Skip to content
Open access

Fluctuating environment causes neoplastic transition and epithelial-mesenchymal plasticity in human cells

Jul 2026 · Research Square · 1 citation · 89 references
Medicine

TL;DR

The immortalized non-tumorigenic breast epithelial cell line (MCF10A) develops neoplastic clones under fluctuating conditions in-vitro that mimic the harsh tumor microenvironment and is identified as a potential therapeutic target against epithelial-mesenchymal plasticity and metastatic spread in breast cancer.

Abstract

How environmental selective pressures contribute to the emergence of a neoplastic tumorigenic state, remains incompletely understood. Here we show that the immortalized non-tumorigenic breast epithelial cell line (MCF10A) develops neoplastic clones under fluctuating conditions in-vitro that mimic the harsh tumor microenvironment. Long-term evolutionary experiments and genomic landscape analyses of the clones identified ROS as the dominant clonal mutational signature that facilitates the acquisition of oncogenic driver mutations and the onset of the Warburg phenotype. Single cell multi-omics and brightfield microscopy further elucidate that each clone adopts two plastic phenotypic states, epithelial-like and mesenchymal-like, the transition between which is epigenetically mediated by de novo expression of Grainyhead-like Transcription Factor 2 (GRHL2), following environmental cues from soluble factors and cell adhesion. Additional in-vitro experiments indicate the role of this plasticity in metastasis. Analysis of 70 human breast cancer cell lines and 2 independent breast cancer patient cohorts confirmed the generality of this mechanism and its epigenetic regulation in patients. Thus, this study elucidates fundamental evolutionary mechanisms behind tumorigenesis and identifies GRHL2 as a potential therapeutic target against epithelial-mesenchymal plasticity and metastatic spread in breast cancer.

Read PDF

Similar papers

Open access Aug 2026

Oncogenic transformation proceeds through a transient state of cellular plasticity constrained by lineage-specific barriers

These findings support a model in which normal-like cells tolerate oncogenic mutations not because most cells fail to respond, but because a p53-independent, cell-intrinsic barrier limits the stabilization of malignant transformation following a transient period of heightened plasticity.

Costakis Frangou, A. Safina, M. Commane et al. · 0 citations
Open access Aug 2026

Longitudinal single cell RNA-sequencing of Pik3caH1047R-driven mammary tumorigenesis reveals coordinated transformation of epithelial and fibroblast transcriptional states

Breast cancer is a heterogeneous disease in which a single oncogenic driver can give rise to divergent tumor phenotypes. How oncogenic mutations generate epithelial state plasticity and coordinately remodel the surrounding tissue remains incompletely understood. Here, we applied longitudinal single cell RNA-sequencing to trace the mammary landscape during Pik3caH1047R-driven tumor progression in the mouse. We identify an expansion of the epithelial transcriptional state space, in which luminal cells lose lineage fidelity and activate ciliated, basal, and squamous-like gene expression programs. While oncogene-expressing cells lose features of luminal identity, they retain expression of hormone-sensing genes such as Esr1, Pgr, and Foxa1. These transcriptional states are established early, and the transition to overt tumors is marked by the emergence of cancer-associated fibroblasts rather than new epithelial states. We identify a Postn+ fibroblast population enriched at the epithelial interface as a candidate progenitor of cancer-associated fibroblasts. Postn+ fibroblasts express an ECM-remodeling program and display altered epithelial crosstalk in oncogenic glands. Altogether, Pik3caH1047R activation initiates a tissue-level process beginning with epithelial lineage infidelity, followed by an altered stromal microenvironment, which together mark tumor initiation.

Jennifer T. Le, Eun K. Kim, Vasudha Srivastava et al. · 0 citations
Review Open access Aug 2026

Epigenetic reprogramming of lineage switching in cancer.

This review evaluating how the antagonistic interplay between Polycomb and Trithorax complexes, chromatin modifier activity, and enhancer reprogramming affects lineage identity and enables multi-lineage plasticity in cancer underscores epigenetic deregulation as a primary driver of lineage plasticity and intratumoral heterogeneity.

Ezgi Boyvatlı, Burcu Akman, E. Bağırsakçı et al. · 0 citations
Open access Aug 2026

Evolutionary implications of phenotype switching for growth and survival of tumors in stochastic environments

A mathematical model of tumor growth under fluctuating conditions with stochastic phenotypic epithelial-mesenchymal switch as the main mechanism of adaptation is developed, and non-trivial evolutionary outcomes are revealed, depending on the relative time scales of the underlying processes.

Sanasar G. Babajanyan, Yuri I. Wolf, R. Canevarolo et al. · 0 citations
Open access Aug 2026

Evolutionarily conserved epigenetic regulation of transcriptional cell states during vertebrate pancreatic tumorigenesis.

These findings suggest a highly conserved role for HDAC9 and class IIA HDACs in vertebrate pancreatic tumorigenesis and may lead to new strategies for reactivating (normal acinar/epithelial) differentiation programs to intercept and treat PDAC.

Somer Matar, Sandra Blázquez-Araguás, Andrea Diéguez-Docampo et al. · 0 citations