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Kinetics of actin monomer exchange at the slow growing ends of actin filaments and their relation to the elongation of filaments shortened by gelsolin

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Summary

The kinetics of actin monomer exchange with the slow growing pointed ends of actin filaments have been determined by measuring rates of monomer addition to or loss from filaments with their fast-growing barbed ends blocked by the protein gelsolin. Direct measurements of filament length by electron microscopy confirmed that each gelsolin acts as a nucleus for an actin filament. The rate constants ascertained arek =0.03s−1;k +=0.06 μm −1 s−1 at 23° C andk =0.11 s−1;k +=0.09 μm −1s−1 at 37° C. They are approximately independent of pH from 7.0 to 8.0 at both temperatures. These rates are far slower than those reported on the basis of some electron microscopic studies of filaments assembled on to actin bundles. The rate constants also predict a higher critical monomer concentration for the pointed end at 37° C than at room temperature, consistent with direct measurements of this quantity. The relative slowness of the monomer exchange at the pointed end suggests that actin filaments with blocked barbed ends are relatively stable. The rate of redistribution of actin monomers from filaments stabilized at their barbed ends by the gelsolin-calcium complex to longer filaments was measured following removal of Ca2+, which decreases the capacity of gelsolin to nucleate filaments. The elongation occurs at a rate consistent with the measured rates of monomer exchange and is quantitatively described by Hill's model for filament elongation by random exchange of monomers from one end.

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References

  • Bonder, E. M., Fishkind, D. J. &Mooseker, M. S. (1983) Direct measurements of critical concentrations and assembly rate constants at the two ends of an actin filament.Cell 34, 491–501.

    Google Scholar 

  • Bradford, M. M. (1976) A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding.Analyt. Biochem. 72, 248–54.

    Google Scholar 

  • Carlier, M. F., Pantaloni, D. &Korn, E. D. (1984) Steady state length distribution of F-actin under controlled fragmentation and mechanism of length redistribution following fragmentation.J. biol. Chem. 259, 9987–91.

    Google Scholar 

  • Chaponnier, C. &Yin, H. L. (1984) Monoclonal antibodies against cytoplasmic and plasma gelsolin.J. Cell Biol. 99, 307a.

    Google Scholar 

  • Coluccio, L. M. &Tilney, L. G. (1983) Under physiological conditions actin disassembles slowly from the nonpreferred end of an actin filament.J. Cell Biol. 97, 1629–34.

    Google Scholar 

  • Cooper, J. A. &Pollard, T. D. (1985) Effect of capping protein on the kinetics of actin polymerization.Biochemistry 24, 793–9.

    Google Scholar 

  • Cooper, J. A., Walker, S. B. &Pollard, T. D. (1983) Pyrene actin: documentation of the validity of a sensitive assay for actin polymerization.J. Musc. Res. Cell Motility 4, 253–62.

    Google Scholar 

  • Coue, M. &Korn, E. D. (1985) Interaction of plasma gelsolin with G-actin and F-actin in the presence and absence of calcium ions.J. biol. Chem. 260, 15033–41.

    Google Scholar 

  • Doi, Y. &Frieden, C. (1984) Actin polymerization. The effect of brevin on filament size and rate of polymerization.J. biol. Chem. 259, 11868–75.

    Google Scholar 

  • Frieden, C. &Patane, K. (1985) Differences in G-actin containing bound ATP or ADP: the Mg2+-induced conformational change requires ATP.Biochemistry 24, 4192–6.

    Google Scholar 

  • Hanson, J. &Lowy, J. (1963) The structure of F-actin and of actin filaments isolated from muscle.J. molec. Biol. 6, 46–60.

    Google Scholar 

  • Harris, H. E. &Weeds, A. G. (1983) Plasma actin depolymerizing factor has both calcium dependent and calcium independent effects on actin.Biochemistry 22, 2728–41.

    Google Scholar 

  • Hill, T. L. (1984) Introductory analysis of the GTP-cap phase-change kinetics at the end of a microtubule.Proc. natn. Acad. Sci. U.S.A. 81, 6728–32.

    Google Scholar 

  • Huxley, H. E. (1963) Electron microscope studies on the structure of natural and synthetic protein filaments from striated muscle.J. molec. Biol. 7, 281–308.

    Google Scholar 

  • Janmey, P. A., Chaponnier, C., Lind, S. E., Zaner, K. S., Stossel, T. P. &Yin, H. L. (1985) Interactions of gelsolin and gelsolin actin complexes with actin. Effects of calcium on actin nucleation, filament severing and end blocking.Biochemistry 24, 3714–23.

