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Updated: Aug 12, 2026

Myosin-Specific Adaptations of In vitro Fluorescence Microscopy-Based Motility Assays
Published on: February 4, 2021
Phospholipid membrane-associated brush border myosin-I activity
1Department of Physiology, University of Texas Southwestern Medical Center at Dallas 75235-9040, USA.
Insights
Brush border myosin-I (BBMI) binds to specific phospholipids but lacks mechanical activity on membranes. Additional factors are likely needed for BBMI
Area of Science:
- Cell Biology
- Biochemistry
- Molecular Motor Function
Background:
- Brush border myosin-I (BBMI) is found in intestinal epithelial cells, potentially aiding structure and vesicle transport.
- Its mechanochemical activity when bound to membranes remains largely uncharacterized.
Purpose of the Study:
- To investigate the ATPase and actin-binding/motility functions of brush border myosin-I (BBMI) when associated with phospholipid membranes.
- To determine the role of specific lipids, like phosphatidylserine (PS), and calcium in BBMI membrane interactions.
Main Methods:
- Utilized pelleting and planar membrane assays to assess BBMI binding to various phospholipid compositions.
- Measured BBMI ATPase activity on bound phospholipid vesicles.
- Observed actin filament movement in the presence of membrane-bound BBMI using microscopy.
Main Results:
- BBMI exhibits ATPase activity when bound to phospholipids, but fails to move actin filaments on phospholipid bilayers.
- Significant BBMI binding to membranes requires a high concentration of phosphatidylserine (40%) and is enhanced by calcium.
- Membrane-associated BBMI does not induce actin motility, even when binding is sufficient, and this is unaffected by reduced membrane fluidity.
Conclusions:
- Brush border myosin-I (BBMI) possesses ATPase activity on membranes but lacks mechanical force generation in this state.
- BBMI's interaction with brush border membrane lipids is weak, suggesting other factors are crucial for its membrane-associated motility.
- The study highlights that membrane lipid composition alone is insufficient to confer mechanical activity to BBMI.
Abstract:
Brush border myosin-I (BBMI) is associated with the membrane of intestinal epithelial cells where it probably plays a structural role. BBMI also has been identified on Golgi-derived vesicles in intestinal epithelial cells where it may translocate vesicles into the brush border. However, the mechanochemical activity of BBMI bound to a phospholipid membrane has not been described. This study reports that phospholipid membrane-associated BBMI displays ATPase activity when bound to phospholipids, but does not move actin filaments when associated with a phospholipid bilayer. BBMI does not bind significantly to brush border membrane lipids, which contain about 16% phosphatidylserine (PS), in either a pelleting or planar membrane assay. Similarly, planar membranes containing 20% PS do not bind a significant amount of BBMI. Increasing the concentration of PS to 40% does result in the binding of BBMI to both vesicles and planar membranes. This binding is enhanced with increased Ca2+ concentrations. BBMI retains its ATPase activity when bound to phospholipid vesicles containing 40% PS. However, BBMI attached to a phospholipid bilayer surface does not move actin filaments, even though the amount of BBMI bound to the lipid surface, as reflected by the number of actin filaments associated with bilayer-bound BBMI, is sufficient to observe motility in control experiments. When membrane fluidity is reduced by adding cholesterol to the membrane lipids containing 40% PS, BBMI still binds to the membrane, but again no actin filament motility is observed. The lack of binding by BBMI to brush border membrane lipids and the absence of membrane-associated BBMI mechanical activity suggest that factors in addition to membrane lipids are necessary for membrane-associated myosin-I motility.
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