Decoding the role of mesothelin in tumor dynamics and targeted treatment innovations

Roberto Silvestri1, Emanuela Colucci2, Margherita Piccardi2

  • 1Department of Biology, University of Pisa, Pisa, Italy. roberto.silvestri@unipi.it.

Molecular Biomedicine
|December 3, 2025
PubMed

Insights

Mesothelin (MSLN) drives cancer progression, invasion, and immune evasion by influencing the tumor microenvironment (TME). Understanding MSLN biology is crucial for developing effective cancer therapies targeting this antigen.

Area of Science:

  • Oncology
  • Cancer Biology
  • Immunology

Background:

  • Mesothelin (MSLN) is a key cancer antigen targeted in mesothelioma, pancreatic, and ovarian cancers.
  • Current MSLN-targeting therapies show limited clinical efficacy, necessitating a deeper understanding of MSLN biology.
  • MSLN is increasingly recognized for its role in cancer progression and tumor microenvironment (TME) modulation.

Purpose of the Study:

  • To review the transcriptional regulation of MSLN.
  • To elucidate MSLN's functional implications in cancer invasion, metastasis, and immune evasion.
  • To summarize current MSLN-targeting strategies and TME-driven resistance mechanisms.

Main Methods:

  • Literature review and synthesis of existing research on MSLN.
  • Analysis of mechanistic evidence linking MSLN to malignant features and TME polarization.
  • Integration of molecular insights with translational perspectives.

Main Results:

  • MSLN promotes epithelial-to-mesenchymal transition (EMT) and extracellular matrix (ECM) remodeling.
  • MSLN drives TME immunosuppression via CD206 macrophage interactions (M2 polarization) and CAF induction.
  • MSLN plays a significant role in cancer cell invasion, metastasis, and immune evasion.

Conclusions:

  • MSLN is a critical mediator of key malignant phenotypes and immune evasion within the TME.
  • Understanding MSLN's complex biology and TME interactions is vital for overcoming therapeutic resistance.
  • Future MSLN-directed therapies must consider TME-driven resistance mechanisms for enhanced efficacy.

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