Literature DB >> 28652372

Muscarinic receptor regulates extracellular signal regulated kinase by two modes of arrestin binding.

Seung-Ryoung Jung1, Christopher Kushmerick2, Jong Bae Seo3,4, Duk-Su Koh3, Bertil Hille1.   

Abstract

Binding of agonists to G-protein-coupled receptors (GPCRs) activates heterotrimeric G proteins and downstream signaling. Agonist-bound GPCRs are then phosphorylated by protein kinases and bound by arrestin to trigger desensitization and endocytosis. Arrestin plays another important signaling function. It recruits and regulates activity of an extracellular signal-regulated kinase (ERK) cascade. However, molecular details and timing of ERK activation remain fundamental unanswered questions that limit understanding of how arrestin-dependent GPCR signaling controls cell functions. Here we validate and model a system that tracks the dynamics of interactions of arrestin with receptors and of ERK activation using optical reporters. Our intermolecular FRET measurements in living cells are consistent with β-arrestin binding to M1 muscarinic acetylcholine receptors (M1Rs) in two different binding modes, transient and stable. The stable mode persists for minutes after agonist removal. The choice of mode is governed by phosphorylation on key residues in the third intracellular loop of the receptor. We detect a similar intramolecular conformational change in arrestin in either binding mode. It develops within seconds of arrestin binding to the M1 receptor, and it reverses within seconds of arrestin unbinding from the transient binding mode. Furthermore, we observed that, when stably bound to phosphorylated M1R, β-arrestin scaffolds and activates MEK-dependent ERK. In contrast, when transiently bound, β-arrestin reduces ERK activity via recruitment of a protein phosphatase. All this ERK signaling develops at the plasma membrane. In this scaffolding hypothesis, a shifting balance between the two arrestin binding modes determines the degree of ERK activation at the membrane.

Entities:  

Keywords:  ERK; GPCR; arrestin; muscarinic receptor; receptor kinase

Mesh:

Substances:

Year:  2017        PMID: 28652372      PMCID: PMC5514713          DOI: 10.1073/pnas.1700331114

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


  56 in total

1.  The role of extracellular regulated kinases I/II in late-phase long-term potentiation.

Authors:  Kobi Rosenblum; Marie Futter; Karen Voss; Muriel Erent; Paul A Skehel; Pim French; Louis Obosi; Matt W Jones; Tim V P Bliss
Journal:  J Neurosci       Date:  2002-07-01       Impact factor: 6.167

2.  Structural insight into allosteric modulation of protease-activated receptor 2.

Authors:  Robert K Y Cheng; Cédric Fiez-Vandal; Oliver Schlenker; Karl Edman; Birte Aggeler; Dean G Brown; Giles A Brown; Robert M Cooke; Christoph E Dumelin; Andrew S Doré; Stefan Geschwindner; Christoph Grebner; Nils-Olov Hermansson; Ali Jazayeri; Patrik Johansson; Louis Leong; Rudi Prihandoko; Mathieu Rappas; Holly Soutter; Arjan Snijder; Linda Sundström; Benjamin Tehan; Peter Thornton; Dawn Troast; Giselle Wiggin; Andrei Zhukov; Fiona H Marshall; Niek Dekker
Journal:  Nature       Date:  2017-04-26       Impact factor: 49.962

3.  Fatty-acyl chain profiles of cellular phosphoinositides.

Authors:  Alexis Traynor-Kaplan; Martin Kruse; Eamonn J Dickson; Gucan Dai; Oscar Vivas; Haijie Yu; Dale Whittington; Bertil Hille
Journal:  Biochim Biophys Acta Mol Cell Biol Lipids       Date:  2017-02-09       Impact factor: 4.698

4.  GPCR Signaling: β-arrestins Kiss and Remember.

Authors:  Ravi Ranjan; Pragya Gupta; Arun K Shukla
Journal:  Curr Biol       Date:  2016-04-04       Impact factor: 10.834

5.  β-Arrestin-Dependent Dopaminergic Regulation of Calcium Channel Activity in the Axon Initial Segment.

Authors:  Sungchil Yang; Roy Ben-Shalom; Misol Ahn; Alayna T Liptak; Richard M van Rijn; Jennifer L Whistler; Kevin J Bender
Journal:  Cell Rep       Date:  2016-07-21       Impact factor: 9.423

6.  Differential G-protein-coupled receptor phosphorylation provides evidence for a signaling bar code.

Authors:  Adrian J Butcher; Rudi Prihandoko; Kok Choi Kong; Phillip McWilliams; Jennifer M Edwards; Andrew Bottrill; Sharad Mistry; Andrew B Tobin
Journal:  J Biol Chem       Date:  2010-12-21       Impact factor: 5.157

7.  Visualization of arrestin recruitment by a G-protein-coupled receptor.

Authors:  Arun K Shukla; Gerwin H Westfield; Kunhong Xiao; Rosana I Reis; Li-Yin Huang; Prachi Tripathi-Shukla; Jiang Qian; Sheng Li; Adi Blanc; Austin N Oleskie; Anne M Dosey; Min Su; Cui-Rong Liang; Ling-Ling Gu; Jin-Ming Shan; Xin Chen; Rachel Hanna; Minjung Choi; Xiao Jie Yao; Bjoern U Klink; Alem W Kahsai; Sachdev S Sidhu; Shohei Koide; Pawel A Penczek; Anthony A Kossiakoff; Virgil L Woods; Brian K Kobilka; Georgios Skiniotis; Robert J Lefkowitz
Journal:  Nature       Date:  2014-06-22       Impact factor: 49.962

8.  Targeted Elimination of G Proteins and Arrestins Defines Their Specific Contributions to Both Intensity and Duration of G Protein-coupled Receptor Signaling.

