Literature DB >> 14527956

The human phosphatidylinositol phosphatase SAC1 interacts with the coatomer I complex.

Holger M Rohde1, Fei Ying Cheong, Gerlinde Konrad, Karin Paiha, Peter Mayinger, Guido Boehmelt.   

Abstract

The Saccharomyces cerevisiae SAC1 gene encodes an integral membrane protein of the endoplasmic reticulum (ER) and the Golgi apparatus. Yeast SAC1 mutants display a wide array of phenotypes including inositol auxotrophy, cold sensitivity, secretory defects, disturbed ATP transport into the ER, or suppression of actin gene mutations. At present, it is not clear how these phenotypes relate to the finding that SAC1 displays polyphosphoinositide phosphatase activity. Moreover, it is still an open question whether SAC1 functions similarly in mammalian cells, since some phenotypes are yeast-specific. Potential protein interaction partners and, connected to that, possible regulatory circuits have not been described. Therefore, we have cloned human SAC1 (hSAC1), show that it behaves similar to ySac1p in terms of substrate specificity, demonstrate that the endogenous protein localizes to the ER and Golgi, and identify for the first time members of the coatomer I (COPI) complex as interaction partners of hSAC1. Mutation of a putative COPI interaction motif (KXKXX) at its C terminus abolishes interaction with COPI and causes accumulation of hSAC1 in the Golgi. In addition, we generated a catalytically inactive mutant, demonstrate that its lipid binding capacity is unaltered, and show that it accumulates in the Golgi, incapable of interacting with the COPI complex despite the presence of the KXKXX motif. These results open the possibility that the enzymatic function of hSAC1 provides a switch for accessibility of the COPI interaction motif.

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Year:  2003        PMID: 14527956     DOI: 10.1074/jbc.M307983200

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  47 in total

1.  Crystal structure of the yeast Sac1: implications for its phosphoinositide phosphatase function.

Authors:  Andrew Manford; Tian Xia; Ajay Kumar Saxena; Christopher Stefan; Fenghua Hu; Scott D Emr; Yuxin Mao
Journal:  EMBO J       Date:  2010-04-13       Impact factor: 11.598

Review 2.  Phosphoinositides and vesicular membrane traffic.

Authors:  Peter Mayinger
Journal:  Biochim Biophys Acta       Date:  2012-01-14

3.  Phospholipase Cε hydrolyzes perinuclear phosphatidylinositol 4-phosphate to regulate cardiac hypertrophy.

Authors:  Lianghui Zhang; Sundeep Malik; Jinjiang Pang; Huan Wang; Keigan M Park; David I Yule; Burns C Blaxall; Alan V Smrcka
Journal:  Cell       Date:  2013-03-28       Impact factor: 41.582

4.  Model of OSBP-Mediated Cholesterol Supply to Aichi Virus RNA Replication Sites Involving Protein-Protein Interactions among Viral Proteins, ACBD3, OSBP, VAP-A/B, and SAC1.

Authors:  Kumiko Ishikawa-Sasaki; Shigeo Nagashima; Koki Taniguchi; Jun Sasaki
Journal:  J Virol       Date:  2018-03-28       Impact factor: 5.103

5.  The Sac domain-containing phosphoinositide phosphatases: structure, function, and disease.

Authors:  FoSheng Hsu; Yuxin Mao
Journal:  Front Biol (Beijing)       Date:  2013-08

6.  Spatial regulation of Golgi phosphatidylinositol-4-phosphate is required for enzyme localization and glycosylation fidelity.

Authors:  Fei Ying Cheong; Vandana Sharma; Anastasia Blagoveshchenskaya; Viola M J Oorschot; Ben Brankatschk; Judith Klumperman; Hudson H Freeze; Peter Mayinger
Journal:  Traffic       Date:  2010-06-21       Impact factor: 6.215

7.  The phosphoinositide phosphatase Sac1 regulates cell shape and microtubule stability in the developing Drosophila eye.

Authors:  Lauren M Del Bel; Nigel Griffiths; Ronit Wilk; Ho-Chun Wei; Anastasia Blagoveshchenskaya; Jason Burgess; Gordon Polevoy; James V Price; Peter Mayinger; Julie A Brill
Journal:  Development       Date:  2018-05-31       Impact factor: 6.868

8.  GOLPH3 bridges phosphatidylinositol-4- phosphate and actomyosin to stretch and shape the Golgi to promote budding.

Authors:  Holly C Dippold; Michelle M Ng; Suzette E Farber-Katz; Sun-Kyung Lee; Monica L Kerr; Marshall C Peterman; Ronald Sim; Patricia A Wiharto; Kenneth A Galbraith; Swetha Madhavarapu; Greg J Fuchs; Timo Meerloo; Marilyn G Farquhar; Huilin Zhou; Seth J Field
Journal:  Cell       Date:  2009-10-16       Impact factor: 41.582

9.  PITPNC1 Recruits RAB1B to the Golgi Network to Drive Malignant Secretion.

Authors:  Nils Halberg; Caitlin A Sengelaub; Kristina Navrazhina; Henrik Molina; Kunihiro Uryu; Sohail F Tavazoie
Journal:  Cancer Cell       Date:  2016-03-14       Impact factor: 31.743

10.  Role of phosphatidylinositol 4-phosphate (PI4P) and its binding protein GOLPH3 in hepatitis C virus secretion.

Authors:  Bryan Bishé; Gulam H Syed; Seth J Field; Aleem Siddiqui
Journal:  J Biol Chem       Date:  2012-06-28       Impact factor: 5.157

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