Literature DB >> 7733893

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

H Strzelecka-Gołaszewska1, M Mossakowska, A Woźniak, J Moraczewska, H Nakayama.   

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.

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Year:  1995        PMID: 7733893      PMCID: PMC1136680          DOI: 10.1042/bj3070527

Source DB:  PubMed          Journal:  Biochem J        ISSN: 0264-6021            Impact factor:   3.857


  46 in total

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Authors:  K Tawada; P Wahl; J C Auchet
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3.  Cleavage of structural proteins during the assembly of the head of bacteriophage T4.

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4.  On the mechanism of actin monomer-polymer subunit exchange at steady state.

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5.  Effect of phalloidin on actin proteolysis as measured by viscometry and fluorimetry.

Authors:  J M Pollender; J Gruda
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6.  Requirement of divalent cations for fast exchange of actin monomers and actin filament subunits.

Authors:  A Wegner; J M Neuhaus
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7.  Differences in G-actin containing bound ATP or ADP: the Mg2+-induced conformational change requires ATP.

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9.  A fluorescent probe for conformational changes in skeletal muscle G-actin.

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10.  Acanthamoeba profilin interacts with G-actin to increase the rate of exchange of actin-bound adenosine 5'-triphosphate.

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  21 in total

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10.  Functional effects of nemaline myopathy mutations on human skeletal alpha-actin.

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