Self-organization of actin networks by a monomeric myosin
Dario Saczko-Brack1,2, Ewa Warchol1,2, Benoit Rogez1,2
1Department of Cellular Physiology, Ludwig-Maximilians-Universität München, 80336 Munich, Germany.
Insights
Myosin-IXa forms highly ordered actin-myosin lattices crucial for cell migration. A unique loop insert in myosin-IXa regulates these structures, potentially enabling force sensing in the cytoskeleton.
Area of Science:
- Cellular and Molecular Biology
- Biophysics
- Cytoskeleton Dynamics
Background:
- Actomyosin networks are central to cellular motility, polarization, and collective migration.
- Myosin-IXa plays a critical role in these fundamental cellular processes.
- Understanding the structural organization of actomyosin is key to deciphering cell movement.
Purpose of the Study:
- To elucidate the structural organization of actin bundles assembled by myosin-IXa.
- To investigate the role of myosin-IXa's unique structural features in actomyosin network formation.
- To explore the functional implications of these organized lattices in cellular processes.
Main Methods:
- Total internal reflection fluorescence microscopy to visualize actin bundles.
- Electron microscopy for high-resolution structural analysis of actomyosin lattices.
- Single-particle image processing and cross-correlation of modeled actomyosin structures.
Main Results:
- Myosin-IXa assembles highly ordered actin lattices with parallel actin polarity.
- Myosin-IXa motor domains form cross-links at a precise 36 nm repeat distance.
- A large insert in loop 2 of myosin-IXa binds calmodulin, creating dual actin-binding sites that constrain lattice formation.
Conclusions:
- The unique structural features of myosin-IXa dictate the formation of specific actin lattices.
- These lattices may act as platforms for localized Rho-GTPase-activating protein (RhoGAP) activity.
- The organized actomyosin structures could mediate force-sensing mechanisms in cell migration and polarization.
Abstract:
The organization of actomyosin networks lies at the center of many types of cellular motility, including cell polarization and collective cell migration during development and morphogenesis. Myosin-IXa is critically involved in these processes. Using total internal reflection fluorescence microscopy, we resolved actin bundles assembled by myosin-IXa. Electron microscopic data revealed that the bundles consisted of highly ordered lattices with parallel actin polarity. The myosin-IXa motor domains aligned across the network, forming cross-links at a repeat distance of precisely 36 nm, matching the helical repeat of actin. Single-particle image processing resolved three distinct conformations of myosin-IXa in the absence of nucleotide. Using cross-correlation of a modeled actomyosin crystal structure, we identified sites of additional mass, which can only be accounted for by the large insert in loop 2 exclusively found in the motor domain of class IX myosins. We show that the large insert in loop 2 binds calmodulin and creates two coordinated actin-binding sites that constrain the actomyosin interactions generating the actin lattices. The actin lattices introduce orientated tracks at specific sites in the cell, which might install platforms allowing Rho-GTPase-activating protein (RhoGAP) activity to be focused at a definite locus. In addition, the lattices might introduce a myosin-related, force-sensing mechanism into the cytoskeleton in cell polarization and collective cell migration.
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