Literature DB >> 36037331

Multimodal cotranslational interactions direct assembly of the human multi-tRNA synthetase complex.

Krishnendu Khan1, Briana Long1, Valentin Gogonea2, Gauravi M Deshpande3, Kommireddy Vasu1, Paul L Fox1,2.   

Abstract

Amino acid ligation to cognate transfer RNAs (tRNAs) is catalyzed by aminoacyl-tRNA synthetases (aaRSs)-essential interpreters of the genetic code during translation. Mammalian cells harbor 20 cytoplasmic aaRSs, out of which 9 (in 8 proteins), with 3 non-aaRS proteins, AIMPs 1 to 3, form the ∼1.25-MDa multi-tRNA synthetase complex (MSC). The function of MSC remains uncertain, as does its mechanism of assembly. Constituents of multiprotein complexes encounter obstacles during assembly, including inappropriate interactions, topological constraints, premature degradation of unassembled subunits, and suboptimal stoichiometry. To facilitate orderly and efficient complex formation, some complexes are assembled cotranslationally by a mechanism in which a fully formed, mature protein binds a nascent partner as it emerges from the translating ribosome. Here, we show out of the 121 possible interaction events between the 11 MSC constituents, 15 are cotranslational. AIMPs are involved in the majority of these cotranslational interactions, suggesting they are not only critical for MSC structure but also for assembly. Unexpectedly, several cotranslational events involve more than the usual dyad of interacting proteins. We show two modes of cotranslational interaction, namely a "multisite" mechanism in which two or more mature proteins bind the same nascent peptide at distinct sites and a second "piggy-back" mechanism in which a mature protein carries a second fully formed protein and binds to a single site on an emerging peptide. Multimodal mechanisms of cotranslational interaction offer a diversity of pathways for ordered, piecewise assembly of small subcomplexes into larger heteromultimeric complexes such as the mammalian MSC.

Entities:  

Keywords:  aminoacyl-tRNA synthetase; complex assembly; cotranslational interaction; multi-tRNA synthetase complex; multiprotein complex

Mesh:

Substances:

Year:  2022        PMID: 36037331      PMCID: PMC9457175          DOI: 10.1073/pnas.2205669119

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   12.779


  56 in total

1.  Glutamine-dependent antiapoptotic interaction of human glutaminyl-tRNA synthetase with apoptosis signal-regulating kinase 1.

Authors:  Y G Ko; E Y Kim; T Kim; H Park; H S Park; E J Choi; S Kim
Journal:  J Biol Chem       Date:  2000-11-28       Impact factor: 5.157

Review 2.  Structure, dynamics, assembly, and evolution of protein complexes.

Authors:  Joseph A Marsh; Sarah A Teichmann
Journal:  Annu Rev Biochem       Date:  2014-12-08       Impact factor: 23.643

3.  A census of human soluble protein complexes.

Authors:  Pierre C Havugimana; G Traver Hart; Tamás Nepusz; Haixuan Yang; Andrei L Turinsky; Zhihua Li; Peggy I Wang; Daniel R Boutz; Vincent Fong; Sadhna Phanse; Mohan Babu; Stephanie A Craig; Pingzhao Hu; Cuihong Wan; James Vlasblom; Vaqaar-un-Nisa Dar; Alexandr Bezginov; Gregory W Clark; Gabriel C Wu; Shoshana J Wodak; Elisabeth R M Tillier; Alberto Paccanaro; Edward M Marcotte; Andrew Emili
Journal:  Cell       Date:  2012-08-31       Impact factor: 41.582

4.  The haploinsufficient tumor suppressor p18 upregulates p53 via interactions with ATM/ATR.

Authors:  Bum-Joon Park; Jin Wook Kang; Sang Won Lee; So-Jung Choi; Young Kee Shin; Young Ha Ahn; Yun Hee Choi; Dongho Choi; Kwang Soo Lee; Sunghoon Kim
Journal:  Cell       Date:  2005-01-28       Impact factor: 41.582

5.  The tRNA-interacting factor p43 associates with mammalian arginyl-tRNA synthetase but does not modify its tRNA aminoacylation properties.

Authors:  Ludovic Guigou; Vyacheslav Shalak; Marc Mirande
Journal:  Biochemistry       Date:  2004-04-20       Impact factor: 3.162

6.  A ribosome-anchored chaperone network that facilitates eukaryotic ribosome biogenesis.

Authors:  Véronique Albanèse; Stefanie Reissmann; Judith Frydman
Journal:  J Cell Biol       Date:  2010-04-05       Impact factor: 10.539

7.  Cellular distribution of Lysyl-tRNA synthetase and its interaction with Gag during human immunodeficiency virus type 1 assembly.

Authors:  Rabih Halwani; Shan Cen; Hassan Javanbakht; Jenan Saadatmand; Sunghoon Kim; Kiyotaka Shiba; Lawrence Kleiman
Journal:  J Virol       Date:  2004-07       Impact factor: 5.103

8.  Structural basis of yeast aminoacyl-tRNA synthetase complex formation revealed by crystal structures of two binary sub-complexes.

Authors:  Hannes Simader; Michael Hothorn; Christine Köhler; Jerome Basquin; George Simos; Dietrich Suck
Journal:  Nucleic Acids Res       Date:  2006-08-12       Impact factor: 16.971

Review 9.  Aminoacyl-tRNA synthetase complexes in evolution.

Authors:  Svitlana Havrylenko; Marc Mirande
Journal:  Int J Mol Sci       Date:  2015-03-23       Impact factor: 5.923

10.  Operon Gene Order Is Optimized for Ordered Protein Complex Assembly.

Authors:  Jonathan N Wells; L Therese Bergendahl; Joseph A Marsh
Journal:  Cell Rep       Date:  2016-01-21       Impact factor: 9.423

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