Home LiteratureArticle Details
PMID: 7733893 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Long-range conformational effects of proteolytic removal of the last three residues of actin.

The Biochemical journal ·Vol. 307 ( Pt 2) ·1995-04-15 ·Pages 527-34

Strzelecka-Gołaszewska H, Mossakowska M, Woźniak A, Moraczewska J, Nakayama H

Abstract

Truncated derivatives of actin devoid of either the last two (actin-2C) or three residues (actin-3C) were used to study the role of the C-terminal segment in the polymerization of actin. The monomer critical concentration and polymerization rate increased in the order: intact actin < actin-2C < actin-3C. Conversely, the rate of hydrolysis of actin-bound ATP during spontaneous polymerization of Mg-actin decreased in the same order, so that, for actin-3C, the ATP hydrolysis significantly lagged behind the polymer growth. Probing the conformation of the nucleotide site in the monomer form by measuring the rates of the bound nucleotide exchange revealed a similar change upon removal of either the two or three residues from the C-terminus. The C-terminal truncation also resulted in a slight decrease in the rate of subtilisin cleavage of monomeric actin within the DNAse-I binding loop, whereas in F-actin subunits the susceptibility of this and of another site within this loop, specifically cleaved by a proteinase from Escherichia coli A2 strain, gradually increased upon sequential removal of the two and of the third residue from the C-terminus. From these and other observations made in this work it has been concluded that perturbation of the C-terminal structure in monomeric actin is transmitted to the cleft, where nucleotide and bivalent cation are bound, and to the DNAse-I binding loop on the top of subdomain 2. Further changes at these sites, observed on the polymer level, seem to result from elimination of the intersubunit contact between the C-terminal residues and the DNAse-I binding loop. It is suggested that formation of this contact plays an essential role in regulating the hydrolysis of actin-bound ATP associated with the polymerization process.

