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Published on: May 11, 2018
Development of Noonan syndrome by deregulation of allosteric SOS autoactivation
Hope Gloria Umutesi1, Hanh My Hoang1, Hope Elizabeth Johnson1
1Department of Chemistry and Biochemistry, University of Texas, Arlington, Texas, USA.
Abstract:
Ras family proteins play an essential role in several cellular functions, including growth, differentiation, and survival. The mechanism of action of Ras mutants in Costello syndrome and cancers has been identified, but the contribution of Ras mutants to Noonan syndrome, a genetic disorder that prevents normal development in various parts of the body, is unknown. Son of Sevenless (SOS) is a Ras guanine nucleotide exchange factor. In response to Ras-activating cell signaling, SOS autoinhibition is released and is followed by accelerative allosteric feedback autoactivation. Here, using mutagenesis-based kinetic and pulldown analyses, we show that Noonan syndrome Ras mutants I24N, T50I, V152G, and D153V deregulate the autoactivation of SOS to populate their active form. This previously unknown process has been linked so far only to the development of Noonan syndrome. In contrast, other Noonan syndrome Ras mutants-V14I, T58I, and G60E-populate their active form by deregulation of the previously documented Ras GTPase activities. We propose a novel mechanism responsible for the deregulation of SOS autoactivation, where I24N, T50I, V152G, and D153V Ras mutants evade SOS autoinhibition. Consequently, they are capable of forming a complex with the SOS allosteric site, thus aberrantly promoting SOS autoactivation, resulting in the population of active Ras mutants in cells. The results of this study elucidate the molecular mechanism of the Ras mutant-mediated development of Noonan syndrome.
Insights
Ras mutants contribute to Noonan syndrome by deregulating Son of Sevenless (SOS) autoactivation. Specific Ras mutants evade SOS inhibition, leading to aberrant activation and disease development.
Area of Science:
- Molecular Biology
- Genetics
- Cell Signaling
Background:
- Ras proteins are crucial for cell growth, differentiation, and survival.
- The role of Ras mutations in Noonan syndrome remains unclear, unlike in Costello syndrome and cancers.
- Son of Sevenless (SOS) is a key regulator of Ras signaling via guanine nucleotide exchange.
Purpose of the Study:
- To investigate the molecular mechanisms by which Ras mutants contribute to Noonan syndrome.
- To elucidate the interaction between Noonan syndrome-associated Ras mutants and SOS.
Main Methods:
- Mutagenesis-based kinetic analyses
- Pulldown assays
- Biochemical characterization of Ras-SOS interactions
Main Results:
- Noonan syndrome Ras mutants I24N, T50I, V152G, and D153V were found to deregulate SOS autoactivation, promoting their active state.
- These specific mutants evade SOS autoinhibition by interacting with the SOS allosteric site, causing aberrant autoactivation.
- Other Noonan syndrome Ras mutants (V14I, T58I, G60E) activate via established Ras GTPase deregulation pathways.
Conclusions:
- A novel mechanism involving SOS autoactivation deregulation by specific Ras mutants is identified as a cause of Noonan syndrome.
- Ras mutants I24N, T50I, V152G, and D153V aberrantly promote SOS autoactivation, leading to active Ras accumulation.
- This study clarifies the molecular basis of Ras mutant involvement in Noonan syndrome pathogenesis.
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