Literature DB >> 29133411

Specific inhibition of GPCR-independent G protein signaling by a rationally engineered protein.

Anthony Leyme1, Arthur Marivin1, Marcin Maziarz1, Vincent DiGiacomo1, Maria P Papakonstantinou1, Prachi P Patel1, Juan B Blanco-Canosa2, Isha A Walawalkar1, Gonzalo Rodriguez-Davila1, Isabel Dominguez3, Mikel Garcia-Marcos4.   

Abstract

Activation of heterotrimeric G proteins by cytoplasmic nonreceptor proteins is an alternative to the classical mechanism via G protein-coupled receptors (GPCRs). A subset of nonreceptor G protein activators is characterized by a conserved sequence named the Gα-binding and activating (GBA) motif, which confers guanine nucleotide exchange factor (GEF) activity in vitro and promotes G protein-dependent signaling in cells. GBA proteins have important roles in physiology and disease but remain greatly understudied. This is due, in part, to the lack of efficient tools that specifically disrupt GBA motif function in the context of the large multifunctional proteins in which they are embedded. This hindrance to the study of alternative mechanisms of G protein activation contrasts with the wealth of convenient chemical and genetic tools to manipulate GPCR-dependent activation. Here, we describe the rational design and implementation of a genetically encoded protein that specifically inhibits GBA motifs: GBA inhibitor (GBAi). GBAi was engineered by introducing modifications in Gαi that preclude coupling to every known major binding partner [GPCRs, Gβγ, effectors, guanine nucleotide dissociation inhibitors (GDIs), GTPase-activating proteins (GAPs), or the chaperone/GEF Ric-8A], while favoring high-affinity binding to all known GBA motifs. We demonstrate that GBAi does not interfere with canonical GPCR-G protein signaling but blocks GBA-dependent signaling in cancer cells. Furthermore, by implementing GBAi in vivo, we show that GBA-dependent signaling modulates phenotypes during Xenopus laevis embryonic development. In summary, GBAi is a selective, efficient, and convenient tool to dissect the biological processes controlled by a GPCR-independent mechanism of G protein activation mediated by cytoplasmic factors.

Entities:  

Keywords:  DAPLE; GEF; GPCR; Girdin; integrin

Mesh:

Substances:

Year:  2017        PMID: 29133411      PMCID: PMC5715746          DOI: 10.1073/pnas.1707992114

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  77 in total

Review 1.  Accessory proteins for G proteins: partners in signaling.

Authors:  Motohiko Sato; Joe B Blumer; Violaine Simon; Stephen M Lanier
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2.  DAPLE protein inhibits nucleotide exchange on Gαs and Gαq via the same motif that activates Gαi.

Authors:  Arthur Marivin; Marcin Maziarz; Jingyi Zhao; Vincent DiGiacomo; Isabel Olmos Calvo; Emily A Mann; Jason Ear; Juan B Blanco-Canosa; Elliott M Ross; Pradipta Ghosh; Mikel Garcia-Marcos
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3.  Atypical activation of the G protein Gαq by the oncogenic mutation Q209P.

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4.  A biochemical and genetic discovery pipeline identifies PLCδ4b as a nonreceptor activator of heterotrimeric G-proteins.

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9.  Optogenetic activation of heterotrimeric G-proteins by LOV2GIVe, a rationally engineered modular protein.

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Journal:  Elife       Date:  2020-09-16       Impact factor: 8.140

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