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Published on: July 25, 2022
Caspase-9 inhibition decreases expression of Mmp9 during chondrogenesis
A Ramesova1,2, B Vesela1,2, E Svandova3,4
1Laboratory of Odontogenesis and Osteogenesis, Institute of Animal Physiology and Genetics, Czech Academy of Sciences, Brno, Czech Republic.
Abstract:
Besides cell death, caspase-9 participates in non-apoptotic events, including cell differentiation. To evaluate a possible impact on the expression of chondrogenic/osteogenic factors, a caspase-9 inhibitor was tested in vitro. For this purpose, mouse forelimb-derived micromass cultures, the most common chondrogenic in vitro model, were used. The following analyses were performed based on polymerase chain reaction (PCR) arrays and real-time PCR. The expression of several chondrogenesis-related genes was shown to be altered, some of which may impact chondrogenic differentiation (Bmp4, Bmp7, Sp7, Gli1), mineral deposition (Alp, Itgam) or the remodelling of the extracellular matrix (Col1a2, Mmp9) related to endochondral ossification. From the cluster of genes with altered expression, Mmp9 showed the most significant decrease in expression, of more than 50-fold. Additionally, we determined the possible impact of caspase-9 downregulation on the expression of other Mmp genes. A mild increase in Mmp14 was observed, but there was no change in the expression of other studied Mmp genes (-2, -3, -8, -10, -12, -13). Interestingly, inhibition of Mmp9 in micromasses led to decreased expression of some chondrogenic markers related to caspase-9. These samples also showed a decreased expression of caspase-9 itself, suggesting a bidirectional regulation of these two enzymes. These results indicate a specific impact of caspase-9 inhibition on the expression of Mmp9. The localisation of these two enzymes overlaps in resting, proliferative and pre-hypertrophic chondrocytes during in vivo development, which supports their multiple functions, either apoptotic or non-apoptotic. Notably, a coincidental expression pattern was identified in Pik3cg, a possible candidate for Mmp9 regulation.
Insights
Caspase-9 inhibition significantly decreases matrix metalloproteinase-9 (Mmp9) expression in chondrogenic cultures, revealing a bidirectional regulation between these factors during cell differentiation.
Area of Science:
- Biochemistry
- Cell Biology
- Molecular Biology
Background:
- Caspase-9 is involved in non-apoptotic cellular processes, including cell differentiation.
- Understanding its role in chondrogenesis and osteogenesis is crucial for skeletal development research.
Purpose of the Study:
- To investigate the impact of caspase-9 inhibition on chondrogenic/osteogenic gene expression in vitro.
- To identify specific genes regulated by caspase-9 during chondrogenic differentiation.
Main Methods:
- Utilized mouse forelimb-derived micromass cultures, a standard chondrogenic in vitro model.
- Employed polymerase chain reaction (PCR) arrays and real-time PCR to analyze gene expression profiles.
- Administered a caspase-9 inhibitor to assess its effects on gene regulation.
Main Results:
- Caspase-9 inhibition altered the expression of several chondrogenesis-related genes, including those involved in differentiation (Bmp4, Bmp7, Sp7, Gli1), mineralization (Alp, Itgam), and matrix remodeling (Col1a2, Mmp9).
- Matrix metalloproteinase-9 (Mmp9) expression decreased significantly (over 50-fold) upon caspase-9 inhibition.
- Inhibition of Mmp9 led to decreased expression of chondrogenic markers and caspase-9 itself, suggesting bidirectional regulation.
Conclusions:
- Caspase-9 plays a specific role in regulating Mmp9 expression during chondrogenesis.
- A bidirectional regulatory relationship exists between caspase-9 and Mmp9, impacting chondrogenic differentiation.
- The overlapping localization of caspase-9 and Mmp9 in chondrocytes supports their joint roles in both apoptotic and non-apoptotic functions.
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