Literature DB >> 32332165

Palmitoylation of the KATP channel Kir6.2 subunit promotes channel opening by regulating PIP2 sensitivity.

Hua-Qian Yang1, Wilnelly Martinez-Ortiz2, JongIn Hwang1, Xuexin Fan3, Timothy J Cardozo2, William A Coetzee4,2,5.   

Abstract

A physiological role for long-chain acyl-CoA esters to activate ATP-sensitive K+ (KATP) channels is well established. Circulating palmitate is transported into cells and converted to palmitoyl-CoA, which is a substrate for palmitoylation. We found that palmitoyl-CoA, but not palmitic acid, activated the channel when applied acutely. We have altered the palmitoylation state by preincubating cells with micromolar concentrations of palmitic acid or by inhibiting protein thioesterases. With acyl-biotin exchange assays we found that Kir6.2, but not sulfonylurea receptor (SUR)1 or SUR2, was palmitoylated. These interventions increased the KATP channel mean patch current, increased the open time, and decreased the apparent sensitivity to ATP without affecting surface expression. Similar data were obtained in transfected cells, rat insulin-secreting INS-1 cells, and isolated cardiac myocytes. Kir6.2ΔC36, expressed without SUR, was also positively regulated by palmitoylation. Mutagenesis of Kir6.2 Cys166 prevented these effects. Clinical variants in KCNJ11 that affect Cys166 had a similar gain-of-function phenotype, but was more pronounced. Molecular modeling studies suggested that palmitoyl-C166 and selected large hydrophobic mutations make direct hydrophobic contact with Kir6.2-bound PIP2 Patch-clamp studies confirmed that palmitoylation of Kir6.2 at Cys166 enhanced the PIP2 sensitivity of the channel. Physiological relevance is suggested since palmitoylation blunted the regulation of KATP channels by α1-adrenoreceptor stimulation. The Cys166 residue is conserved in some other Kir family members (Kir6.1 and Kir3, but not Kir2), which are also subject to regulated palmitoylation, suggesting a general mechanism to control the open state of certain Kir channels.

Entities:  

Keywords:  KATP channels; Kir6.2; PIP2; lipidation; palmitoylation

Mesh:

Substances:

Year:  2020        PMID: 32332165      PMCID: PMC7229695          DOI: 10.1073/pnas.1918088117

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


  53 in total

1.  A new ER trafficking signal regulates the subunit stoichiometry of plasma membrane K(ATP) channels.

Authors:  N Zerangue; B Schwappach; Y N Jan; L Y Jan
Journal:  Neuron       Date:  1999-03       Impact factor: 17.173

2.  Alpha 1-adrenoceptors reduce background K+ current in rabbit ventricular myocytes.

Authors:  D Fedida; A P Braun; W R Giles
Journal:  J Physiol       Date:  1991-09       Impact factor: 5.182

3.  Molecular analysis of ATP-sensitive K channel gating and implications for channel inhibition by ATP.

Authors:  S Trapp; P Proks; S J Tucker; F M Ashcroft
Journal:  J Gen Physiol       Date:  1998-09       Impact factor: 4.086

4.  Long-chain acyl-CoA esters and phosphatidylinositol phosphates modulate ATP inhibition of KATP channels by the same mechanism.

Authors:  Dirk Schulze; Markus Rapedius; Tobias Krauter; Thomas Baukrowitz
Journal:  J Physiol       Date:  2003-10-15       Impact factor: 5.182

5.  Cantú syndrome resulting from activating mutation in the KCNJ8 gene.

Authors:  Paige E Cooper; Heiko Reutter; Joachim Woelfle; Hartmut Engels; Dorothy K Grange; Gijs van Haaften; Bregje W van Bon; Alexander Hoischen; Colin G Nichols
Journal:  Hum Mutat       Date:  2014-05-06       Impact factor: 4.878

Review 6.  ATP-Sensitive Potassium Channels and Their Physiological and Pathophysiological Roles.

Authors:  Andrew Tinker; Qadeer Aziz; Yiwen Li; Mark Specterman
Journal:  Compr Physiol       Date:  2018-09-14       Impact factor: 9.090

7.  Stochastic palmitoylation of accessible cysteines in membrane proteins revealed by native mass spectrometry.

Authors:  Remco N P Rodenburg; Joost Snijder; Michiel van de Waterbeemd; Arie Schouten; Joke Granneman; Albert J R Heck; Piet Gros
Journal:  Nat Commun       Date:  2017-11-03       Impact factor: 14.919

8.  ABHD17 proteins are novel protein depalmitoylases that regulate N-Ras palmitate turnover and subcellular localization.