Authors:  Elisa Alvarez-Curto; Asuka Inoue; Laura Jenkins; Sheikh Zahir Raihan; Rudi Prihandoko; Andrew B Tobin; Graeme Milligan
Journal:  J Biol Chem       Date:  2016-11-16       Impact factor: 5.157

9.  Arrestin competition influences the kinetics and variability of the single-photon responses of mammalian rod photoreceptors.

Authors:  Thuy Doan; Anthony W Azevedo; James B Hurley; Fred Rieke
Journal:  J Neurosci       Date:  2009-09-23       Impact factor: 6.167

10.  High-resolution crystal structure of human protease-activated receptor 1.

Authors:  Cheng Zhang; Yoga Srinivasan; Daniel H Arlow; Juan Jose Fung; Daniel Palmer; Yaowu Zheng; Hillary F Green; Anjali Pandey; Ron O Dror; David E Shaw; William I Weis; Shaun R Coughlin; Brian K Kobilka
Journal:  Nature       Date:  2012-12-09       Impact factor: 49.962

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  21 in total

Review 1.  Extramembranous Regions in G Protein-Coupled Receptors: Cinderella in Receptor Biology?

Authors:  Sreetama Pal; Amitabha Chattopadhyay
Journal:  J Membr Biol       Date:  2019-08-30       Impact factor: 1.843

Review 2.  Structure and dynamics of GPCR signaling complexes.

Authors:  Daniel Hilger; Matthieu Masureel; Brian K Kobilka
Journal:  Nat Struct Mol Biol       Date:  2018-01-08       Impact factor: 15.369

3.  Phosphorylation barcode-dependent signal bias of the dopamine D1 receptor.

Authors:  Ali I Kaya; Nicole A Perry; Vsevolod V Gurevich; T M Iverson
Journal:  Proc Natl Acad Sci U S A       Date:  2020-06-05       Impact factor: 11.205

4.  Biased antagonism of CXCR4 avoids antagonist tolerance.

Authors:  Ben Hitchinson; Jonathan M Eby; Xianlong Gao; Francois Guite-Vinet; Joshua J Ziarek; Hazem Abdelkarim; Youngshim Lee; Yukari Okamoto; Sojin Shikano; Matthias Majetschak; Nikolaus Heveker; Brian F Volkman; Nadya I Tarasova; Vadim Gaponenko
Journal:  Sci Signal       Date:  2018-10-16       Impact factor: 8.192

5.  The Two Non-Visual Arrestins Engage ERK2 Differently.

Authors:  Nicole A Perry-Hauser; Jesse B Hopkins; Ya Zhuo; Chen Zheng; Ivette Perez; Kathryn M Schultz; Sergey A Vishnivetskiy; Ali I Kaya; Pankaj Sharma; Kevin N Dalby; Ka Young Chung; Candice S Klug; Vsevolod V Gurevich; T M Iverson
Journal:  J Mol Biol       Date:  2022-01-22       Impact factor: 5.469

6.  Molecular mechanism of GPCR-mediated arrestin activation.

Authors:  Naomi R Latorraca; Jason K Wang; Brian Bauer; Raphael J L Townshend; Scott A Hollingsworth; Julia E Olivieri; H Eric Xu; Martha E Sommer; Ron O Dror
Journal:  Nature       Date:  2018-05-02       Impact factor: 49.962

7.  Cholinergic Signaling via Muscarinic Receptors Directly and Indirectly Suppresses Pancreatic Tumorigenesis and Cancer Stemness.

Authors:  Bernhard W Renz; Takayuki Tanaka; Masaki Sunagawa; Ryota Takahashi; Zhengyu Jiang; Marina Macchini; Zahra Dantes; Giovanni Valenti; Ruth A White; Moritz A Middelhoff; Matthias Ilmer; Paul E Oberstein; Martin K Angele; Huan Deng; Yoku Hayakawa; C Benedikt Westphalen; Jens Werner; Helen Remotti; Maximilian Reichert; Yagnesh H Tailor; Karan Nagar; Richard A Friedman; Alina C Iuga; Kenneth P Olive; Timothy C Wang
Journal:  Cancer Discov       Date:  2018-09-05       Impact factor: 39.397

8.  β-arrestin-dependent PI(4,5)P2 synthesis boosts GPCR endocytosis.

Authors:  Seung-Ryoung Jung; Yifei Jiang; Jong Bae Seo; Daniel T Chiu; Bertil Hille; Duk-Su Koh
Journal:  Proc Natl Acad Sci U S A       Date:  2021-04-27       Impact factor: 11.205

9.  How GPCR Phosphorylation Patterns Orchestrate Arrestin-Mediated Signaling.

Authors:  Naomi R Latorraca; Matthieu Masureel; Scott A Hollingsworth; Franziska M Heydenreich; Carl-Mikael Suomivuori; Connor Brinton; Raphael J L Townshend; Michel Bouvier; Brian K Kobilka; Ron O Dror
Journal:  Cell       Date:  2020-12-08       Impact factor: 41.582

10.  Scaffolding mechanism of arrestin-2 in the cRaf/MEK1/ERK signaling cascade.

Authors:  Changxiu Qu; Ji Young Park; Min Woo Yun; Qing-Tao He; Fan Yang; Kiae Kim; Donghee Ham; Rui-Rui Li; T M Iverson; Vsevolod V Gurevich; Jin-Peng Sun; Ka Young Chung
Journal:  Proc Natl Acad Sci U S A       Date:  2021-09-14       Impact factor: 11.205

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