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Published on: October 27, 2020
ΔNp63α Silences a miRNA Program to Aberrantly Initiate a Wound-Healing Program That Promotes TGFβ-Induced Metastasis
Lidia Rodriguez Calleja1, Camille Jacques1, François Lamoureux1
1INSERM, UMR-S 957, Nantes, Equipe labellisée LIGUE 2012, France. Physiopathologie de la Résorption Osseuse et Thérapie des Tumeurs Osseuses Primitives, Université de Nantes, Nantes Atlantique Universités, Rue Gaston Veil, Nantes, France.
Abstract:
Primary cancer cell dissemination is a key event during the metastatic cascade, but context-specific determinants of this process remain largely undefined. Multiple reports have suggested that the p53 (TP53) family member p63 (TP63) plays an antimetastatic role through its minor epithelial isoform containing the N-terminal transactivation domain (TAp63). However, the role and contribution of the major p63 isoform lacking this domain, ΔNp63α, remain largely undefined. Here, we report a distinct and TAp63-independent mechanism by which ΔNp63α-expressing cells within a TGFβ-rich microenvironment become positively selected for metastatic dissemination. Orthotopic transplantation of ΔNp63α-expressing human osteosarcoma cells into athymic mice resulted in larger and more frequent lung metastases than transplantation of control cells. Mechanistic investigations revealed that ΔNp63α repressed miR-527 and miR-665, leading to the upregulation of two TGFβ effectors, SMAD4 and TβRII (TGFBR2). Furthermore, we provide evidence that this mechanism reflects a fundamental role for ΔNp63α in the normal wound-healing response. We show that ΔNp63α-mediated repression of miR-527/665 controls a TGFβ-dependent signaling node that switches off antimigratory miR-198 by suppressing the expression of the regulatory factor, KSRP (KHSRP). Collectively, these findings reveal that a novel miRNA network involved in the regulation of physiologic wound-healing responses is hijacked and suppressed by tumor cells to promote metastatic dissemination. Cancer Res; 76(11); 3236-51. ©2016 AACR.
Insights
The p63 isoform ΔNp63α promotes cancer metastasis by repressing microRNAs, upregulating TGFβ signaling, and hijacking wound-healing pathways. This mechanism aids tumor cell dissemination in specific microenvironments.
Area of Science:
- Molecular Biology
- Cancer Research
- Cell Biology
Background:
- Primary cancer cell dissemination is crucial for metastasis but its drivers are unclear.
- The p53 family member p63 has proposed antimetastatic roles, mainly attributed to the TAp63 isoform.
- The function of the major ΔNp63α isoform in metastasis is largely unknown.
Purpose of the Study:
- To investigate the role of the ΔNp63α isoform in cancer cell metastasis.
- To elucidate the molecular mechanisms by which ΔNp63α influences the metastatic cascade.
- To determine if ΔNp63α hijacks normal physiological processes for tumor dissemination.
Main Methods:
- Orthotopic transplantation of human osteosarcoma cells with varying ΔNp63α expression into athymic mice.
- Analysis of microRNA (miRNA) expression profiles and their downstream targets.
- Investigating the role of ΔNp63α in regulating TGFβ signaling components and wound-healing pathways.
Main Results:
- ΔNp63α expression in osteosarcoma cells led to increased lung metastasis frequency and size.
- ΔNp63α repressed miR-527 and miR-665, upregulating TGFβ effectors SMAD4 and TGFBR2.
- ΔNp63α-mediated repression of miR-527/665 suppressed KSRP, leading to reduced antimigratory miR-198, mimicking wound-healing regulation.
Conclusions:
- ΔNp63α promotes cancer cell dissemination independently of TAp63 through a novel mechanism.
- This mechanism involves repression of specific miRNAs, enhancing TGFβ signaling and promoting cell migration.
- Tumor cells hijack a conserved miRNA network regulating wound healing to drive metastasis.
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