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Recombinant small subunit of smooth muscle myosin light chain phosphatase. Molecular properties and interactions with
K Langsetmo1, W F Stafford, K Mabuchi
1Muscle and Motility Group, Boston Biomedical Research Institute, Watertown, Massachusetts 02472, USA.
Abstract:
We expressed the small subunit of smooth muscle myosin light chain phosphatase (MPs) in Escherichia coli, and have studied its molecular properties as well as its interaction with the targeting subunit (MPt). MPs (M(r) = 18,500) has an anomalously low electrophoretic mobility, running with an apparent M(r) of approximately 21,000 in sodium dodecyl sulfate-gel electrophoresis. CD spectroscopy shows that it is approximately 45% alpha-helix and undergoes a cooperative temperature-induced unfolding with a transition midpoint of 73 degrees C. Limited proteolysis rapidly degrades MPs to a stable C-terminal fragment (M(r) = 10,000) that retains most of the helical content. Rotary shadowing electron microscopy reveals that it is an elongated protein with two domains. Sedimentation velocity measurements show that recombinant MPt (M(r) = 107,000), intact MPs, and the 10-kDa MPs fragment are all dimeric, and that MPs and MPt form a complex with a molar mass consistent with a 1:1 heterodimer. Sequence analysis predicts that regions in the C-terminal portions of both MPs and MPt have high probabilities for coiled coil formation. A synthetic peptide from a region of MPs encompassing residues 77-116 was found to be 100% alpha-helical, dimeric, and formed a complex with MPt with a molecular mass corresponding to a heterodimer. Based on these results, we propose that MPs is an elongated molecule with an N-terminal head and a C-terminal stalk domain. It dimerizes via a coiled coil interaction in the stalk domain, and interacts with MPt via heterodimeric coiled coil formation. Since other proteins with known regulatory function toward MP also have predicted coiled coil regions, our results suggest that these regulatory proteins target MP via the same coiled coil strand exchange mechanism with MPt.
Insights
The small subunit of smooth muscle myosin light chain phosphatase (MPs) is an elongated protein that dimerizes via coiled-coil interactions. It forms a heterodimer with the targeting subunit (MPt), suggesting a common regulatory mechanism for myosin light chain phosphatase.
Area of Science:
- Molecular biology
- Biochemistry
- Structural biology
Background:
- Smooth muscle myosin light chain phosphatase (MP) is a key regulator of smooth muscle contraction.
- The small subunit (MPs) and targeting subunit (MPt) form the catalytic core of MP.
- Understanding the structural properties and interactions of MPs and MPt is crucial for elucidating MP regulation.
Purpose of the Study:
- To characterize the molecular properties of the small subunit of smooth muscle myosin light chain phosphatase (MPs).
- To investigate the interaction between MPs and its targeting subunit (MPt).
- To propose a structural model for MPs and its complex with MPt.
Main Methods:
- Expression of MPs in Escherichia coli.
- Sodium dodecyl sulfate-gel electrophoresis and CD spectroscopy for molecular properties.
- Limited proteolysis and rotary shadowing electron microscopy for structural analysis.
- Sedimentation velocity measurements and sequence analysis for protein interactions and structural predictions.
Main Results:
- MPs exhibits anomalous electrophoretic mobility and is approximately 45% alpha-helical, undergoing cooperative thermal unfolding.
- MPs is an elongated, two-domain protein that dimerizes via its C-terminal stalk domain through coiled-coil interactions.
- MPs and MPt form a stable 1:1 heterodimer, likely through heterodimeric coiled-coil formation between their respective C-terminal regions.
Conclusions:
- MPs is an elongated molecule with a distinct N-terminal head and C-terminal stalk domain.
- Dimerization of MPs and its interaction with MPt are mediated by coiled-coil interactions in their C-terminal regions.
- This mechanism suggests a conserved strategy for the interaction of regulatory proteins with MP via MPt.