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Detection and characterization of Sp1 binding activity in human chondrocytes and its alterations during chondrocyte
R M Dharmavaram1, G Liu, S D Mowers
1Division of Rheumatology, Department of Medicine, Jefferson Medical College, Thomas Jefferson University, Philadelphia, Pennsylvania 19107, USA.
Abstract:
We have detected DNA binding activity for a synthetic oligonucleotide containing an Sp1 consensus sequence in nuclear extracts from human chondrocytes. Changes in the levels of Sp1 oligonucleotide binding activity were examined in nuclear extracts from freshly isolated human chondrocytes, from chondrocytes that had been cultured under conditions that allowed the maintenance of a chondrocyte-specific phenotype on plastic dishes coated with the hydrogel poly(2-hydroxyethyl methacrylate), and from chondrocytes induced to dedifferentiate into fibroblast-like cells by passage in monolayer culture on plastic substrata. It was observed that Sp1 binding was 2-3-fold greater in nuclear extracts from dedifferentiated chondrocytes than in nuclear extracts from either freshly isolated chondrocytes or from cells cultured in suspension. The Sp1 binding activity was specific, since it was competed by unlabeled Sp1 but not by AP1 or AP2. The addition of a polyclonal antibody against Sp1 to nuclear extracts from freshly isolated chondrocytes or to extracts isolated from chondrocytes cultured in monolayer decreased the binding of Sp1 by approximately 85%. However, when the same experiment was carried out with nuclear extracts prepared from cells cultured on poly(2-hydroxyethyl methacrylate)-coated plates, only a very slight inhibition of Sp1 binding was observed. When fragments of the COL2A1 promoter containing putative Sp1 binding sites amplified by polymerase chain reaction were examined, it was found that the amounts of DNA-protein complex formed with nuclear extracts from dedifferentiated chondrocytes were 2-3-fold greater than the amounts formed with nuclear extracts from freshly isolated chondrocytes or from cells cultured in suspension. Quantitation of DNA binding activity by titration experiments demonstrated that nuclear extracts from fibroblast-like cells contained approximately 2-fold greater Sp-1 specific binding activity than nuclear extracts from chondrocytes. The direct role of Sp1 in type II collagen gene transcription was demonstrated by co-transfection experiments of COL2A1 promoter-CAT constructs in Drosophila Schneider line L2 cells that lack Sp1 homologs. This is the first demonstration of Sp1 binding activity in human chondrocytes and of differences in Sp1 DNA binding activity between differentiated and dedifferentiated chondrocytes.
Insights
Sp1 DNA binding activity is significantly higher in dedifferentiated human chondrocytes compared to differentiated cells. This finding highlights Sp1
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Chondrocytes are crucial for cartilage maintenance and function.
- Cellular dedifferentiation can alter gene expression and protein activity.
- Sp1 is a transcription factor involved in various cellular processes.
Purpose of the Study:
- To investigate Sp1 DNA binding activity in human chondrocytes.
- To compare Sp1 binding levels between differentiated and dedifferentiated chondrocytes.
- To assess the role of Sp1 in type II collagen gene transcription.
Main Methods:
- Electrophoretic mobility shift assays (EMSA) to detect Sp1 DNA binding.
- Nuclear extract preparation from freshly isolated, cultured, and dedifferentiated chondrocytes.
- Western blotting and co-transfection assays to confirm Sp1 specificity and function.
Main Results:
- Sp1 binding activity was 2-3 fold higher in dedifferentiated chondrocytes compared to freshly isolated or suspension-cultured chondrocytes.
- Sp1 binding was specific, confirmed by competition assays and antibody inhibition.
- Dedifferentiated chondrocytes showed increased Sp1 binding to COL2A1 promoter fragments.
Conclusions:
- Sp1 DNA binding activity is elevated in dedifferentiated human chondrocytes.
- This study provides the first evidence of Sp1 binding in human chondrocytes and its differential activity.
- Sp1 plays a role in type II collagen gene transcription, potentially influenced by chondrocyte differentiation state.