Literature DB >> 2995403

Kinetic analysis of F-actin depolymerization in the presence of platelet gelsolin and gelsolin-actin complexes.

J Bryan, L M Coluccio.   

Abstract

Platelet gelsolin (G), a 90,000-mol-wt protein, binds tightly to actin (A) and calcium at low ionic strength to form a 1:2:2 complex, GA2Ca2 (Bryan, J., and M. Kurth, 1984, J. Biol. Chem. 259:7480-7487). Chromatography of actin and gelsolin mixtures in EGTA-containing solutions isolates a stable binary complex, GA1Ca1 (Kurth, M., and J. Bryan, 1984, J. Biol. Chem. 259:7473-7479). The effects of platelet gelsolin and the binary gelsolin-actin complex on the depolymerization kinetics of rabbit skeletal muscle actin were studied by diluting pyrenyl F-actin into gelsolin or complex-containing buffers; a decrease in fluorescence represents disassembly of filaments. Dilution of F-actin to below the critical concentration required for filament assembly gave a biphasic depolymerization curve with both fast and slow components. Dilution into buffers containing gelsolin, as GCa2, increased the rate of depolymerization and gave a first order decay. The rate of decrease in fluorescence was found to be gelsolin concentration dependent. Electron microscopy of samples taken shortly after dilution into GCa2 showed a marked reduction in filament length consistent with filament severing and an increase in the number of ends. Conversely, occupancy of the EGTA-stable actin-binding site by an actin monomer eliminated the severing activity. Dilution of F-actin into the gelsolin-actin complex, either as GA1Ca1 or GA1Ca2, resulted in a decrease in the rate of depolymerization that was consistent with filament end capping. This result indicates that the EGTA-stable binding site is required and must be unoccupied for filament severing to occur. The effectiveness of gelsolin, GCa2, in causing filament depolymerization was dependent upon the ionic conditions: in KCI, actin filaments appeared to be more stable and less susceptible to gelsolin, whereas in Mg2+, actin filaments were more easily fragmented. Finally, a comparison of the number of kinetically active ends generated when filaments were diluted into gelsolin versus the number formed when gelsolin can function as a nucleation site suggests that gelsolin may sever more than once. The data are consistent with a mechanism where gelsolin, with both actin-binding sites unoccupied, can sever but not cap F-actin. Occupancy of the EGTA-stable binding site yields a gelsolin-actin complex that can no longer sever filaments, but can cap filament ends.

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Year:  1985        PMID: 2995403      PMCID: PMC2113914          DOI: 10.1083/jcb.101.4.1236

Source DB:  PubMed          Journal:  J Cell Biol        ISSN: 0021-9525            Impact factor:   10.539


  40 in total

1.  Head to tail polymerization of actin.

Authors:  A Wegner
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2.  A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding.

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4.  Villin: the major microfilament-associated protein of the intestinal microvillus.

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5.  Partial purification and characterization of an actin depolymerizing factor from brain.

Authors:  J R Bamburg; H E Harris; A G Weeds
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6.  Fragmin: a calcium ion sensitive regulatory factor on the formation of actin filaments.

Authors:  T Hasegawa; S Takahashi; H Hayashi; S Hatano
Journal:  Biochemistry       Date:  1980-06-10       Impact factor: 3.162

7.  Fluorimetry study of N-(1-pyrenyl)iodoacetamide-labelled F-actin. Local structural change of actin protomer both on polymerization and on binding of heavy meromyosin.

Authors:  T Kouyama; K Mihashi
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8.  Control of cytoplasmic actin gel-sol transformation by gelsolin, a calcium-dependent regulatory protein.

Authors:  H L Yin; T P Stossel
Journal:  Nature       Date:  1979-10-18       Impact factor: 49.962

9.  An actin-destabilizing factor is present in human plasma.

Authors:  C Chaponnier; R Borgia; E Rungger-Brändle; R Weil; G Gabbiani
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10.  Regulation of microvillus structure: calcium-dependent solation and cross-linking of actin filaments in the microvilli of intestinal epithelial cells.

Authors:  M S Mooseker; T A Graves; K A Wharton; N Falco; C L Howe
Journal:  J Cell Biol       Date:  1980-12       Impact factor: 10.539

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  37 in total

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7.  Isolation and characterization of gelsolin from cultured BHK cells.

Authors:  A J Edgar
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9.  Domain structure in actin-binding proteins: expression and functional characterization of truncated severin.

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10.  A direct interaction with calponin inhibits the actin-nucleating activity of gelsolin.

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