Javascript must be enabled to continue!
The N‐terminus of A1‐type myosin essential light chains binds actin and modulates myosin motor function
View through CrossRef
There are two isoforms (A1 and A2) of the myosin essential light chain (ELC) and consequently two isoenzymes of myosin subfragment 1 (S1), S1(A1) and S1(A2). The two isoenzymes differ in their kinetic properties with S1(A1) having a lower apparent Km for actin and a slower turnover of MgATP (kcat) than S1(A2). The two forms of the ELC differ only at their N‐termini where A1 has an additional 40‐odd amino acids that are not present in A2.The human atrial ELC (an A1‐type ELC) was overexpressed in Escherichia coli and purified by ammonium sulphate fractionation and ion‐exchange chromatography. The recombinant ELC had actin‐activated MgATPase kinetics similar to those for rabbit skeletal S1(A1) under the same conditions. Deletion of the first 45 amino acid residues resulted in an ELC similar to the rabbit skeletal A2 isoform and, when hybridised into S1, in S1(A2)‐like kinetic properties. Results obtained with an ELC mutant that lacks the first 11 residues were intermediate between these two extremes but tending towards the S1(A2)‐like phenotype.The wild‐type ELC (both hybridised into S1 or free in solution) could be cross‐linked to F‐actin, whereas the deletion mutant lacking the first 45 amino acids could not. The deletion mutant lacking the first 11 amino acids cross‐linked only poorly under the same conditions, consistent with the MgATPase data. We therefore conclude that these N‐terminal eleven amino acids predominantly encode an actin‐binding site which modulates the kinetics of the myosin motor. Furthermore, while free A1‐type ELC cross‐linked to both polymeric F‐actin and the monomeric G‐actin : DNase‐I complex, the same ELC in S1(A1) could only cross‐link to F‐actin. This suggests that the light chain binds to a different actin monomer than the heavy chain.
Title: The N‐terminus of A1‐type myosin essential light chains binds actin and modulates myosin motor function
Description:
There are two isoforms (A1 and A2) of the myosin essential light chain (ELC) and consequently two isoenzymes of myosin subfragment 1 (S1), S1(A1) and S1(A2).
The two isoenzymes differ in their kinetic properties with S1(A1) having a lower apparent Km for actin and a slower turnover of MgATP (kcat) than S1(A2).
The two forms of the ELC differ only at their N‐termini where A1 has an additional 40‐odd amino acids that are not present in A2.
The human atrial ELC (an A1‐type ELC) was overexpressed in Escherichia coli and purified by ammonium sulphate fractionation and ion‐exchange chromatography.
The recombinant ELC had actin‐activated MgATPase kinetics similar to those for rabbit skeletal S1(A1) under the same conditions.
Deletion of the first 45 amino acid residues resulted in an ELC similar to the rabbit skeletal A2 isoform and, when hybridised into S1, in S1(A2)‐like kinetic properties.
Results obtained with an ELC mutant that lacks the first 11 residues were intermediate between these two extremes but tending towards the S1(A2)‐like phenotype.
The wild‐type ELC (both hybridised into S1 or free in solution) could be cross‐linked to F‐actin, whereas the deletion mutant lacking the first 45 amino acids could not.
The deletion mutant lacking the first 11 amino acids cross‐linked only poorly under the same conditions, consistent with the MgATPase data.
We therefore conclude that these N‐terminal eleven amino acids predominantly encode an actin‐binding site which modulates the kinetics of the myosin motor.
Furthermore, while free A1‐type ELC cross‐linked to both polymeric F‐actin and the monomeric G‐actin : DNase‐I complex, the same ELC in S1(A1) could only cross‐link to F‐actin.
This suggests that the light chain binds to a different actin monomer than the heavy chain.
Related Results
14-3-3 Negatively Regulates Actin Filament Formation in the Deep Branching EukaryoteGiardia lamblia
14-3-3 Negatively Regulates Actin Filament Formation in the Deep Branching EukaryoteGiardia lamblia
AbstractThe phosphoserine/phosphothreonine-binding protein 14-3-3 is known to regulate actin, this function has been previously attributed to sequestration of phosphorylated cofili...
Interaction between distinct actin pools controls activity-dependent actin dynamics in the dendritic spine
Interaction between distinct actin pools controls activity-dependent actin dynamics in the dendritic spine
Abstract
Actin cytoskeleton is composed of functionally distinct pools of filamentous (F)-actin defined by their regulatory machinery and dynamic...
Studies of Novel Cytoskeletal Regulatory Proteins that are Involved in Abiotic Stress Signaling
Studies of Novel Cytoskeletal Regulatory Proteins that are Involved in Abiotic Stress Signaling
In the original proposal we planned to focus on two proteins related to the actin cytoskeleton: TCH2, a touch-induced calmodulin-like protein which was found by us to interact with...
Demographic Model for Inheritable Cardiac Disease
Demographic Model for Inheritable Cardiac Disease
ABSTRACT
The cardiac muscle proteins, generating and regulating energy transduction during a heartbeat, assemble in the sarcomere into a cyclical machine repetitive...
Identification of Actin Filament Interactors in
Giardia lamblia
Identification of Actin Filament Interactors in
Giardia lamblia
Abstract
The deep-branching protozoan parasite
Giardia lamblia
is the causative agent of the intestinal disea...
Fiber types and myosin types in human atrial and ventricular myocardium. An anatomical description.
Fiber types and myosin types in human atrial and ventricular myocardium. An anatomical description.
Hybridomas were prepared from mice immunized with myosin from the enlarged left ventricle of a 53-year-old female with an obstructive cardiomyopathy. The specificity of 15 monoclon...
Porcine myosin-VI: characterization of a new mammalian unconventional myosin.
Porcine myosin-VI: characterization of a new mammalian unconventional myosin.
We have cloned a new mammalian unconventional myosin, porcine myosin-VI from the proximal tubule cell line, LLC-PK1 (CL4). Porcine myosin-VI is highly homologous to Drosophila 95F ...
Seasonality in Terminus Ablation Rates for the Glaciers in Kalaallit Nunaat
(Greenland)
Seasonality in Terminus Ablation Rates for the Glaciers in Kalaallit Nunaat
(Greenland)
Since the 1990s, the Greenland Ice Sheet (GrIS) has undergone accelerated mass
loss, with a substantial portion due to the dynamic effects of terminus retreat.
...

