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Updated: Feb 28, 2026

Induction of Mesenchymal-Epithelial Transitions in Sarcoma Cells
Published on: April 7, 2017
Tumor Reversion: Mesenchymal-Epithelial Transition as a Critical Step in Managing the Tumor-Microenvironment
Mariano Bizzarri1, Alessandra Cucina2, Sara Proietti2
1Department of Experimental Medicine, Faculty of Medicine and Dentistry, Sapienza University of Rome, Rome. Italy.
Abstract:
Tumour reversion represents a promising field of investigation. The occurrence of cancer reversion both in vitro and in vivo has been ascertained by an increasing number of reports. The reverting process may be triggered in a wide range of different cancer types by both molecular and physical cues. This process encompasses mandatorily a change in the cell-stroma interactions, leading to profound modification in tissue architecture. Indeed, cancer reversion may be obtained by only resetting the overall burden of biophysical cues acting on the cell-stroma system, thus indicating that conformational changes induced by cell shape and cytoskeleton remodelling trigger downstream the cascade of molecular events required for phenotypic reversion. Ultimately, epigenetic regulation of gene expression (chiefly involving presenilin-1 and translationally controlled tumour protein) and modulation of a few critical biochemical pathways trigger the mesenchymal-epithelial transition, deemed to be a stable cancer reversion. As cancer can be successfully 'reprogrammed' by modifying the dynamical cross-talk with its microenvironment thus the cell-stroma interactions must be recognized as targets for pharmacological intervention. Yet, understanding cancer reversion remains challenging and refinement in modelling such processes in vitro as well as in vivo is urgently warranted. This new approach bears huge implications, from both a theoretical and clinical perspective, as it may facilitate the design of a novel anticancer strategy focused on mimicking or activating the tumour reversion pathway.
Insights
Cancer cells can revert to a non-cancerous state through changes in cell-stroma interactions. This reprogramming offers a novel anticancer strategy targeting the tumor microenvironment.
Area of Science:
- Oncology
- Cell Biology
- Biophysics
Background:
- Cancer reversion, the process of tumor cells returning to a non-malignant state, is increasingly reported in vitro and in vivo.
- Reversion can be induced by various molecular and physical stimuli across diverse cancer types.
Purpose of the Study:
- To explore the mechanisms driving cancer reversion.
- To identify cell-stroma interactions as key targets for novel anticancer therapies.
Main Methods:
- Investigating the role of cell-stroma interactions and biophysical cues in cancer reversion.
- Analyzing molecular events, including epigenetic regulation and biochemical pathways, involved in phenotypic reversion.
Main Results:
- Cancer reversion requires alterations in cell-stroma interactions and tissue architecture.
- Cell shape and cytoskeleton remodeling, influenced by biophysical cues, initiate molecular cascades for reversion.
- Epigenetic regulation and specific biochemical pathways drive the mesenchymal-epithelial transition, a stable form of cancer reversion.
Conclusions:
- Modulating the dynamic crosstalk between cancer cells and their microenvironment is crucial for reprogramming tumors.
- Cell-stroma interactions represent a viable target for pharmacological interventions in cancer therapy.
- Further research and improved in vitro/in vivo models are needed to fully understand and harness cancer reversion for clinical applications.
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