Authors:  David Tse Shen Lin; Elizabeth Conibear
Journal:  Elife       Date:  2015-12-23       Impact factor: 8.140

9.  An Improved Method for Modeling Voltage-Gated Ion Channels at Atomic Accuracy Applied to Human Cav Channels.

Authors:  Wilnelly Martinez-Ortiz; Timothy J Cardozo
Journal:  Cell Rep       Date:  2018-05-01       Impact factor: 9.423

10.  SwissPalm: Protein Palmitoylation database.

Authors:  Mathieu Blanc; Fabrice David; Laurence Abrami; Daniel Migliozzi; Florence Armand; Jérôme Bürgi; Françoise Gisou van der Goot
Journal:  F1000Res       Date:  2015-07-16
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  11 in total

Review 1.  The Pancreatic β-Cell: The Perfect Redox System.

Authors:  Petr Ježek; Blanka Holendová; Martin Jabůrek; Jan Tauber; Andrea Dlasková; Lydie Plecitá-Hlavatá
Journal:  Antioxidants (Basel)       Date:  2021-01-29

Review 2.  Kir6.1 and SUR2B in Cantú syndrome.

Authors:  Conor McClenaghan; Colin G Nichols
Journal:  Am J Physiol Cell Physiol       Date:  2022-07-25       Impact factor: 5.282

3.  Antipsychotics impair regulation of glucose metabolism by central glucose.

Authors:  Laura N Castellani; Sandra Pereira; Chantel Kowalchuk; Roshanak Asgariroozbehani; Raghunath Singh; Sally Wu; Laurie Hamel; Khaled Alganem; William G Ryan; Xiaolu Zhang; Emily Au; Araba Chintoh; Gary Remington; Sri Mahavir Agarwal; Adria Giacca; Robert E Mccullumsmith; Margaret K Hahn
Journal:  Mol Psychiatry       Date:  2022-10-14       Impact factor: 13.437

4.  Protein acylation by saturated very long chain fatty acids and endocytosis are involved in necroptosis.

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Journal:  Cell Chem Biol       Date:  2021-04-12       Impact factor: 9.039

5.  Global identification of S-palmitoylated proteins and detection of palmitoylating (DHHC) enzymes in heart.

Authors:  Madeleine R Miles; John Seo; Min Jiang; Zachary T Wilson; Janay Little; Jon Hao; Joshua Andrade; Beatrix Ueberheide; Gea-Ny Tseng
Journal:  J Mol Cell Cardiol       Date:  2021-02-23       Impact factor: 5.763

Review 6.  Regulatory effects of protein S-acylation on insulin secretion and insulin action.

Authors:  Luke H Chamberlain; Michael J Shipston; Gwyn W Gould
Journal:  Open Biol       Date:  2021-03-31       Impact factor: 6.411

Review 7.  Lipid-induced S-palmitoylation as a Vital Regulator of Cell Signaling and Disease Development.

Authors:  Mengyuan Qu; Xuan Zhou; Xiaotong Wang; Honggang Li
Journal:  Int J Biol Sci       Date:  2021-10-11       Impact factor: 6.580

8.  Acetyl-CoA-carboxylase 1 (ACC1) plays a critical role in glucagon secretion.

Authors:  Anna Veprik; Geoffrey Denwood; Dong Liu; Rula Bany Bakar; Valentin Morfin; Kara McHugh; Nchimunya N Tebeka; Laurène Vetterli; Ekaterina Yonova-Doing; Fiona Gribble; Frank Reimann; Kyle L Hoehn; Piers A Hemsley; Jonas Ahnfelt-Rønne; Patrik Rorsman; Quan Zhang; Heidi de Wet; James Cantley
Journal:  Commun Biol       Date:  2022-03-18

Review 9.  Functional Regulation of KATP Channels and Mutant Insight Into Clinical Therapeutic Strategies in Cardiovascular Diseases.

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Journal:  Front Pharmacol       Date:  2022-06-28       Impact factor: 5.988

Review 10.  Contribution of Mitochondria to Insulin Secretion by Various Secretagogues.

Authors:  Petr Ježek; Blanka Holendová; Martin Jabůrek; Andrea Dlasková; Lydie Plecitá-Hlavatá
Journal:  Antioxid Redox Signal       Date:  2021-08-24       Impact factor: 7.468

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