Literature DB >> 12582171

A specific domain of Gialpha required for the transactivation of Gialpha by tubulin is implicated in the organization of cellular microtubules.

Ning-Fang Chen1, Jiang-Zhou Yu, Nikolai P Skiba, Heidi E Hamm, Mark M Rasenick.   

Abstract

G(s)alpha, G(i)alpha(1), and G(q)alpha subunits bind tubulin with high affinity, whereas transducin (G(t)alpha) does not. The interaction between tubulin and Galpha, which also involves the direct transfer of GTP from tubulin to Galpha (transactivation), is not yet fully understood. This study, using chimeras of G(i)alpha and G(t)alpha, showed that the G(i)alpha (215-295) segment converted G(t)alpha to bind to tubulin and this chimera (chimera 1) could be transactivated by tubulin. Insertion of G(t)alpha (237-270) into chimera 1 to form chimera 2 resulted in a protein that, like G(t)alpha, did not bind tubulin. Thus, it was thought that the G(i)alpha (237-270) domain was essential to modulate the binding of G(i)alpha(1) to tubulin. Surprisingly, when domain (237-270) of G(i)alpha was replaced by G(t)alpha (237-270) to form chimera 3, the chimera bound to tubulin with a similar affinity (K(D) congruent with 120 nm) as wild-type G(i)alpha(1). However, even though chimera 3 displayed normal GTP binding, it was not transactivated by GTP-tubulin. Furthermore, when these chimeras were expressed in COS-1 cells, cellular processes in cells overexpressing G(i)alpha(1) or chimera 1 were more abundant and longer than those in native cells. Galpha was seen throughout the length of the process. Morphology of cells expressing chimera 2 was identical to controls. Consistent with the role of Chimera 3 as a "dominant negative" Galpha, cells transfected with chimera 3 had only few truncated processes. This study demonstrates that although G(i)alpha (237-270) is not obligatory for the binding of G(i)alpha to tubulin, it is crucial for the transactivation of Galpha by tubulin. These results also suggest that the transactivation of Galpha by tubulin may play an important role in modulating microtubule organization and cell morphology.

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Year:  2003        PMID: 12582171     DOI: 10.1074/jbc.M300841200

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  11 in total

1.  A molecular and structural mechanism for G protein-mediated microtubule destabilization.

Authors:  Rahul H Davé; Witchuda Saengsawang; Manu Lopus; Sonya Davé; Leslie Wilson; Mark M Rasenick
Journal:  J Biol Chem       Date:  2010-11-26       Impact factor: 5.157

2.  Cytosolic G{alpha}s acts as an intracellular messenger to increase microtubule dynamics and promote neurite outgrowth.

Authors:  Jiang-Zhou Yu; Rahul H Dave; John A Allen; Tulika Sarma; Mark M Rasenick
Journal:  J Biol Chem       Date:  2009-02-19       Impact factor: 5.157

Review 3.  Heterotrimeric G-proteins interact directly with cytoskeletal components to modify microtubule-dependent cellular processes.

Authors:  Rahul H Dave; Witchuda Saengsawang; Jiang-Zhou Yu; Robert Donati; Mark M Rasenick
Journal:  Neurosignals       Date:  2009-02-12

4.  The mating-specific Galpha interacts with a kinesin-14 and regulates pheromone-induced nuclear migration in budding yeast.

Authors:  Sofia V Zaichick; Metodi V Metodiev; Scott A Nelson; Oleksii Durbrovskyi; Edward Draper; John A Cooper; David E Stone
Journal:  Mol Biol Cell       Date:  2009-04-22       Impact factor: 4.138

5.  Structural model of a complex between the heterotrimeric G protein, Gsalpha, and tubulin.

Authors:  Brian T Layden; Witchuda Saengsawang; Robert J Donati; Shuo Yang; Debbie C Mulhearn; Michael E Johnson; Mark M Rasenick
Journal:  Biochim Biophys Acta       Date:  2008-03-04

6.  Activation of microtubule dynamics increases neuronal growth via the nerve growth factor (NGF)- and Gαs-mediated signaling pathways.

Authors:  Tulika Sarma; Athanasia Koutsouris; Jiang Zhu Yu; Aleksandar Krbanjevic; Thomas J Hope; Mark M Rasenick
Journal:  J Biol Chem       Date:  2015-02-17       Impact factor: 5.157

7.  In vitro interaction of tubulin with the photoreceptor cGMP phosphodiesterase gamma-subunit.

Authors:  Uyen B Chu; Jikui Song; Timur A Mavlyutov; Lian-Wang Guo
Journal:  Neurosci Lett       Date:  2010-07-22       Impact factor: 3.046

Review 8.  G-protein signaling: back to the future.

Authors:  C R McCudden; M D Hains; R J Kimple; D P Siderovski; F S Willard
Journal:  Cell Mol Life Sci       Date:  2005-03       Impact factor: 9.261

Review 9.  Submembraneous microtubule cytoskeleton: regulation of microtubule assembly by heterotrimeric Gproteins.

Authors:  Sukla Roychowdhury; Mark M Rasenick
Journal:  FEBS J       Date:  2008-08-27       Impact factor: 5.542

Review 10.  The GAPs, GEFs, and GDIs of heterotrimeric G-protein alpha subunits.

Authors:  David P Siderovski; Francis S Willard
Journal:  Int J Biol Sci       Date:  2005-04-01       Impact factor: 6.580

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