Restoration of the GTPase activity and cellular interactions of Gao mutants by Zn2+in<i> GNAO1</i> encephalopathy models

Yonika A. Larasati, Mikhail Savitsky, Alexey Koval, Gonzalo P. Solis, Jana Valnohova, Vladimir L. Katanaev*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

25 Citations (Scopus)

Abstract

De novo point mutations in GNAO1, gene encoding the major neuronal G protein Gao, have recently emerged in patients with pediatric encephalopathy having motor, developmental, and epileptic dysfunctions. Half of clinical cases affect codons Gly203, Arg209, or Glu246; we show that these mutations accelerate GTP uptake and inactivate GTP hydrolysis through displacement Gln205 critical for GTP hydrolysis, resulting in constitutive GTP binding by Gao. However, the mutants fail to adopt the activated conformation and display aberrant interactions with signal-ing partners. Through high-throughput screening of approved drugs, we identify zinc pyrithione and Zn2+ as agents restoring active conformation, GTPase activity, and cellular interactions of the encephalopathy mutants, with negligible effects on wild-type Gao. We describe a Drosophila model of GNAO1 encephalopathy where dietary zinc restores the motor function and longevity of the mutant flies. Zinc supplements are approved for diverse human neurological conditions. Our work provides insights into the molecular etiology of GNAO1 encephalopathy and defines a potential therapy for the patients.
Original languageEnglish
Article numbereabn9350
Number of pages18
JournalScience advances
Volume8
Issue number40
DOIs
Publication statusPublished - 7 Oct 2022
Externally publishedYes

Keywords

  • De-novo mutations
  • Drosophila
  • Drug discovery
  • Epileptic encephalopathy
  • G(i-alpha-1)
  • Gnao1
  • Heterotrimeric g-proteins
  • Mechanism
  • Pyrithione
  • Zinc

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