Literature DB >> 1627561

Interaction of thymosin beta 4 with muscle and platelet actin: implications for actin sequestration in resting platelets.

A Weber1, V T Nachmias, C R Pennise, M Pring, D Safer.   

Abstract

Quantitative measurements of the interactions of T beta 4 with muscle actin suggest that its only physiological role is monomer sequestration. T beta 4 forms a 1:1 complex with monomeric actin under physiological salt conditions. Its Kd for actin is not affected by calcium. T beta 4 binds only to actin monomers and not to filament ends or alongside the filament. T beta 4-actin complexes do not elongate actin filaments at either the barbed or the pointed end, and, unlike actobindin, T beta 4 does not specifically suppress the nucleation of polymerization. We assessed the fraction of monomeric actin that can be sequestered by T beta 4 in resting platelets. This was done on the basis of (a) its Kd of 0.4-0.7 microM for platelet actin, which had been prepared by a newly devised simpler method, and (b) the values for the concentrations of monomeric actin and of T beta 4 which we measured as 280 and 560 microM, respectively. Using the higher Kd value of 0.7 microM, the T beta 4-complexed actin is calculated to be between 70 and 240 microM, depending on the steady-state free G-actin concentration. This may vary from 0.1 to 0.5 microM, the critical concentrations for uncapped and for fully barbed-end-capped actin filaments. If the Kd in the platelet is the same as in vitro, most of the sequestered actin would be bound to T beta 4 if more than 95% of the actin filaments are capped at their barbed ends in resting platelets.

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Year:  1992        PMID: 1627561     DOI: 10.1021/bi00142a002

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  57 in total

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2.  Thymosin-beta(4) changes the conformation and dynamics of actin monomers.

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Review 4.  Actin binding proteins that change extent and rate of actin monomer-polymer distribution by different mechanisms.

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5.  Design of active transport must be highly intricate: a possible role of myosin and Ena/VASP for G-actin transport in filopodia.

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Review 6.  Toward the structure of dynamic membrane-anchored actin networks: an approach using cryo-electron tomography.

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7.  Distribution and biological activity ofβ-thymosins.

Authors:  M Mihelić; W Voelter
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8.  Mechanism of Cdc42-induced actin polymerization in neutrophil extracts.

Authors:  S H Zigmond; M Joyce; C Yang; K Brown; M Huang; M Pring
Journal:  J Cell Biol       Date:  1998-08-24       Impact factor: 10.539

9.  Structural basis of actin sequestration by thymosin-beta4: implications for WH2 proteins.

Authors:  Edward Irobi; Adeleke H Aguda; Mårten Larsson; Christophe Guerin; Helen L Yin; Leslie D Burtnick; Laurent Blanchoin; Robert C Robinson
Journal:  EMBO J       Date:  2004-08-26       Impact factor: 11.598

Review 10.  The actin gene family: function follows isoform.

Authors:  Benjamin J Perrin; James M Ervasti
Journal:  Cytoskeleton (Hoboken)       Date:  2010-10
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