A Dynamic Role of Mastermind-Like 1: A Journey Through the Main (Path)ways Between Development and Cancer

Sabrina Zema1, Maria Pelullo2, Francesca Nardozza3

  • 1Department of Medico-Surgical Sciences and Biotechnology, Sapienza University, Latina, Italy.

Insights

MAML1 acts as a molecular switch, coordinating major signaling pathways like Notch, Hedgehog, Wnt, and Hippo. Its dysregulation contributes to diseases, including cancer, highlighting its therapeutic potential.

Area of Science:

  • Molecular Biology
  • Cell Signaling
  • Genetics

Background:

  • Major signaling pathways (Notch, Hedgehog, Wnt/β-catenin, Hippo) control biological processes through gene modulation.
  • Multrotein complexes in the nucleus regulate transcription factor recruitment and gene expression.
  • MAML1, initially identified in Notch signaling, is a versatile coactivator with broader pathway involvement.

Purpose of the Study:

  • To review the pleiotropic roles of MAML proteins, particularly MAML1.
  • To summarize MAML1's function as a molecular switch coordinating multiple signaling pathways.
  • To discuss MAML protein involvement in physiological and pathological processes, including cancer.

Main Methods:

  • Literature review of existing research on MAML proteins and signaling pathways.
  • Analysis of MAML1's role in Notch-independent signaling (Hedgehog, Wnt/β-catenin, Hippo).
  • Examination of MAML protein involvement in malignant transformation and cancer development.

Main Results:

  • MAML1 functions as a versatile coactivator, linking multiple signaling cascades.
  • MAML1 sustains Wnt/β-catenin, Hedgehog, and Hippo pathways independently of Notch.
  • MAML proteins are implicated in coordinating cross-talking pathways and regulating biological processes.

Conclusions:

  • MAML1 acts as a molecular switch controlling key signaling pathways crucial for development and disease.
  • Genetic alterations or impaired MAML expression can deregulate signaling crosstalk, leading to disorders like cancer.
  • Understanding MAML protein interactions offers potential for targeted anticancer therapies.

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