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Published on: February 4, 2021
Properties of Acanthamoeba myosin I heavy chain kinase bound to phospholipid vesicles
Z Y Wang1, H Brzeska, I C Baines
1Laboratory of Cell Biology, NHLBI, National Institutes of Health, Bethesda, Maryland 20892, USA.
Abstract:
The actin-activated Mg(2+)-ATPase and in vitro motility activities of the three Acanthamoeba myosin I isozymes depend upon phosphorylation of their single heavy chains by myosin I heavy chain kinase. Previously, the kinase had been shown to be activated by autophosphorylation, which is enhanced by acidic phospholipids, or simply by binding to purified plasma membranes in the absence of significant autophosphorylation. In this paper, we show that the rate of phosphorylation of myosin I by unphosphorylated kinase is approximately 20-fold faster when both the myosin I and the kinase are bound to acidic phospholipid vesicles than when both are soluble. This activation is not due to an increase in the local concentrations of vesicle-bound kinase and myosin I. Thus, acidic phospholipids, like membranes, can activate myosin I heavy chain kinase in the absence of significant autophosphorylation, i.e. membrane proteins are not required. Kinetic studies show that both binding of kinase to phospholipid vesicles and autophosphorylation of kinase in the absence of phospholipid increase the Vmax relative to soluble, unphosphorylated kinase with either an increase in the apparent Km (when myosin I is the substrate) or no significant change in Km (when a synthetic peptide is the substrate). Kinetic data showed that autophosphorylation of phospholipid-bound kinase is both intermolecular and intervesicular, and that phosphorylation of phospholipid-bound myosin I by phospholipid-bound kinase is also intervesicular even when the kinase and myosin are bound to the same vesicles. The relevance of these results to the activation of myosin I heavy chain kinase and phosphorylation of myosin I isozymes in situ are discussed.
Insights
Acidic phospholipids activate Acanthamoeba myosin I heavy chain kinase activity by promoting binding between the kinase and myosin I. This membrane-independent activation enhances phosphorylation rates, crucial for myosin I function.
Area of Science:
- Biochemistry
- Cell Biology
- Molecular Motors
Background:
- Acanthamoeba myosin I isozymes' ATPase and motility activities are regulated by phosphorylation of their heavy chains.
- Myosin I heavy chain kinase (MIHCK) activation occurs via autophosphorylation or binding to plasma membranes.
- Acidic phospholipids enhance MIHCK autophosphorylation.
Purpose of the Study:
- To investigate the role of acidic phospholipids in activating MIHCK independently of autophosphorylation.
- To determine if membrane binding alone can activate MIHCK.
- To elucidate the mechanism of MIHCK activation by acidic phospholipids.
Main Methods:
- In vitro phosphorylation assays using purified Acanthamoeba myosin I and MIHCK.
- Utilizing acidic phospholipid vesicles to mimic membrane binding.
- Kinetic analysis (Vmax, Km) with myosin I and synthetic peptide substrates.
- Investigating intermolecular and intervesicular phosphorylation events.
Main Results:
- Phosphorylation of myosin I by unphosphorylated kinase is ~20-fold faster when both are bound to acidic phospholipid vesicles.
- Activation by phospholipid vesicles occurs without significant autophosphorylation and does not rely on increased local concentrations.
- Acidic phospholipids activate MIHCK similarly to plasma membranes, independent of membrane proteins.
- Kinetic studies indicate altered Vmax and Km values upon vesicle binding and autophosphorylation.
Conclusions:
- Acidic phospholipids directly activate MIHCK, independent of autophosphorylation or membrane proteins.
- Membrane binding of both kinase and substrate enhances phosphorylation efficiency.
- The findings provide insights into the in situ regulation of myosin I activity by membrane interactions.
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