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Analysis of Apoptosis in Zebrafish Embryos by Whole-mount Immunofluorescence to Detect Activated Caspase 3
Published on: December 20, 2013
SMC3 knockdown triggers genomic instability and p53-dependent apoptosis in human and zebrafish cells
1Department of Pathology and Cell Biology, Thomas Jefferson University, 1020 Locust Street, Philadelphia, PA 19107, USA. giancarlo.ghiselli@jefferson.edu
Background:
The structural maintenance of chromosome 3 (SMC3) protein is a constituent of a number of nuclear multimeric protein complexes that are involved in DNA recombination and repair in addition to chromosomal segregation. Overexpression of SMC3 activates a tumorigenic cascade through which mammalian cells acquire a transformed phenotype. This has led us to examine in depth how SMC3 level affects cell growth and genomic stability. In this paper the effect of SMC3 knockdown has been investigated.
Results:
Mammalian cells that are SMC3 deficient fail to expand in a clonal population. In order to shed light on the underlying mechanism, experiments were conducted in zebrafish embryos in which cell competence to undergo apoptosis is acquired at specific stages of development and affects tissue morphogenesis. Zebrafish Smc3 is 95% identical to the human protein, is maternally contributed, and is expressed ubiquitously at all developmental stages. Antisense-mediated loss of Smc3 function leads to increased apoptosis in Smc3 expressing cells of the developing tail and notocord causing morphological malformations. The apoptosis and the ensuing phenotype can be suppressed by injection of a p53-specific MO that blocks the generation of endogenous p53 protein. Results in human cells constitutively lacking p53 or BAX, confirmed that a p53-dependent pathway mediates apoptosis in SMC3-deficient cells. A population of aneuploid cells accumulated in zebrafish embryos following Smc3-knockdown whereas in human cells the transient downregulation of SMC3 level lead to the generation of cells with amplified centrosome number.
Conclusion:
Smc3 is required for normal embryonic development. Its deficiency affects the morphogenesis of tissues with high mitotic index by triggering an apoptotic cascade involving p53 and the downstream p53 target gene bax. Cells with low SMC3 level display centrosome abnormalities that can lead to or are the consequence of dysfunctional mitosis and/or aneuploidy. Collectively the data support the view that SMC3 deficiency affects chromosomal stability leading to the activation of p53-dependent mitotic checkpoint.
Insights
Structural Maintenance of Chromosome 3 (SMC3) protein deficiency impairs embryonic development and genomic stability. Loss of SMC3 triggers apoptosis via the p53 pathway, leading to developmental defects and aneuploidy.
Area of Science:
- Cell Biology
- Developmental Biology
- Genetics
Background:
- Structural Maintenance of Chromosome 3 (SMC3) protein is crucial for DNA repair and chromosomal segregation.
- SMC3 overexpression promotes tumorigenesis, prompting investigation into its role in cell growth and genomic stability.
- This study investigates the effects of SMC3 knockdown on cellular processes.
Purpose of the Study:
- To elucidate the impact of SMC3 deficiency on cell growth and genomic stability.
- To understand the mechanisms underlying SMC3's role in embryonic development.
- To identify the signaling pathways involved in SMC3-mediated cellular responses.
Main Methods:
- SMC3 knockdown in mammalian cells and zebrafish embryos.
- Apoptosis assays and morphological analysis in zebrafish.
- p53 and BAX pathway analysis in both zebrafish and human cell lines.
- Centrosome number quantification in human cells.
Main Results:
- SMC3-deficient mammalian cells exhibit impaired clonal expansion.
- Loss of Smc3 function in zebrafish embryos causes increased apoptosis and morphological malformations, suppressed by p53 inhibition.
- SMC3 deficiency activates a p53-dependent apoptotic pathway, involving the p53 target gene BAX.
- SMC3 knockdown leads to aneuploidy and centrosome amplification in mammalian cells.
Conclusions:
- SMC3 is essential for normal embryonic development and tissue morphogenesis.
- SMC3 deficiency triggers a p53-dependent apoptotic cascade, impacting tissues with high mitotic activity.
- Low SMC3 levels result in centrosome abnormalities and genomic instability, activating the p53-dependent mitotic checkpoint.
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