Literature DB >> 19090811

N-acetyltransferase ARD1-NAT1 regulates neuronal dendritic development.

Noriaki Ohkawa1, Shunichiro Sugisaki, Eri Tokunaga, Kazuko Fujitani, Takahiro Hayasaka, Mitsutoshi Setou, Kaoru Inokuchi.   

Abstract

ARD1 and NAT1 constitute an N-acetyltransferase complex where ARD1 holds the enzymatic activity of the complex. The ARD1-NAT1 complex mediates N-terminal acetylation of nascent polypeptides that emerge from ribosomes after translation. ARD1 may also acetylate the internal lysine residues of proteins. Although ARD1 and NAT1 have been found in the brain, the physiological role and substrates of the ARD1-NAT1 complex in neurons remain unclear. Here we investigated role of N-acetyltransferase activity in the process of neuronal development. Expression of ARD1 and NAT1 increased during dendritic development, and both proteins colocalized with microtubules in dendrites. The ARD1-NAT1 complex displayed acetyltransferase activity against a purified microtubule fraction in vitro. Inhibition of the complex limited the dendritic extension of cultured neurons. These findings suggest that the ARD1-NAT1 complex has acetyltransferase activity against microtubules in dendrites. Regulation by acetyltransferase activity is a novel mechanism that is required for dendritic arborization during neuronal development.

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Year:  2008        PMID: 19090811     DOI: 10.1111/j.1365-2443.2008.01235.x

Source DB:  PubMed          Journal:  Genes Cells        ISSN: 1356-9597            Impact factor:   1.891


  39 in total

Review 1.  Post-translational regulation of the microtubule cytoskeleton: mechanisms and functions.

Authors:  Carsten Janke; Jeannette Chloë Bulinski
Journal:  Nat Rev Mol Cell Biol       Date:  2011-11-16       Impact factor: 94.444

Review 2.  Post-translational modifications of microtubules.

Authors:  Dorota Wloga; Jacek Gaertig
Journal:  J Cell Sci       Date:  2010-10-15       Impact factor: 5.285

3.  Acetylation of microtubules influences their sensitivity to severing by katanin in neurons and fibroblasts.

Authors:  Haruka Sudo; Peter W Baas
Journal:  J Neurosci       Date:  2010-05-26       Impact factor: 6.167

4.  The NIMA-family kinase Nek3 regulates microtubule acetylation in neurons.

Authors:  Jufang Chang; Robert H Baloh; Jeffrey Milbrandt
Journal:  J Cell Sci       Date:  2009-06-09       Impact factor: 5.285

5.  Microtubule Acetylation Is Required for Mechanosensation in Drosophila.

Authors:  Connie Yan; Fei Wang; Yun Peng; Claire R Williams; Brian Jenkins; Jill Wildonger; Hyeon-Jin Kim; Jonathan B Perr; Joshua C Vaughan; Megan E Kern; Michael R Falvo; E Timothy O'Brien; Richard Superfine; John C Tuthill; Yang Xiang; Stephen L Rogers; Jay Z Parrish
Journal:  Cell Rep       Date:  2018-10-23       Impact factor: 9.423

6.  Composition and biological significance of the human Nalpha-terminal acetyltransferases.

Authors:  Kristian K Starheim; Darina Gromyko; Rolf Velde; Jan Erik Varhaug; Thomas Arnesen
Journal:  BMC Proc       Date:  2009-08-04

Review 7.  The tale of protein lysine acetylation in the cytoplasm.

Authors:  Karin Sadoul; Jin Wang; Boubou Diagouraga; Saadi Khochbin
Journal:  J Biomed Biotechnol       Date:  2010-11-28

8.  MEC-17 is an alpha-tubulin acetyltransferase.

Authors:  Jyothi S Akella; Dorota Wloga; Jihyun Kim; Natalia G Starostina; Sally Lyons-Abbott; Naomi S Morrissette; Scott T Dougan; Edward T Kipreos; Jacek Gaertig
Journal:  Nature       Date:  2010-09-09       Impact factor: 49.962

9.  Age-related alterations in histone deacetylase expression in Purkinje neurons of ethanol-fed rats.

Authors:  Abhilasha Khurana; Cynthia A Dlugos
Journal:  Brain Res       Date:  2017-08-30       Impact factor: 3.252

10.  Posttranslational modifications of tubulin and the polarized transport of kinesin-1 in neurons.

Authors:  Jennetta W Hammond; Chun-Fang Huang; Stefanie Kaech; Catherine Jacobson; Gary Banker; Kristen J Verhey
Journal:  Mol Biol Cell       Date:  2009-12-23       Impact factor: 4.138

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