Myosin I interactions with actin filaments and trans-Golgi-derived vesicles in MDCK cell monolayers

G Montes de Oca1, R A Lezama, R Mondragón

  • 1Departamento de Biología Celular y Programa de Biomedicina Molecular, Centro de Investigación y de Estudios Avanzados, (CINVESTAV) del Instituto Politécnico Nacional, México, D.F.

Archives of Medical Research
|September 18, 1997
PubMed

Insights

Myosin I motor proteins associate with actin filaments to regulate epithelial cell structure and vesicle transport. This interaction is crucial for maintaining cell polarity and function in transporting epithelia.

Area of Science:

  • Cell Biology
  • Epithelial Biology
  • Cytoskeletal Dynamics

Background:

  • The actin filament ring's organization is vital for transporting epithelia function.
  • Actin filaments and motor proteins may regulate tight junction sealing and protein transport for cell polarization.

Purpose of the Study:

  • To investigate the role of myosin I in actin ring organization and vesicle transport in MDCK cell monolayers.
  • To determine if myosin I associates with actin filaments and trans-Golgi-derived vesicles.

Main Methods:

  • Inducing changes in actin ring organization via Ca2+ depletion/restoration and cytochalasin D treatment.
  • Monitoring myosin I and actin distribution using antibodies and phalloidin.
  • Analyzing cellular fractions and in vitro vesicle-actin interactions.

Main Results:

  • An isoform of myosin I (110-125 KDa) was identified and found to transiently colocalize with the peripheral actin ring.
  • Myosin I dispersed from actin filaments upon Ca2+ depletion or cytochalasin D treatment.
  • A significant fraction of myosin I associated with Golgi-derived vesicles capable of interacting with actin.

Conclusions:

  • Myosin I, in conjunction with actin filaments, participates in vesicle translocation to and from the cell membrane.
  • These findings offer insights into the structural organization maintaining epithelial cell polarity in cultured monolayers.

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