Microfibrillar-associated protein 4 in health and disease

Reine Kanaan1, Myrna Medlej-Hashim2, Rania Jounblat2

  • 1Department of Cancer and Inflammation Research, Institute of Molecular Medicine, University of Southern Denmark, Odense, Denmark; Laboratory of Cellular and Molecular Physiopathologies (CAMP), Department of Life and Earth Sciences, Faculty of Sciences, Lebanese University, Lebanon.

Insights

Microfibrillar-associated protein 4 (MFAP4) is an extracellular matrix protein implicated in tissue remodeling. While largely redundant in healthy conditions, MFAP4 actively contributes to diseases like fibrosis and cancer by modulating cell signaling pathways.

Area of Science:

  • Biochemistry
  • Cell Biology
  • Pathology

Background:

  • Microfibrillar-associated protein 4 (MFAP4) is an extracellular matrix protein within the fibrinogen-related domain family.
  • MFAP4 localizes to elastic fiber-rich tissues and interacts with collagen, fibrillins, and tropoelastin, aiding elastic fiber assembly.
  • It binds integrins (αVβ3, αVβ5) via its RGD sequence, influencing cellular behavior.

Purpose of the Study:

  • To review the structure, localization, and function of MFAP4.
  • To explore MFAP4's role in disease-associated tissue remodeling.
  • To assess MFAP4's potential as a clinical biomarker.

Main Methods:

  • Literature review of existing in vivo and in vitro studies.
  • Analysis of MFAP4's molecular interactions and signaling pathways.
  • Evaluation of MFAP4's association with various disease states.

Main Results:

  • MFAP4 deficiency in mice shows mild pulmonary phenotype (emphysema-like airspace enlargement).
  • MFAP4 is implicated in the pathogenesis of fibrosis, cardiovascular disorders, aging, asthma, and cancer.
  • It activates integrin-mediated signaling and modulates the TGF-β pathway, promoting maladaptive matrix remodeling.

Conclusions:

  • MFAP4 plays a critical role in pathological tissue remodeling.
  • MFAP4 is a potential biomarker for liver fibrosis, cardiovascular diseases, and COPD.
  • Further research into MFAP4's mechanisms can inform therapeutic strategies for remodeling-associated diseases.

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