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Mutations in G protein β subunits promote transformation and kinase inhibitor resistance
Akinori Yoda1, Guillaume Adelmant2, Jerome Tamburini1
1Department of Medical Oncology, Dana-Farber Cancer Institute, Harvard Medical School, Boston, Massachusetts, USA.
Abstract:
Activating mutations in genes encoding G protein α (Gα) subunits occur in 4-5% of all human cancers, but oncogenic alterations in Gβ subunits have not been defined. Here we demonstrate that recurrent mutations in the Gβ proteins GNB1 and GNB2 confer cytokine-independent growth and activate canonical G protein signaling. Multiple mutations in GNB1 affect the protein interface that binds Gα subunits as well as downstream effectors and disrupt Gα interactions with the Gβγ dimer. Different mutations in Gβ proteins clustered partly on the basis of lineage; for example, all 11 GNB1 K57 mutations were in myeloid neoplasms, and seven of eight GNB1 I80 mutations were in B cell neoplasms. Expression of patient-derived GNB1 variants in Cdkn2a-deficient mouse bone marrow followed by transplantation resulted in either myeloid or B cell malignancies. In vivo treatment with the dual PI3K-mTOR inhibitor BEZ235 suppressed GNB1-induced signaling and markedly increased survival. In several human tumors, mutations in the gene encoding GNB1 co-occurred with oncogenic kinase alterations, including the BCR-ABL fusion protein, the V617F substitution in JAK2 and the V600K substitution in BRAF. Coexpression of patient-derived GNB1 variants with these mutant kinases resulted in inhibitor resistance in each context. Thus, GNB1 and GNB2 alterations confer transformed and resistance phenotypes across a range of human tumors and may be targetable with inhibitors of G protein signaling.
Insights
Recurrent mutations in GNB1 and GNB2 genes drive cancer by enabling cytokine-independent growth and activating signaling pathways. These G protein alterations also confer resistance to targeted therapies, suggesting new treatment strategies.
Area of Science:
- Molecular Biology
- Oncology
- Cell Signaling
Background:
- Activating mutations in G protein alpha (Gα) subunits are found in 4-5% of human cancers.
- Oncogenic alterations in G protein beta (Gβ) subunits have not been previously defined.
Purpose of the Study:
- To investigate the role of GNB1 and GNB2 mutations in cancer development.
- To understand the functional consequences of GNB1 and GNB2 alterations on G protein signaling and cancer phenotypes.
Main Methods:
- Analysis of recurrent mutations in GNB1 and GNB2 genes across human cancers.
- Functional characterization of patient-derived GNB1 variants in vitro and in mouse models.
- Assessment of therapeutic responses to PI3K-mTOR inhibitors in GNB1-mutated cancers.
Main Results:
- Recurrent mutations in GNB1 and GNB2 confer cytokine-independent growth and activate canonical G protein signaling.
- Mutations in GNB1 disrupt Gα interactions and cluster based on cancer lineage (myeloid and B cell neoplasms).
- GNB1 alterations cooperate with oncogenic kinases (BCR-ABL, JAK2, BRAF) to induce inhibitor resistance.
Conclusions:
- GNB1 and GNB2 alterations are oncogenic drivers conferring transformed and drug-resistant phenotypes in various human tumors.
- Targeting G protein signaling pathways may offer therapeutic strategies for GNB1/GNB2-mutated cancers.
- Understanding G protein alterations is crucial for developing novel cancer treatments.
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