Literature DB >> 28982715

Capturing the Asc1p/Receptor for Activated C Kinase 1 (RACK1) Microenvironment at the Head Region of the 40S Ribosome with Quantitative BioID in Yeast.

Nadine Opitz1, Kerstin Schmitt1, Verena Hofer-Pretz1, Bettina Neumann2, Heike Krebber2, Gerhard H Braus1, Oliver Valerius3.   

Abstract

The Asc1 protein of Saccharomyces cerevisiae is a scaffold protein at the head region of ribosomal 40S that links mRNA translation to cellular signaling. In this study, proteins that colocalize with Asc1p were identified with proximity-dependent Biotin IDentification (BioID), an in vivo labeling technique described here for the first time for yeast. Biotinylated Asc1p-birA*-proximal proteins were identified and quantitatively verified against controls applying SILAC and mass spectrometry. The mRNA-binding proteins Sro9p and Gis2p appeared together with Scp160p, each providing ribosomes with nuclear transcripts. The cap-binding protein eIF4E (Cdc33p) and the eIF3/a-subunit (Rpg1p) were identified reflecting the encounter of proteins involved in the initiation of mRNA translation at the head region of ribosomal 40S. Unexpectedly, a protein involved in ribosome preservation (the clamping factor Stm1p), the deubiquitylation complex Ubp3p-Bre5p, the RNA polymerase II degradation factor 1 (Def1p), and transcription factors (Spt5p, Mbf1p) colocalize with Asc1p in exponentially growing cells. For Asc1R38D, K40Ep, a variant considered to be deficient in binding to ribosomes, BioID revealed its predominant ribosome localization. Glucose depletion replaced most of the Asc1p colocalizing proteins for additional ribosomal proteins, suggesting a ribosome aggregation process during early nutrient limitation, possibly concomitant with ribosomal subunit clamping. Overall, the characterization of the Asc1p microenvironment with BioID confirmed and substantiated our recent findings that the β-propeller broadly contributes to signal transduction influencing phosphorylation of colocalizing proteins (e.g. of Bre5p), and by that might affect nuclear gene transcription and the fate of ribosomes.
© 2017 by The American Society for Biochemistry and Molecular Biology, Inc.

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Year:  2017        PMID: 28982715      PMCID: PMC5724181          DOI: 10.1074/mcp.M116.066654

Source DB:  PubMed          Journal:  Mol Cell Proteomics        ISSN: 1535-9476            Impact factor:   5.911


  78 in total

1.  Involvement of Arabidopsis RACK1 in protein translation and its regulation by abscisic acid.

Authors:  Jianjun Guo; Shucai Wang; Oliver Valerius; Hardy Hall; Qingning Zeng; Jian-Feng Li; David J Weston; Brian E Ellis; Jin-Gui Chen
Journal:  Plant Physiol       Date:  2010-11-19       Impact factor: 8.340

2.  Functional organization of the yeast proteome by systematic analysis of protein complexes.

Authors:  Anne-Claude Gavin; Markus Bösche; Roland Krause; Paola Grandi; Martina Marzioch; Andreas Bauer; Jörg Schultz; Jens M Rick; Anne-Marie Michon; Cristina-Maria Cruciat; Marita Remor; Christian Höfert; Malgorzata Schelder; Miro Brajenovic; Heinz Ruffner; Alejandro Merino; Karin Klein; Manuela Hudak; David Dickson; Tatjana Rudi; Volker Gnau; Angela Bauch; Sonja Bastuck; Bettina Huhse; Christina Leutwein; Marie-Anne Heurtier; Richard R Copley; Angela Edelmann; Erich Querfurth; Vladimir Rybin; Gerard Drewes; Manfred Raida; Tewis Bouwmeester; Peer Bork; Bertrand Seraphin; Bernhard Kuster; Gitte Neubauer; Giulio Superti-Furga
Journal:  Nature       Date:  2002-01-10       Impact factor: 49.962

3.  Direct analysis of protein complexes using mass spectrometry.

Authors:  A J Link; J Eng; D M Schieltz; E Carmack; G J Mize; D R Morris; B M Garvik; J R Yates
Journal:  Nat Biotechnol       Date:  1999-07       Impact factor: 54.908

4.  Ribosomal RACK1 promotes chemoresistance and growth in human hepatocellular carcinoma.

Authors:  Yuanyuan Ruan; Linlin Sun; Yuqing Hao; Lijing Wang; Jiejie Xu; Wen Zhang; Jianhui Xie; Liang Guo; Lei Zhou; Xiaojing Yun; Hongguang Zhu; Aiguo Shen; Jianxin Gu
Journal:  J Clin Invest       Date:  2012-06-01       Impact factor: 14.808

5.  Dual roles for Spt5 in pre-mRNA processing and transcription elongation revealed by identification of Spt5-associated proteins.

Authors:  D L Lindstrom; S L Squazzo; N Muster; T A Burckin; K C Wachter; C A Emigh; J A McCleery; J R Yates; G A Hartzog
Journal:  Mol Cell Biol       Date:  2003-02       Impact factor: 4.272

6.  Protocol for micro-purification, enrichment, pre-fractionation and storage of peptides for proteomics using StageTips.

