on both cartilage and subchondral bone.
- Gal-3 interferes with osteoblast differentiation and function, particularly osteocalcin synthesis.
- These findings highlight the potential negative impact of gal-3 in inflammatory joint diseases.
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