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Updated: Jun 27, 2026

Identification of Transcription Factor Regulators using Medium-Throughput Screening of Arrayed Libraries and a Dual-Luciferase-Based Reporter
Published on: March 27, 2020
The Regulatory Network of FOXM1: Orchestrating Cancer Progression and Resistance to Therapy
Aleksei D Korolev1,2, Irina V Bekbaeva1,3, Polina V Shnaider1
1Lopukhin Federal Research and Clinical Center of Physical-Chemical Medicine of the Federal Medical and Biological Agency, 119435 Moscow, Russia.
Abstract:
Therapy resistance remains a major obstacle to successful cancer treatment and is driven by complex interactions between tumor-intrinsic adaptive mechanisms and signals originating from the tumor microenvironment. Among the molecular regulators implicated in these processes, the transcription factor FOXM1 has emerged as a key mediator of DNA damage repair, cell cycle progression, and stress adaptation. Although FOXM1 has traditionally been studied as a regulator of intracellular signaling pathways, accumulating evidence suggests that its functions extend beyond canonical transcriptional control. In this review, we analyze current knowledge on the mechanisms regulating FOXM1 expression and activity and discuss how FOXM1 contributes to therapy resistance. We propose that FOXM1 should be viewed not merely as a regulator of individual oncogenic pathways but as a systems-level coordinator that integrates intracellular stress adaptation with microenvironment-driven resistance mechanisms. Particular attention is given to the FOXM1 interactome, complemented by an analysis of protein interaction data from BioGRID. We also discuss emerging evidence implicating FOXM1 in intercellular communication. To identify potential links between FOXM1 signaling and extracellular vesicle cargo, we analyzed the overlap between FOXM1 target genes and proteins identified in extracellular vesicle proteome databases. These emerging regulatory networks may represent previously underappreciated contributors to therapy resistance.
Insights
The transcription factor FOXM1 coordinates cancer
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Therapy resistance is a major challenge in cancer treatment.
- The transcription factor FOXM1 (Forkhead box protein M1) is implicated in DNA repair, cell cycle, and stress adaptation.
- FOXM1's role may extend beyond intracellular signaling to integrate tumor microenvironment interactions.
Purpose of the Study:
- To review mechanisms regulating FOXM1 expression and activity.
- To discuss FOXM1's contribution to therapy resistance.
- To explore FOXM1 as a systems-level coordinator integrating intracellular and microenvironment signals.
Main Methods:
- Literature review of FOXM1 regulation and function.
- Analysis of FOXM1 interactome data from BioGRID.
- Overlap analysis of FOXM1 target genes and extracellular vesicle proteome databases.
Main Results:
- FOXM1 integrates intracellular stress adaptation with microenvironment-driven resistance.
- FOXM1 interactome analysis reveals its broad regulatory network.
- Emerging links between FOXM1 and extracellular vesicle communication.
Conclusions:
- FOXM1 acts as a systems-level coordinator in cancer therapy resistance.
- FOXM1's role in intercellular communication via extracellular vesicles is a novel area.
- Understanding these networks may reveal new therapeutic strategies against resistance.
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