Aug 2026· Journal of Physics, Conference Series· Vol 3294, pp. 012006· 0 citations· 53 references
Physics
TL;DR
Comparing EMT dynamics in lung cancer cells under normal growth conditions and in the presence of TGF-β, a known EMT inducer, finds that untreated cells undergo density-independent EMT, and discusses how the minimal quantitative framework may provide insights into the structure of the Waddington landscape associated with the epithelial-mesenchymal plasticity.
Abstract
Epithelial-to-Mesenchymal transitions in the context of cancer are considered drivers of tumoral plasticity and hallmarks of cancer metastasis, resistance to therapy, and relapse. Although classically seen as processes induced by specific extracellular inputs, recent findings pointed to the question of whether and to what extent transitions could happen spontaneously within the tumor population. Here, we address this issue by comparing EMT dynamics in lung cancer cells under normal growth conditions and in the presence of TGF-β, a known EMT inducer. Combining time-course flow cytometry measurements with stochastic modeling, we found that (i) untreated cells undergo density-independent EMT. In particular, (ii) the long-term populations present a combination of epithelial, hybrid, and mesenchymal states, where (iii) the hybrid state acts as a transient phenotype across all experimental conditions. Instead, the spontaneous dynamics differ from those observed after the withdrawal of the treatment, suggesting (iv) the presence of hysteric effects due to EMT induction. Finally, we discuss how our minimal quantitative framework may provide insights into the structure of the Waddington landscape associated with the epithelial-mesenchymal plasticity.
The clinical translation of EMT-directed interventions faces steep methodological hurdles, primarily driven by unverified causal dynamics and unresolved therapeutic safety profiles, and will require dynamic, multi-pronged strategies tailored to specific carcinoma cell states and spatial niches.
Xuecong Wang, C. Zhang, Yi Zhao et al.· Cancer Metastasis Review· 0 citations
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, Y. Wolf, R. Canevarolo et al.· bioRxiv· 0 citations
Unraveling the intricate mechanisms of EMT activation in cancer will contribute to the advancement of personalized medicine and the design of more effective treatments against metastatic disease and pave the way for advancements in personalized medicine and improved treatment strategies for patients affected by EMT-rel...
Vafa Meftahpour, T. C. Dakal, Jarek Maciaczyk et al.· Signal Transduction and Targ...· 0 citations
It is argued that metastatic competence, therapy resistance, and immune evasion can be viewed as functional outputs of remembered plasticity rather than solely as consequences of a contemporaneous mesenchymal phenotype, positioning memory-bearing states as an important target for future therapeutic strategies.
Dominika Denisz, Magdalena Fabian, Jan Olszewski et al.· Cellular Oncology· 0 citations
The conceptual boundaries and operational criteria for identifying OnF in CRC are discussed, its regulatory mechanisms, plasticity-associated phenotypes, and translational relevance are examined, and the importance of distinguishing direct evidence of OnF from evidence of related plasticity mechanisms is emphasized.
Hao-Yu Wang, Song-Hao Liu, Ming-Xuan Zhang et al.· Frontiers in Oncology· 0 citations
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