Force generation by cytoskeletal filament end-tracking proteins

Biophys J. 2004 Oct;87(4):2838-54. doi: 10.1529/biophysj.104.045211.

Abstract

Force generation in several types of cell motility is driven by rapidly elongating cytoskeletal filaments that are persistently tethered at their polymerizing ends to propelled objects. These properties are not easily explained by force-generation models that require free (i.e., untethered) filament ends to fluctuate away from the surface for addition of new monomers. In contrast, filament end-tracking proteins that processively advance on filament ends can facilitate rapid elongation and substantial force generation by persistently tethered filaments. Such processive end-tracking proteins, termed here filament end-tracking motors, maintain possession of filament ends and, like other biomolecular motors, advance by means of 5'-nucleoside triphosphate (NTP) hydrolysis-driven affinity-modulated interactions. On-filament NTP hydrolysis/phosphate release yields substantially more energy than that required for driving steady-state assembly/disassembly of free filament ends (i.e., filament treadmilling), as revealed by an energy inventory on the treadmilling cycle. The kinetic and thermodynamic properties of two simple end-tracking mechanisms (an end-tracking stepping motor and a direct-transfer end-tracking motor) are analyzed to illustrate the advantages of an end-tracking motor over free filament-end elongation, and over passive end-trackers that operate without the benefit of NTP hydrolysis, in terms of generating force, facilitating rapid monomer addition, and maintaining tight possession of the filament ends. We describe an additional cofactor-assisted end-tracking motor to account for suggested roles of cofactors in the affinity-modulated interactions, such as profilin in actin-filament end-tracking motors and EB1 in microtubule end-tracking motors.

Publication types

  • Research Support, U.S. Gov't, Non-P.H.S.
  • Research Support, U.S. Gov't, P.H.S.

MeSH terms

  • Actins / chemistry
  • Actins / physiology*
  • Adenosine Diphosphate / physiology*
  • Adenosine Triphosphate / physiology*
  • Animals
  • Cell Movement / physiology*
  • Computer Simulation
  • Cytoskeleton / chemistry
  • Cytoskeleton / physiology*
  • Energy Transfer / physiology
  • Humans
  • Hydrolysis
  • Models, Biological*
  • Models, Chemical*
  • Molecular Motor Proteins / chemistry
  • Molecular Motor Proteins / physiology*
  • Stress, Mechanical

Substances

  • Actins
  • Molecular Motor Proteins
  • Adenosine Diphosphate
  • Adenosine Triphosphate