MeSH Terms
Actins/chemistry,metabolism Animals Biopolymers Hydrolysis Muscle, Skeletal/chemistry Nucleotides/chemistry Protein Conformation Rabbits
Chemicals
Actins Biopolymers Nucleotides
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Strzelecka-Gołaszewska H
Department of Muscle Biochemistry, Nencki Institute of Experimental Biology, Warsaw, Poland.
Mossakowska M
Woźniak A
Moraczewska J
Nakayama H
References (46)
46 references, click to expand
  1. Study of actin and its interactions with heavy meromyosin and the regulatory proteins by the pulse fluorimetry in polarized light of a fluorescent probe attached to an actin cysteine.
    Eur J Biochem. 1978 Aug 1;88(2):411-9 PMID: 357148
  2. ATP hydrolysis by the gelsolin-actin complex and at the pointed ends of gelsolin-capped filaments.
    J Biol Chem. 1986 Feb 5;261(4):1588-93 PMID: 3003075
  3. Effect of phalloidin on actin proteolysis as measured by viscometry and fluorimetry.
    Can J Biochem. 1979 Jan;57(1):49-55 PMID: 427629
  4. A fluorescent probe for conformational changes in skeletal muscle G-actin.
    J Biol Chem. 1980 Oct 10;255(19):8991-3 PMID: 6893329
  5. Acanthamoeba profilin interacts with G-actin to increase the rate of exchange of actin-bound adenosine 5'-triphosphate.
    Biochemistry. 1980 Nov 11;19(23):5359-62 PMID: 6893804
  6. Exchange of 1,N6-etheno-ATP with actin-bound nucleotides as a tool for studying the steady-state exchange of subunits in F-actin solutions.
    Proc Natl Acad Sci U S A. 1981 Sep;78(9):5503-7 PMID: 6946487
  7. Requirement of divalent cations for fast exchange of actin monomers and actin filament subunits.
    J Mol Biol. 1981 Dec 15;153(3):681-93 PMID: 7338922
  8. On the mechanism of actin monomer-polymer subunit exchange at steady state.
    J Biol Chem. 1983 Apr 25;258(8):5013-20 PMID: 6833289
  9. Differences in G-actin containing bound ATP or ADP: the Mg2+-induced conformational change requires ATP.
    Biochemistry. 1985 Jul 16;24(15):4192-6 PMID: 4052388
  10. Cleavage of structural proteins during the assembly of the head of bacteriophage T4.
    Nature. 1970 Aug 15;227(5259):680-5 PMID: 5432063
  11. The regulation of rabbit skeletal muscle contraction. I. Biochemical studies of the interaction of the tropomyosin-troponin complex with actin and the proteolytic fragments of myosin.
    J Biol Chem. 1971 Aug 10;246(15):4866-71 PMID: 4254541
  12. Opposite effects of cofilin and profilin from porcine brain on rate of exchange of actin-bound adenosine 5'-triphosphate.
    Biochemistry. 1985 Feb 26;24(5):1160-4 PMID: 4096896
  13. High affinity binding of divalent cation to actin monomer is much stronger than previously reported.
    Biochem Biophys Res Commun. 1986 Mar 13;135(2):607-14 PMID: 3964262
  14. The initial phosphate burst in ATP hydrolysis by myosin and subfragment-1 as studied by a modified malachite green method for determination of inorganic phosphate.
    J Biochem. 1986 May;99(5):1465-72 PMID: 2940237
  15. The mechanisms of ATP hydrolysis accompanying the polymerization of Mg-actin and Ca-actin.
    J Biol Chem. 1987 Mar 5;262(7):3052-9 PMID: 3818633
  16. Subtilisin-cleaved actin: polymerization and interaction with myosin subfragment 1.
    Biochemistry. 1989 Jul 11;28(14):5889-95 PMID: 2673352
  17. Evidence for the direct interaction between tightly bound divalent metal ion and ATP on actin. Binding of the lambda isomers of beta gamma-bidentate CrATP to actin.
    J Biol Chem. 1989 Dec 15;264(35):20871-80 PMID: 2556388
  18. Glutathionyl(cysteine-374) actin forms filaments of low mechanical stability.
    Biochim Biophys Acta. 1990 Jan 19;1037(1):86-91 PMID: 2136799
  19. The enhanced ATPase activity of glutathione-substituted actin provides a quantitative approach to filament stabilization.
    J Biol Chem. 1990 Feb 25;265(6):3017-21 PMID: 2137454
  20. Atomic structure of the actin:DNase I complex.
    Nature. 1990 Sep 6;347(6288):37-44 PMID: 2395459
  21. Atomic model of the actin filament.
    Nature. 1990 Sep 6;347(6288):44-9 PMID: 2395461
  22. Physico-chemical properties of actin cleaved with bacterial protease from E. coli A2 strain.
    FEBS Lett. 1991 Feb 11;279(1):49-51 PMID: 1995340
  23. Actin polymerization and ATP hydrolysis.
    Adv Biophys. 1990;26:51-73 PMID: 2082729
  24. Interference with myosin subfragment-1 binding by site-directed mutagenesis of actin.
    Eur J Biochem. 1991 Aug 15;200(1):35-41 PMID: 1879430
  25. Removing the two C-terminal residues of actin affects the filament structure.
    Arch Biochem Biophys. 1992 Feb 14;293(1):110-6 PMID: 1731627
  26. Tightly-bound divalent cation of actin.
    J Muscle Res Cell Motil. 1992 Jun;13(3):272-84 PMID: 1527214
  27. The binding of mutant actins to profilin, ATP and DNase I.
    Eur J Biochem. 1992 Oct 1;209(1):171-9 PMID: 1396697
  28. The control of actin nucleotide exchange by thymosin beta 4 and profilin. A potential regulatory mechanism for actin polymerization in cells.
    Mol Biol Cell. 1992 Sep;3(9):1015-24 PMID: 1330091
  29. Structural basis for the destabilization of F-actin by phosphate release following ATP hydrolysis.
    J Mol Biol. 1992 Oct 20;227(4):1043-53 PMID: 1433285
  30. Proteolytic removal of three C-terminal residues of actin alters the monomer-monomer interactions.
    Biochem J. 1993 Feb 1;289 ( Pt 3):897-902 PMID: 8435084
  31. Localization of the tightly bound divalent-cation-dependent and nucleotide-dependent conformation changes in G-actin using limited proteolytic digestion.
    Eur J Biochem. 1993 Feb 1;211(3):731-42 PMID: 8436131
  32. Cooperative effects on filament stability in actin modified at the C-terminus by substitution or truncation.
    Eur J Biochem. 1993 Feb 15;212(1):247-53 PMID: 8444159
  33. Nucleotide binding to actin. Cation dependence of nucleotide dissociation and exchange rates.
    J Biol Chem. 1993 Apr 25;268(12):8683-91 PMID: 8473312
  34. Modulation of the interaction between G-actin and thymosin beta 4 by the ATP/ADP ratio: possible implication in the regulation of actin dynamics.
    Proc Natl Acad Sci U S A. 1993 Jun 1;90(11):5034-8 PMID: 8506348
  35. Myosin subfragment 1 inhibits dissociation of nucleotide and calcium from G-actin.
    J Biol Chem. 1993 Jun 25;268(18):13261-6 PMID: 8514764
  36. Nucleotide exchange and rheometric studies with F-actin prepared from ATP- or ADP-monomeric actin.
    Biophys J. 1993 May;64(5):1559-66 PMID: 8324191
  37. Mutations in beta-actin: influence on polymer formation and on interactions with myosin and profilin.
    FEBS Lett. 1993 Aug 23;329(1-2):163-70 PMID: 8354391
  38. Use of bimanyl actin derivative (TMB-actin) for studying complexation of beta-thymosins. Inhibition of actin polymerization by thymosin beta 9.
    FEBS Lett. 1993 Aug 23;329(1-2):9-12 PMID: 8354414
  39. Structure of gelsolin segment 1-actin complex and the mechanism of filament severing.
    Nature. 1993 Aug 19;364(6439):685-92 PMID: 8395021
  40. The structure of crystalline profilin-beta-actin.
    Nature. 1993 Oct 28;365(6449):810-6 PMID: 8413665
  41. Refinement of the F-actin model against X-ray fiber diffraction data by the use of a directed mutation algorithm.
    J Mol Biol. 1993 Dec 5;234(3):826-36 PMID: 8254675
  42. Dynamic properties of actin. Structural changes induced by beryllium fluoride.
    J Biol Chem. 1994 Apr 22;269(16):11852-8 PMID: 8163484
  43. Interaction of actin water epsilon-ATP.
    FEBS Lett. 1974 Sep 15;46(1):17-9 PMID: 4423560
  44. The measurement of actin concentration in solution: a comparison of methods.
    Anal Biochem. 1974 Nov;62(1):66-74 PMID: 4473917
  45. ATP binding to a protease-resistant core of actin.
    Proc Natl Acad Sci U S A. 1976 Aug;73(8):2742-6 PMID: 134374
  46. Selective assay of monomeric and filamentous actin in cell extracts, using inhibition of deoxyribonuclease I.
    Cell. 1978 Nov;15(3):935-43 PMID: 728995
Article Info
Journal
The Biochemical journal
Abbr.
Biochem J
ISSN
0264-6021
Published
1995-04-15
Pages
527-34
Language
English
Region
England
NLM ID
2984726R
PMCID
PMC1136680
Subset
IM
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: [email protected]