Sandbox Reserved 930: Difference between revisions

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The MD has different conformational states in each step of the contractile cycle. The conformation of the MD in each state depends on which nucleotide is bound to the active site (if any). In each structural state the conformation of the MD changes relatively little, but these changes are enough to cause a substantial difference in the position of the lever arm (Fig. 4) <ref>PMID: 11016966</ref>.
The MD has different conformational states in each step of the contractile cycle. The conformation of the MD in each state depends on which nucleotide is bound to the active site (if any). In each structural state the conformation of the MD changes relatively little, but these changes are enough to cause a substantial difference in the position of the lever arm (Fig. 4) <ref>PMID: 11016966</ref>.


The 50-kDa upper and lower subdomains as well as the converter control the motor function of the myosin head by rotating around the N-terminal subdomain. The rotations depend on the conformational changes of the 3 joints; switch II, SH1 helix region, and relay. <ref>PMID: 15184651</ref> The joints work together in the transition between the different conformational states of MD to control the overall organization of the myosin head.  They also allow communication between the nucleotide-bonding pocket, acting-binding interface and the lever arm <ref>PMID: 11016966</ref>.
[[Image:Myosin turn.png|450px|right|thumb| Figure 5. Arrows in the upper figure show the direction of rotation of the 50-kDa lower and upper subdomains and the converter around the N-terminal subdomain. Lower picture shows the pivots around which SH1 unwinds. (Himmel 2002)]]
The 50-kDa upper and lower subdomains as well as the converter control the motor function of the myosin head by rotating around the N-terminal subdomain (Fig 5). The rotations depend on the conformational changes of the 3 joints; switch II, SH1 helix region, and relay. <ref>PMID: 15184651</ref> The joints work together in the transition between the different conformational states of MD to control the overall organization of the myosin head.  They also allow communication between the nucleotide-bonding pocket, acting-binding interface and the lever arm <ref>PMID: 11016966</ref>.


Switch II, a catalytic loop of the nucleotide-binding pocket, moves in and out of the nucleotide-binding pocket during enzymatic activity. It is responsible for the unwinding of SH1 helix, along with the conformational changes caused by nucleotide binding. Upon unwinding helix SH1 uncouples the converter/lever module from the MD. <ref>PMID: 12297624</ref> Movement of the converter is controlled by the relay joint. The converter/relay module attains different conformations changing the position of the lever arm and thus giving rise to the different states of the actomyosin cycle <ref>PMID: 11016966</ref>.
Switch II, a catalytic loop of the nucleotide-binding pocket, moves in and out of the nucleotide-binding pocket during enzymatic activity. It is responsible for the unwinding of SH1 helix, along with the conformational changes caused by nucleotide binding. Upon unwinding helix SH1 uncouples the converter/lever module from the MD. <ref>PMID: 12297624</ref> Movement of the converter is controlled by the relay joint. The converter/relay module attains different conformations changing the position of the lever arm and thus giving rise to the different states of the actomyosin cycle <ref>PMID: 11016966</ref>.

Revision as of 10:52, 17 May 2014

This Sandbox is Reserved from 01/04/2014, through 30/06/2014 for use in the course "510042. Protein structure, function and folding" taught by Prof Adrian Goldman, Tommi Kajander, Taru Meri, Konstantin Kogan and Juho Kellosalo at the University of Helsinki. This reservation includes Sandbox Reserved 923 through Sandbox Reserved 947.
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Scallop myosin head in its pre power stroke state

Introduction

Figure 1. The movement of myosin motor domain on actin filament
Figure 2. The contractile cycle of the myosin head

In the striated muscle the actin and myosin proteins form ordered basic units called sarcomeres. Muscle contraction is achieved by the mechanical sliding of myosin filament (thick filament) along the actin filament (thin filament), Fig. 1. The major constituent of the myosin filament is myosin, a motor protein responsible for converting chemical energy to mechanical movement. In the presence of Ca2+ and Mg2+, myosin is able to cyclically bind ATP and hydrolyse it to ADP + Pi , triggering subsequent myosin-actin detachment, reattachment and power stroke, so called contractile reaction (Fig.2).







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Introduction of the Myosin head S1

Myosin subfragment 1

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References