Literature DB >> 20610737

Interplay of palmitoylation and phosphorylation in the trafficking and localization of phosphodiesterase 10A: implications for the treatment of schizophrenia.

Erik I Charych1, Li-Xin Jiang, Frederick Lo, Kelly Sullivan, Nicholas J Brandon.   

Abstract

Phosphodiesterase 10A (PDE10A) is a striatum-enriched, dual-specific cyclic nucleotide phosphodiesterase that has gained considerable attention as a potential therapeutic target for psychiatric disorders such as schizophrenia. As such, a PDE10A-selective inhibitor compound, MP-10, has recently entered clinical testing. Since little is known about the cellular regulation of PDE10A, we sought to elucidate the mechanisms that govern its subcellular localization in striatal medium spiny neurons. Previous reports suggest that PDE10A is primarily membrane bound and is transported throughout medium spiny neuron axons and dendrites. Moreover, it has been shown in PC12 cells that the localization of the major splice form, PDE10A2, may be regulated by protein kinase A phosphorylation at threonine 16 (Thr-16). Using an antibody that specifically recognizes phosphorylated Thr-16 (pThr-16) of PDE10A2, we provide evidence that phosphorylation at Thr-16 is critical for the regulation of PDE10A subcellular localization in vivo. Furthermore, we demonstrate in primary mouse striatal neuron cultures that PDE10A membrane association and transport throughout dendritic processes requires palmitoylation of cysteine 11 (Cys-11) of PDE10A2, likely by the palmitoyl acyltransferases DHHC-7 and -19. Finally, we show that Thr-16 phosphorylation regulates PDE10A trafficking and localization by preventing palmitoylation of Cys-11 rather than by interfering with palmitate-lipid interactions. These data support a model whereby PDE10A trafficking and localization can be regulated in response to local fluctuations in cAMP levels. Given this, we propose that excessive striatal dopamine release, as occurs in schizophrenia, might exert differential effects on the regulation of PDE10A localization in the two striatal output pathways.

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Year:  2010        PMID: 20610737      PMCID: PMC6632485          DOI: 10.1523/JNEUROSCI.1635-10.2010

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


  46 in total

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Journal:  ACS Chem Neurosci       Date:  2018-02-19       Impact factor: 4.418

2.  Biallelic Mutations in PDE10A Lead to Loss of Striatal PDE10A and a Hyperkinetic Movement Disorder with Onset in Infancy.

Authors:  Christine P Diggle; Stacey J Sukoff Rizzo; Michael Popiolek; Reetta Hinttala; Jan-Philip Schülke; Manju A Kurian; Ian M Carr; Alexander F Markham; David T Bonthron; Christopher Watson; Saghira Malik Sharif; Veronica Reinhart; Larry C James; Michelle A Vanase-Frawley; Erik Charych; Melanie Allen; John Harms; Christopher J Schmidt; Joanne Ng; Karen Pysden; Christine Strick; Päivi Vieira; Katariina Mankinen; Hannaleena Kokkonen; Matti Kallioinen; Raija Sormunen; Juha O Rinne; Jarkko Johansson; Kati Alakurtti; Laura Huilaja; Tiina Hurskainen; Kaisa Tasanen; Eija Anttila; Tiago Reis Marques; Oliver Howes; Marius Politis; Somayyeh Fahiminiya; Khanh Q Nguyen; Jacek Majewski; Johanna Uusimaa; Eamonn Sheridan; Nicholas J Brandon
Journal:  Am J Hum Genet       Date:  2016-04-07       Impact factor: 11.025

3.  ZDHHC3 Tyrosine Phosphorylation Regulates Neural Cell Adhesion Molecule Palmitoylation.

Authors:  Patricia Marie-Jeanne Lievens; Tatiana Kuznetsova; Gaga Kochlamazashvili; Fabrizia Cesca; Natalya Gorinski; Dalia Abdel Galil; Volodimir Cherkas; Natalia Ronkina; Juri Lafera; Matthias Gaestel; Evgeni Ponimaskin; Alexander Dityatev
Journal:  Mol Cell Biol       Date:  2016-08-12       Impact factor: 4.272

4.  A critical time window for dopamine actions on the structural plasticity of dendritic spines.

Authors:  Sho Yagishita; Akiko Hayashi-Takagi; Graham C R Ellis-Davies; Hidetoshi Urakubo; Shin Ishii; Haruo Kasai
Journal:  Science       Date:  2014-09-26       Impact factor: 47.728

5.  Protein Lipidation: Occurrence, Mechanisms, Biological Functions, and Enabling Technologies.

Authors:  Hong Jiang; Xiaoyu Zhang; Xiao Chen; Pornpun Aramsangtienchai; Zhen Tong; Hening Lin
Journal:  Chem Rev       Date:  2018-01-02       Impact factor: 60.622

6.  Phosphodiesterase-10A Inverse Changes in Striatopallidal and Striatoentopeduncular Pathways of a Transgenic Mouse Model of DYT1 Dystonia.

Authors:  Vincenza D'Angelo; Valentina Castelli; Mauro Giorgi; Silvia Cardarelli; Ilaria Saverioni; Francesca Palumbo; Paola Bonsi; Antonio Pisani; Carmela Giampà; Roberto Sorge; Stefano Biagioni; Francesca R Fusco; Giuseppe Sancesario
Journal:  J Neurosci       Date:  2017-01-23       Impact factor: 6.167

7.  Peptide lipidation stabilizes structure to enhance biological function.

Authors:  Brian P Ward; Nickki L Ottaway; Diego Perez-Tilve; Dejian Ma; Vasily M Gelfanov; Matthias H Tschöp; Richard D Dimarchi
Journal:  Mol Metab       Date:  2013-09-05       Impact factor: 7.422

8.  Tracking brain palmitoylation change: predominance of glial change in a mouse model of Huntington's disease.

Authors:  Junmei Wan; Jeffrey N Savas; Amy F Roth; Shaun S Sanders; Roshni R Singaraja; Michael R Hayden; John R Yates; Nicholas G Davis
Journal:  Chem Biol       Date:  2013-11-07

9.  Phosphodiesterase 10A Is Tethered to a Synaptic Signaling Complex in Striatum.

Authors:  Corina Russwurm; Doris Koesling; Michael Russwurm
Journal:  J Biol Chem       Date:  2015-03-11       Impact factor: 5.157

Review 10.  Therapeutic targeting of 3',5'-cyclic nucleotide phosphodiesterases: inhibition and beyond.

Authors:  George S Baillie; Gonzalo S Tejeda; Michy P Kelly
Journal:  Nat Rev Drug Discov       Date:  2019-08-06       Impact factor: 84.694

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