    Google Scholar 

  • Janmey, P. A., Peetermans, J., Zaner, K. S., Stossel, T. P. &Tanaka, T. (1986) Structure and mobility of actin filaments as measured by quasielastic light scattering, viscometry, and electron microscopy.J. biol. Chem. 261, 8357–62.

    Google Scholar 

  • Korn, E. D. (1982) Actin polymerization and its regulation by proteins from nonmuscle cells.Physiol. Rev. 62, 672–737.

    Google Scholar 

  • Kouyama, T. &Mihashi, K. (1981) Fluorimetry study of N-(1-pyrenyl)iodoacetamide-labelled F-actin.Eur. J. Biochem. 114, 33–8.

    Google Scholar 

  • Lal, A. A., Korn, E. D. &Brenner, S. L. (1984) Rate constants for actin polymerization in ATP determined using cross-linked actin trimers as nuclei.J. biol. Chem. 259, 8794–800.

    Google Scholar 

  • Lees, A., Haddad, J. G. &Lin, S. (1984) Brevin and vitamin D binding protein: comparison of the effects of two serum proteins on actin assembly and disassembly.Biochemistry 23, 3038–47.

    Google Scholar 

  • Neuhaus, J. M., Wanger, M., Keisler, T. &Wegner, A. (1983) Treadmilling of actin.J. Musc. Res. Cell Motility 4, 507–27.

    Google Scholar 

  • Niederman, R., Amrein, P. C. &Hartwig, J. (1983) Three-dimensional structure of actin filaments and of an actin gel made with actin-binding protein.J. Cell Biol. 96, 1400–13.

    Google Scholar 

  • Pollard, T. D. &Mooseker, M. S. (1981) Direct measurement of actin polymerization rate constants by electron microscopy of actin filaments nucleated by isolated microvillus cores.J. Cell Biol. 88, 654–9.

    Google Scholar 

  • Spudich, J. A. &Watt, S. (1971) The regulation of rabbit skeletal muscle contraction. I. Biochemical studies of the interaction of tropomyosin-troponin with actin and the proteolytic fragments of myosin.J. biol. Chem. 245, 4866–71.

    Google Scholar 

  • Stossel, T. P., Chaponnier, C., Ezzell, R. M., Hartwig, J. H., Janmey, P. A., Kwiatkowski, D. J., Lind, S. E., Smith, D. B., Southwick, F. S., Yin, H. L. &Zaner, K. S. (1985) Nonmuscle actin-binding proteins. InAnnual Review of Cell Biology (edited byPalade, G. E., Alberts, B. M. andSpudich, J. A.)., pp. 353–402. Palo Alto: Annual Reviews.

    Google Scholar 

  • Walsh, T. P., Weber, A., Davis, K., Bonder, E. &Mooseker, M. (1984a) Calcium dependence of villin-induced actin depolymerization.Biochemistry 23, 6099–102.

    Google Scholar 

  • Walsh, T. P., Weber, A., Higgins, J., Bonder, E. M., &Mooseker, M. S. (1984b) Effect of villin on the kinetics of actin polymerization.Biochemistry 23, 2613–21.

    Google Scholar 

  • Weeds, A., (1982) Actin-binding proteins — regulators of cell architecture and motility.Nature, Lond. 296, 811–6.

    Google Scholar 

  • Wegner, A. (1985) Subtleties of actin assembly.Nature, Lond. 313, 97–8.

    Google Scholar 

  • Wegner, A. &Isenberg, G. (1983) 12-fold difference between the critical monomer concentrations of the two ends of actin filaments in physiologic salt concentrations.Proc. natn. Acad. Sci. U.S.A. 80, 4922–5.

    Google Scholar 

  • Yin, H. L., Kwiatkowski, D. J., Mole, J. E. &Cole, F. S. (1984) Structure and biosynthesis of cytoplasmic and secreted variants of gelsolin.)1980) Ca2+ control of actin gelation.J. biol. Chem. 255, 9494–500.

    Google Scholar 

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Janmey, P.A., Stossel, T.P. Kinetics of actin monomer exchange at the slow growing ends of actin filaments and their relation to the elongation of filaments shortened by gelsolin. J Muscle Res Cell Motil 7, 446–454 (1986). https://doi.org/10.1007/BF01753587

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  • DOI: https://doi.org/10.1007/BF01753587

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