scholarly journals Structural basis for the slow dynamics of the actin filament pointed end

2011 ◽  
Vol 30 (7) ◽  
pp. 1230-1237 ◽  
Author(s):  
Akihiro Narita ◽  
Toshiro Oda ◽  
Yuichiro Maéda
2002 ◽  
Vol 83 (5) ◽  
pp. 2716-2725 ◽  
Author(s):  
Inna Krieger ◽  
Alla Kostyukova ◽  
Atsuko Yamashita ◽  
Yasushi Nitanai ◽  
Yuichiro Maéda

2014 ◽  
Author(s):  
Alvaro H. Crevenna ◽  
Marcelino Arciniega ◽  
Aurelie Dupont ◽  
Kaja Kowalska ◽  
Oliver Lange ◽  
...  

Actin filament dynamics govern many key physiological processes from cell motility to tissue morphogenesis. A central feature of actin dynamics is the capacity of the filament to polymerize and depolymerize at its ends in response to cellular conditions. It is currently thought that filament kinetics can be described by a single rate constant for each end. Here, using direct visualization of single actin filament elongation, we show that actin polymerization kinetics at both filament ends are strongly influenced by proteins that bind to the lateral filament surface. We also show that the less dynamic end, called the pointed-end, has a non-elongating state that dominates the observed filament kinetic asymmetry. Estimates of filament flexibility and Brownian dynamics simulations suggest that the observed kinetic diversity arises from structural alteration. Tuning filament kinetics by exploiting the natural malleability of the actin filament structure may be a ubiquitous mechanism to generate the rich variety of observed cellular actin dynamics.


2018 ◽  
Vol 115 (6) ◽  
pp. 1292-1297 ◽  
Author(s):  
Ahmet Mentes ◽  
Andrew Huehn ◽  
Xueqi Liu ◽  
Adam Zwolak ◽  
Roberto Dominguez ◽  
...  

Myosins adjust their power outputs in response to mechanical loads in an isoform-dependent manner, resulting in their ability to dynamically adapt to a range of motile challenges. Here, we reveal the structural basis for force-sensing based on near-atomic resolution structures of one rigor and two ADP-bound states of myosin-IB (myo1b) bound to actin, determined by cryo-electron microscopy. The two ADP-bound states are separated by a 25° rotation of the lever. The lever of the first ADP state is rotated toward the pointed end of the actin filament and forms a previously unidentified interface with the N-terminal subdomain, which constitutes the upper half of the nucleotide-binding cleft. This pointed-end orientation of the lever blocks ADP release by preventing the N-terminal subdomain from the pivoting required to open the nucleotide binding site, thus revealing how myo1b is inhibited by mechanical loads that restrain lever rotation. The lever of the second ADP state adopts a rigor-like orientation, stabilized by class-specific elements of myo1b. We identify a role for this conformation as an intermediate in the ADP release pathway. Moreover, comparison of our structures with other myosins reveals structural diversity in the actomyosin binding site, and we reveal the high-resolution structure of actin-bound phalloidin, a potent stabilizer of filamentous actin. These results provide a framework to understand the spectrum of force-sensing capacities among the myosin superfamily.


2019 ◽  
Vol 10 (1) ◽  
Author(s):  
Tommi Kotila ◽  
Hugo Wioland ◽  
Giray Enkavi ◽  
Konstantin Kogan ◽  
Ilpo Vattulainen ◽  
...  

AbstractThe ability of cells to generate forces through actin filament turnover was an early adaptation in evolution. While much is known about how actin filaments grow, mechanisms of their disassembly are incompletely understood. The best-characterized actin disassembly factors are the cofilin family proteins, which increase cytoskeletal dynamics by severing actin filaments. However, the mechanism by which severed actin filaments are recycled back to monomeric form has remained enigmatic. We report that cyclase-associated-protein (CAP) works in synergy with cofilin to accelerate actin filament depolymerization by nearly 100-fold. Structural work uncovers the molecular mechanism by which CAP interacts with actin filament pointed end to destabilize the interface between terminal actin subunits, and subsequently recycles the newly-depolymerized actin monomer for the next round of filament assembly. These findings establish CAP as a molecular machine promoting rapid actin filament depolymerization and monomer recycling, and explain why CAP is critical for actin-dependent processes in all eukaryotes.


Nature ◽  
1995 ◽  
Vol 377 (6544) ◽  
pp. 83-86 ◽  
Author(s):  
Carol C. Gregorio ◽  
Annemarie Weber ◽  
Meredith Bondad ◽  
Cynthia R. Pennise ◽  
Velia M. Fowler

2014 ◽  
Vol 111 (43) ◽  
pp. E4596-E4605 ◽  
Author(s):  
B. Xue ◽  
C. Leyrat ◽  
J. M. Grimes ◽  
R. C. Robinson

Nature ◽  
2005 ◽  
Vol 433 (7025) ◽  
pp. 488-494 ◽  
Author(s):  
Takanori Otomo ◽  
Diana R. Tomchick ◽  
Chinatsu Otomo ◽  
Sanjay C. Panchal ◽  
Mischa Machius ◽  
...  

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