The Transmembrane Mucin MUC1 Facilitates β1-Integrin-Mediated Bacterial Invasion

Xinyue Li1, Richard W Wubbolts1, Nancy M C Bleumink-Pluym1

  • 1Department of Biomolecular Health Sciences, Division of Infectious Diseases and Immunology, Faculty of Veterinary Medicine, Utrecht University, Utrecht, Netherlands.

Mbio
|April 7, 2021
PubMed

Insights

Mucin 1 (MUC1) facilitates bacterial invasion by interacting with beta-1 integrins (ITGB1). This process involves both the extracellular and cytoplasmic tail domains of MUC1, rather than acting as a barrier.

Area of Science:

  • Microbiology
  • Cell Biology
  • Immunology

Background:

  • The transmembrane mucin MUC1 is present at the intestinal host-microbe interface.
  • MUC1 influences epithelial cell morphology and receptor function.
  • Bacterial pathogens utilize integrins for cellular invasion.

Purpose of the Study:

  • To investigate the role of MUC1 in bacterial invasion mediated by beta-1 integrins (ITGB1).
  • To determine how different domains of MUC1 affect bacterial entry.

Main Methods:

  • Utilized *Escherichia coli* expressing invasin (*E. coli* inv) to study bacterial invasion.
  • Assessed the impact of full-length MUC1, truncated MUC1 (lacking cytoplasmic tail), and MUC1 with modified cytoplasmic tail on bacterial uptake.
  • Employed enzymatic removal of the MUC1 extracellular domain using StcE protease.

Main Results:

  • Full-length MUC1 enhanced *E. coli* inv uptake, not acting as a barrier.
  • Truncated MUC1 lacking the cytoplasmic tail significantly reduced bacterial entry.
  • Tyrosine residue substitution in the MUC1 cytoplasmic tail reduced bacterial uptake, indicating a regulatory role.
  • Enzymatic removal of MUC1's extracellular domain in MUC1-ΔCT cells reversed the invasion block.

Conclusions:

  • MUC1 facilitates beta-1 integrin-mediated bacterial invasion through a combined action of its extracellular domain and cytoplasmic tail.
  • MUC1's cytoplasmic tail, particularly tyrosine phosphorylation and the N-terminal region, plays a key regulatory role.
  • These findings reveal a novel mechanism of bacterial invasion facilitated by MUC1 domains.

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