Authors:  Juri Rappsilber; Matthias Mann; Yasushi Ishihama
Journal:  Nat Protoc       Date:  2007       Impact factor: 13.491

7.  The eIF3c/NIP1 PCI domain interacts with RNA and RACK1/ASC1 and promotes assembly of translation preinitiation complexes.

Authors:  Tomáš Kouba; Edit Rutkai; Martina Karásková; Leoš Shivaya Valášek
Journal:  Nucleic Acids Res       Date:  2011-11-28       Impact factor: 16.971

8.  A promiscuous biotin ligase fusion protein identifies proximal and interacting proteins in mammalian cells.

Authors:  Kyle J Roux; Dae In Kim; Manfred Raida; Brian Burke
Journal:  J Cell Biol       Date:  2012-03-12       Impact factor: 10.539

9.  Proteasome-mediated processing of Def1, a critical step in the cellular response to transcription stress.

Authors:  Marcus D Wilson; Michelle Harreman; Michael Taschner; James Reid; Jane Walker; Hediye Erdjument-Bromage; Paul Tempst; Jesper Q Svejstrup
Journal:  Cell       Date:  2013-08-29       Impact factor: 41.582

10.  A RanGTP-independent mechanism allows ribosomal protein nuclear import for ribosome assembly.

Authors:  Sabina Schütz; Ute Fischer; Martin Altvater; Purnima Nerurkar; Cohue Peña; Michaela Gerber; Yiming Chang; Stefanie Caesar; Olga T Schubert; Gabriel Schlenstedt; Vikram G Panse
Journal:  Elife       Date:  2014-08-21       Impact factor: 8.140

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  30 in total

1.  Context-Specific and Proximity-Dependent Labeling for the Proteomic Analysis of Spatiotemporally Defined Protein Complexes with Split-BioID.

Authors:  Cinthia Amaya Ramirez; Stefanie Egetemaier; Julien Béthune
Journal:  Methods Mol Biol       Date:  2021

2.  BioID: A Method to Generate a History of Protein Associations.

Authors:  Danielle G May; Kyle J Roux
Journal:  Methods Mol Biol       Date:  2019-05-24

3.  BioID: A Screen for Protein-Protein Interactions.

Authors:  Kyle J Roux; Dae In Kim; Brian Burke; Danielle G May
Journal:  Curr Protoc Protein Sci       Date:  2018-02-21

4.  Towards improving proximity labeling by the biotin ligase BirA.

Authors:  Luke T Oostdyk; Leonard Shank; Kasey Jividen; Natalia Dworak; Nicholas E Sherman; Bryce M Paschal
Journal:  Methods       Date:  2018-11-10       Impact factor: 3.608

5.  Critical Role for Saccharomyces cerevisiae Asc1p in Translational Initiation at Elevated Temperatures.

Authors:  Vincent R Gerbasi; Christopher M Browne; Parimal Samir; Bingxin Shen; Ming Sun; Dane Z Hazelbaker; Allison C Galassie; Joachim Frank; Andrew J Link
Journal:  Proteomics       Date:  2018-10-23       Impact factor: 3.984

6.  Establishment of Proximity-Dependent Biotinylation Approaches in Different Plant Model Systems.

Authors:  Deepanksha Arora; Nikolaj B Abel; Chen Liu; Petra Van Damme; Klaas Yperman; Dominique Eeckhout; Lam Dai Vu; Jie Wang; Anna Tornkvist; Francis Impens; Barbara Korbei; Jelle Van Leene; Alain Goossens; Geert De Jaeger; Thomas Ott; Panagiotis Nikolaou Moschou; Daniël Van Damme
Journal:  Plant Cell       Date:  2020-08-25       Impact factor: 11.277

7.  A Protocol to Map the Spatial Proteome Using HyperLOPIT in Saccharomyces cerevisiae.

Authors:  Daniel J H Nightingale; Kathryn S Lilley; Stephen G Oliver
Journal:  Bio Protoc       Date:  2019-07-20

8.  CBRPP: a new RNA-centric method to study RNA-protein interactions.

Authors:  Yunfei Li; Shengde Liu; Lili Cao; Yujie Luo; Hongqiang Du; Siji Li; Zeming Zhang; Xuefei Guo; Wenmin Tian; Catherine Cl Wong; Fuping You
Journal:  RNA Biol       Date:  2021-02-17       Impact factor: 4.652

Review 9.  LARP1 and LARP4: up close with PABP for mRNA 3' poly(A) protection and stabilization.

Authors:  Sandy Mattijssen; Guennadi Kozlov; Bruno D Fonseca; Kalle Gehring; Richard J Maraia
Journal:  RNA Biol       Date:  2021-01-31       Impact factor: 4.652

10.  Atg21 organizes Atg8 lipidation at the contact of the vacuole with the phagophore.

Authors:  Lena Munzel; Piotr Neumann; Florian B Otto; Roswitha Krick; Janina Metje-Sprink; Benjamin Kroppen; Narain Karedla; Jörg Enderlein; Michael Meinecke; Ralf Ficner; Michael Thumm
Journal:  Autophagy       Date:  2020-06-09       Impact factor: 16.016

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