Search PubMedSearch

PubMed · 2833701

The ras oncogene. A structure and some function.

Abstract

The source did not provide an abstract. Follow the original record for more information.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

I S Sigal. 1988-04-07. The ras oncogene. A structure and some function.. https://doi.org/10.1038/332485a0

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

The regulators of G protein signaling (RGS) domains of RGS4, RGS10, and GAIP retain GTPase activating protein activity in vitro.

Regulators of G protein signaling (RGS) proteins accelerate GTP hydrolysis by Gi but not by Gs class alpha-subunits. All RGS proteins share a conserved 120-amino acid sequence termed the RGS domain. We have demonstrated that the RGS domains of RGS4, RGS10, and GAIP retain GTPase accelerating activity with the Gi class substrates Gialpha1, Goalpha, and Gzalpha in vitro. No regulatory activity of the RGS domains was detected for Gsalpha. Short deletions within the RGS domain of RGS4 destroyed GTPase activating protein activity and Gialpha1 substrate binding. Comparable protein-protein interactions between Gialpha1-GDP-AlF4- and the RGS domain or full-length RGS4 were detected using surface plasmon resonance.

GTP Phosphohydrolases

Structural and functional analysis of a mutant Ras protein that is insensitive to nitric oxide activation.

Ras proteins cycle between active, guanosine triphosphate (GTP)-bound and inactive, guanosine diphospate (GDP)-bound states to mediate signal transduction pathways that promote cell growth and differentiation. It is believed that the major physiological mechanism for Ras activation is via interaction with guanine-nucleotide exchange factors (GEFs). This interaction is highly regulated and results in elevated levels of Ras-GTP by facilitating GDP dissociation. Recently, a novel mechanism of Ras activation has been proposed, whereby nitric oxide (NO) modification of Cys-118, like GEF interaction, populates Ras in its biologically active form by stimulating GDP release. Here, we describe characterization of a variant of Ras, C118S, that is insensitive to NO modification. We have measured the GTPase activity and the GDP dissociation rate of the C118S mutant and found them to be similar to wild-type Ras. We have also analyzed the structure of this mutant using multidimensional heteronuclear NMR methods. Analysis of chemical shifts and distance restraints demonstrates that this mutation has not disrupted the structure of the protein. These results suggest that NO modification of Cys-118 may not alter Ras structure and that the basis of Ras activation by NO is destabilization of a crucial interaction between residues in the GDP-binding pocket and the nucleotide. We have also found that this mutant is a more stable form of Ras at concentrations required for NMR studies, probably due to the removal of a surface-accessible cysteine residue. This stable variant may facilitate structural and biochemical investigations of Ras and other guanine-nucleotide-binding proteins containing a cysteine at this position.

GTP Phosphohydrolases

Guanine nucleotide binding properties of Rac2 mutant proteins and analysis of the responsiveness to guanine nucleotide dissociation stimulator.

The Rac GTPases are currently being subjected to intensive study due to their involvement in a wide array of cellular phenomena. Many studies of Rac function have relied upon the use of relatively uncharacterized Rac dominant active, dominant negative, and effector domain mutants on the basis of the analogy to Ras structure. We have generated and purified such Rac2 mutants and characterized their guanine nucleotide binding properties in vitro. The Rac2 G12V and Q61L activating mutations were shown to hydrolyze bound GTP very slowly and were unresponsive to p190 Rac GTPase-activating protein. Distinct differences in the kinetics of nucleotide binding to individual mutant proteins were observed, accounting for the behavior of these proteins in biological assays. The structural features required for the responsiveness of Rac2 to the guanine nucleotide exchange protein smgGDS were examined. We show that guanine nucleotide exchange by smgGDS is dependent upon intact switch 1 and switch 2 regions in Rac2. Functional interactions between the switch 1 and switch 2 regions and the G12V mutation of Rac2 are described. These data form the basis for rational use of Rac mutants in biological studies.

GTP Phosphohydrolases