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Published on: September 13, 2024
DMPK is a New Candidate Mediator of Tumor Suppressor p53-Dependent Cell Death
Katsuhiko Itoh1, Takahiro Ebata1, Hiroaki Hirata2
1Frontiers of Innovative Research in Science and Technology (FIRST), Konan University, Kobe 650-0047, Japan.
Abstract:
Tumor suppressor p53 plays an integral role in DNA-damage induced apoptosis, a biological process that protects against tumor progression. Cell shape dramatically changes when cells undergo apoptosis, which is associated with actomyosin contraction; however, it remains entirely elusive how p53 regulates actomyosin contraction in response to DNA-damaging agents. To identify a novel p53 regulating gene encoding the modulator of myosin, we conducted DNA microarray analysis. We found that, in response to DNA-damaging agent doxorubicin, expression of myotonic dystrophy protein kinase (DMPK), which is known to upregulate actomyosin contraction, was increased in a p53-dependent manner. The promoter region of DMPK gene contained potential p53-binding sequences and its promoter activity was increased by overexpression of the p53 family protein p73, but, unexpectedly, not of p53. Furthermore, we found that doxorubicin treatment induced p73 expression, which was significantly attenuated by downregulation of p53. These data suggest that p53 induces expression of DMPK through upregulating p73 expression. Overexpression of DMPK promotes contraction of the actomyosin cortex, which leads to formation of membrane blebs, loss of cell adhesion, and concomitant caspase activation. Taken together, our results suggest the existence of p53-p73-DMPK axis which mediates DNA-damage induced actomyosin contraction at the cortex and concomitant cell death.
Insights
Tumor suppressor p53 triggers cell death by regulating actomyosin contraction via the p73-DMPK axis in response to DNA damage. This pathway controls cell shape changes and apoptosis, crucial for preventing tumor progression.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- Tumor suppressor p53 is critical for apoptosis induction following DNA damage.
- Apoptosis involves significant cell shape changes driven by actomyosin contraction.
- The precise mechanism by which p53 regulates actomyosin contraction during DNA-damage-induced apoptosis is largely unknown.
Purpose of the Study:
- To identify novel genes regulated by p53 that modulate myosin activity.
- To elucidate the role of p53 in regulating actomyosin contraction during DNA-damage-induced apoptosis.
Main Methods:
- DNA microarray analysis to identify differentially expressed genes.
- Reporter assays to assess gene promoter activity.
- Western blotting and gene silencing techniques to validate molecular interactions.
Main Results:
- Doxorubicin treatment increased myotonic dystrophy protein kinase (DMPK) expression in a p53-dependent manner.
- p53 upregulates DMPK expression indirectly through the induction of p73.
- DMPK overexpression enhances actomyosin contraction, leading to membrane blebbing, loss of cell adhesion, and caspase activation.
Conclusions:
- A novel p53-p73-DMPK signaling axis mediates DNA-damage-induced actomyosin contraction.
- This pathway is essential for the characteristic cell shape changes and apoptosis observed after DNA damage.
- Understanding this axis provides new insights into tumor suppression mechanisms.
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