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The Single Nucleotide β -arrestin2 Variant, A248T, Resembles Dynamical Properties of Activated Arrestin

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Journal Turk J Chem
Date 2021 Jan 25
PMID 33488166
Citations 2
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Abstract

β -arrestins are responsible for termination of G protein-coupled receptor (GPCR)-mediated signaling. Association of single nucleotide variants with onset of crucial diseases has made this protein family hot targets in the field of GPCR-mediated pharmacology. However, impact of these mutations on function of these variants has remained elusive. In this study, structural and dynamical properties of one of β -arrestin2 (arrestin 3) variants, A248T, which has been identified in some cancer tissue samples, were investigated via molecular dynamics simulations. The results showed that the variant underwent structural rearrangements which are seen in crystal structures of active arrestin. Specifically, the "short helix" unravels and the "gate loop" swings forward as seen in crystal structures of receptor-bound and GPCR phosphopeptide-bound arrestin. Moreover, the "finger loop" samples upward position in the variant. Importantly, these regions harbor crucial residues that are involved in receptor binding interfaces. Cumulatively, these local structural rearrangements help the variant adopt active-like domain angle without perturbing the "polar core". Considering that phosphorylation of the receptor is required for activation of arrestin, A248T might serve as a model system to understand phosphorylation-independent activation mechanism, thus enabling modulation of function of arrestin variants which are activated independent of receptor phosphorylation as seen in cancer.

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References
1.
Hess B, Kutzner C, van der Spoel D, Lindahl E . GROMACS 4:  Algorithms for Highly Efficient, Load-Balanced, and Scalable Molecular Simulation. J Chem Theory Comput. 2015; 4(3):435-47. DOI: 10.1021/ct700301q. View

2.
Shihab H, Gough J, Cooper D, Stenson P, Barker G, Edwards K . Predicting the functional, molecular, and phenotypic consequences of amino acid substitutions using hidden Markov models. Hum Mutat. 2012; 34(1):57-65. PMC: 3558800. DOI: 10.1002/humu.22225. View

3.
Sensoy O, Moreira I, Morra G . Understanding the Differential Selectivity of Arrestins toward the Phosphorylation State of the Receptor. ACS Chem Neurosci. 2016; 7(9):1212-24. DOI: 10.1021/acschemneuro.6b00073. View

4.
Zheng C, Tholen J, Gurevich V . Critical role of the finger loop in arrestin binding to the receptors. PLoS One. 2019; 14(3):e0213792. PMC: 6420155. DOI: 10.1371/journal.pone.0213792. View

5.
Heinig M, Frishman D . STRIDE: a web server for secondary structure assignment from known atomic coordinates of proteins. Nucleic Acids Res. 2004; 32(Web Server issue):W500-2. PMC: 441567. DOI: 10.1093/nar/gkh429. View