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Suppression of Pro-fibrotic Signaling Potentiates Factor-mediated Reprogramming of Mouse Embryonic Fibroblasts into Induced Cardiomyocytes
Published on: June 3, 2018
Inactivation of Tumor Suppressor CYLD Inhibits Fibroblast Reprogramming to Pluripotency
Nikolaos Bekas1, Martina Samiotaki2, Maria Papathanasiou3
1School of Biology, Aristotle University of Thessaloniki, 54124 Thessaloniki, Greece.
Abstract:
CYLD is a tumor suppressor gene coding for a deubiquitinating enzyme that has a critical regulatory function in a variety of signaling pathways and biological processes involved in cancer development and progression, many of which are also key modulators of somatic cell reprogramming. Nevertheless, the potential role of CYLD in this process has not been studied. With the dual aim of investigating the involvement of CYLD in reprogramming and developing a better understanding of the intricate regulatory system governing this process, we reprogrammed control (CYLD) and CYLD DUB-deficient (CYLD) mouse embryonic fibroblasts (MEFs) into induced pluripotent stem cells (iPSCs) through ectopic overexpression of the Yamanaka factors (Oct3/4, Sox2, Klf4, c-myc). CYLD DUB deficiency led to significantly reduced reprogramming efficiency and slower early reprogramming kinetics. The introduction of WT CYLD to CYLD MEFs rescued the phenotype. Nevertheless, CYLD DUB-deficient cells were capable of establishing induced pluripotent colonies with full spontaneous differentiation potential of the three germ layers. Whole proteome analysis (Data are available via ProteomeXchange with identifier PXD044220) revealed that the mesenchymal-to-epithelial transition (MET) during the early reprogramming stages was disrupted in CYLD MEFs. Interestingly, differentially enriched pathways revealed that the primary processes affected by CYLD DUB deficiency were associated with the organization of the extracellular matrix and several metabolic pathways. Our findings not only establish for the first time CYLD's significance as a regulatory component of early reprogramming but also highlight its role as an extracellular matrix regulator, which has profound implications in cancer research.
Insights
The tumor suppressor CYLD (deubiquitinating enzyme) is crucial for somatic cell reprogramming efficiency. CYLD deficiency impairs mesenchymal-to-epithelial transition, impacting extracellular matrix organization and metabolism.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- * CYLD is a tumor suppressor gene encoding a deubiquitinating enzyme.
- * CYLD regulates signaling pathways involved in cancer and somatic cell reprogramming.
- * The role of CYLD in somatic cell reprogramming remains unstudied.
Purpose of the Study:
- * To investigate the involvement of CYLD in somatic cell reprogramming.
- * To understand the regulatory mechanisms governing reprogramming.
- * To explore CYLD's role in extracellular matrix organization and metabolism.
Main Methods:
- * Reprogramming of control and CYLD DUB-deficient mouse embryonic fibroblasts (MEFs) into induced pluripotent stem cells (iPSCs) using Yamanaka factors.
- * Introduction of wild-type (WT) CYLD into CYLD DUB-deficient MEFs to assess rescue phenotype.
- * Whole proteome analysis to identify disrupted pathways.
Main Results:
- * CYLD DUB deficiency significantly reduced reprogramming efficiency and slowed early reprogramming kinetics.
- * Introduction of WT CYLD rescued the reprogramming defect.
- * CYLD DUB-deficient cells could form iPSCs with full differentiation potential.
- * Mesenchymal-to-epithelial transition (MET) was disrupted in CYLD-deficient MEFs.
- * Affected pathways included extracellular matrix organization and metabolic pathways.
Conclusions:
- * CYLD is a significant regulatory component of early somatic cell reprogramming.
- * CYLD plays a role in regulating extracellular matrix organization.
- * Findings have implications for cancer research due to CYLD's known role in tumorigenesis.
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