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Updated: Aug 8, 2026

Myosin-Specific Adaptations of In vitro Fluorescence Microscopy-Based Motility Assays
Published on: February 4, 2021
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.
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.
Abstract:
In MDCK cell cultured monolayers, as well as in natural and other cultured epithelia, the proper organization of the actin filament ring, tethered to the plasma membrane at the zonula adhaerens, is apparently necessary for their functioning as a transporting epithelium. It has been proposed that actin filaments, in conjunction with motor proteins, could provide the structural basis that regulates the tight junction (TJ) sealing capacity as well as the transport of membrane-tagged proteins required for cell polarization. To test this hypothesis, the authors analyzed the localization and possible association of the actin-binding motor protein myosin I with actin filaments during changes in the actin ring position and organization, and also with trans-Golgi-derived vesicles. Modifications of the ring were induced subjecting the cells to external Ca2+ depletion and restoration (Ca2+ switch), or by treatment with drugs known to depolymerize actin filaments (cytochalasin D, CD). The distribution of myosin I and actin, both in intact cells and in cellular fractions, was monitored using heterologous cross-reacting antibodies and phalloidin. The authors identified an isoform of myosin I of approximately 110-125 KDa, homologous to myosin IB of Acanthamoeba, a fraction of which colocalized with the peripheral actin ring. The association seems transient as, once the ring retracted as result of Ca2+ depletion, or became disorganized by CD, myosin not longer colocalized with the actin fibers but appeared dispersed in the cytoplasm. Furthermore, a significant fraction of the total myosin I in the cell was associated to Golgi-derived vesicles which could also associate in vitro with actin filaments. The authors' data support, then, the participation of myosin I, in association with actin filaments, in vesicle translocation to and from the cell membrane as proposed for natural epithelia, and provide a further insight into the structural organization that maintains epithelial cell polarity in cultured monolayers.
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