Literature DB >> 27385828

Structure and function of the yeast listerin (Ltn1) conserved N-terminal domain in binding to stalled 60S ribosomal subunits.

Selom K Doamekpor1, Joong-Won Lee2, Nathaniel L Hepowit2, Cheng Wu3, Clement Charenton1, Marilyn Leonard2, Mario H Bengtson2, Kanagalaghatta R Rajashankar4, Matthew S Sachs5, Christopher D Lima6, Claudio A P Joazeiro7.   

Abstract

The Ltn1 E3 ligase (listerin in mammals) has emerged as a paradigm for understanding ribosome-associated ubiquitylation. Ltn1 binds to 60S ribosomal subunits to ubiquitylate nascent polypeptides that become stalled during synthesis; among Ltn1's substrates are aberrant products of mRNA lacking stop codons [nonstop translation products (NSPs)]. Here, we report the reconstitution of NSP ubiquitylation in Neurospora crassa cell extracts. Upon translation in vitro, ribosome-stalled NSPs were ubiquitylated in an Ltn1-dependent manner, while still ribosome-associated. Furthermore, we provide biochemical evidence that the conserved N-terminal domain (NTD) plays a significant role in the binding of Ltn1 to 60S ribosomal subunits and that NTD mutations causing defective 60S binding also lead to defective NSP ubiquitylation, without affecting Ltn1's intrinsic E3 ligase activity. Finally, we report the crystal structure of the Ltn1 NTD at 2.4-Å resolution. The structure, combined with additional mutational studies, provides insight to NTD's role in binding stalled 60S subunits. Our findings show that Neurospora extracts can be used as a tool to dissect mechanisms underlying ribosome-associated protein quality control and are consistent with a model in which Ltn1 uses 60S subunits as adapters, at least in part via its NTD, to target stalled NSPs for ubiquitylation.

Entities:  

Keywords:  Listerin; Ltn1; RQC; ribosome; structure

Mesh:

Substances:

Year:  2016        PMID: 27385828      PMCID: PMC4961192          DOI: 10.1073/pnas.1605951113

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  32 in total

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Authors:  M A Andrade; C Perez-Iratxeta; C P Ponting
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3.  Dissociation by Pelota, Hbs1 and ABCE1 of mammalian vacant 80S ribosomes and stalled elongation complexes.

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Journal:  EMBO J       Date:  2011-03-29       Impact factor: 11.598

4.  Cdc48-associated complex bound to 60S particles is required for the clearance of aberrant translation products.

Authors:  Quentin Defenouillère; Yanhua Yao; John Mouaikel; Abdelkader Namane; Aurélie Galopier; Laurence Decourty; Antonia Doyen; Christophe Malabat; Cosmin Saveanu; Alain Jacquier; Micheline Fromont-Racine
Journal:  Proc Natl Acad Sci U S A       Date:  2013-03-11       Impact factor: 11.205

5.  Selenomethionyl proteins produced for analysis by multiwavelength anomalous diffraction (MAD): a vehicle for direct determination of three-dimensional structure.

Authors:  W A Hendrickson; J R Horton; D M LeMaster
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6.  Translation of CGA codon repeats in yeast involves quality control components and ribosomal protein L1.

Authors:  Daniel P Letzring; Andrew S Wolf; Christina E Brule; Elizabeth J Grayhack
Journal:  RNA       Date:  2013-07-03       Impact factor: 4.942

7.  Structure and assembly pathway of the ribosome quality control complex.

Authors:  Sichen Shao; Alan Brown; Balaji Santhanam; Ramanujan S Hegde
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8.  A ribosome-bound quality control complex triggers degradation of nascent peptides and signals translation stress.

Authors:  Onn Brandman; Jacob Stewart-Ornstein; Daisy Wong; Adam Larson; Christopher C Williams; Gene-Wei Li; Sharleen Zhou; David King; Peter S Shen; Jimena Weibezahn; Joshua G Dunn; Silvi Rouskin; Toshifumi Inada; Adam Frost; Jonathan S Weissman
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Authors:  Jens Lykke-Andersen; Eric J Bennett
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  16 in total

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Journal:  J Mol Biol       Date:  2019-06-11       Impact factor: 5.469

3.  The cell free protein synthesis system from the model filamentous fungus Neurospora crassa.

Authors:  Cheng Wu; Ananya Dasgupta; Lunda Shen; Deborah Bell-Pedersen; Matthew S Sachs
Journal:  Methods       Date:  2017-12-30       Impact factor: 3.608

Review 4.  Detection and Degradation of Stalled Nascent Chains via Ribosome-Associated Quality Control.

Authors:  Cole S Sitron; Onn Brandman
Journal:  Annu Rev Biochem       Date:  2020-06-20       Impact factor: 23.643

Review 5.  LISTERIN E3 Ubiquitin Ligase and Ribosome-Associated Quality Control (RQC) Mechanism.

Authors:  Ribhav Mishra; Anurag Bansal; Amit Mishra
Journal:  Mol Neurobiol       Date:  2021-09-29       Impact factor: 5.590

Review 6.  Ribosome-associated quality-control mechanisms from bacteria to humans.

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Journal:  Mol Cell       Date:  2022-04-21       Impact factor: 19.328

Review 7.  Mechanisms and functions of ribosome-associated protein quality control.

Authors:  Claudio A P Joazeiro
Journal:  Nat Rev Mol Cell Biol       Date:  2019-06       Impact factor: 94.444

8.  In vitro analysis of RQC activities provides insights into the mechanism and function of CAT tailing.

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10.  Protein quality control degron-containing substrates are differentially targeted in the cytoplasm and nucleus by ubiquitin ligases.

Authors:  Christopher M Hickey; Carolyn Breckel; Mengwen Zhang; William C Theune; Mark Hochstrasser
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