Reconstitution of the Human Nuclear RNA Exosome.


Journal

Methods in molecular biology (Clifton, N.J.)
ISSN: 1940-6029
Titre abrégé: Methods Mol Biol
Pays: United States
ID NLM: 9214969

Informations de publication

Date de publication:
2020
Historique:
entrez: 27 11 2019
pubmed: 27 11 2019
medline: 15 12 2020
Statut: ppublish

Résumé

We describe procedures to clone, express, and reconstitute an active human nuclear RNA exosome. Individual recombinant subunits are expressed from E. coli and successfully reconstituted into the nuclear complex, which contains the noncatalytic nine-subunit exosome core, the endoribonuclease and exoribonuclease DIS3, the distributive exoribonuclease EXOSC10, the cofactors C1D and MPP6, and the RNA helicase MTR4.

Identifiants

pubmed: 31768991
doi: 10.1007/978-1-4939-9822-7_23
pmc: PMC8584190
mid: NIHMS1750572
doi:

Substances chimiques

Protein Subunits 0
RNA, Nuclear 0
RNA-Binding Proteins 0
Recombinant Proteins 0
RNA 63231-63-0
Endoribonucleases EC 3.1.-
Exoribonucleases EC 3.1.-
Exosome Multienzyme Ribonuclease Complex EC 3.1.-
RNA Helicases EC 3.6.4.13

Types de publication

Journal Article Research Support, N.I.H., Extramural

Langues

eng

Sous-ensembles de citation

IM

Pagination

467-489

Subventions

Organisme : NCI NIH HHS
ID : P30 CA008748
Pays : United States
Organisme : NIGMS NIH HHS
ID : R01 GM079196
Pays : United States
Organisme : NIGMS NIH HHS
ID : R35 GM118080
Pays : United States

Références

Houseley J, Tollervey D (2009) The many pathways of RNA degradation. Cell 136(4):763–776
doi: 10.1016/j.cell.2009.01.019 pubmed: 19239894
Januszyk K, Lima CD (2014) The eukaryotic RNA exosome. Curr Opin Struct Biol 24:132–140
doi: 10.1016/j.sbi.2014.01.011 pubmed: 24525139
Zinder JC, Lima CD (2017) Targeting RNA for processing or destruction by the eukaryotic RNA exosome and its cofactors. Genes Dev 31(2):88–100
doi: 10.1101/gad.294769.116 pubmed: 28202538 pmcid: 5322736
Januszyk K, Liu Q, Lima CD (2011) Activities of human RRP6 and structure of the human RRP6 catalytic domain. RNA 17(8):1566–1577
doi: 10.1261/rna.2763111 pubmed: 21705430 pmcid: 3153979
Wasmuth EV, Januszyk K, Lima CD (2014) Structure of an Rrp6-RNA exosome complex bound to poly(A) RNA. Nature 511(7510):435–439
doi: 10.1038/nature13406 pubmed: 25043052 pmcid: 4310248
Liu Q, Greimann JC, Lima CD (2006) Reconstitution, activities, and structure of the eukaryotic RNA exosome. Cell 127(6):1223–1237
doi: 10.1016/j.cell.2006.10.037 pubmed: 17174896
Wasmuth EV, Lima CD (2012) Exo- and endoribonucleolytic activities of yeast cytoplasmic and nuclear RNA exosomes are dependent on the noncatalytic core and central channel. Mol Cell 48(1):133–144
doi: 10.1016/j.molcel.2012.07.012 pubmed: 22902556 pmcid: 3472098
Dziembowski A, Lorentzen E, Conti E, Seraphin B (2007) A single subunit, Dis3, is essentially responsible for yeast exosome core activity. Nat Struct Mol Biol 14(1):15–22
doi: 10.1038/nsmb1184 pubmed: 17173052
Zinder JC, Wasmuth EV, Lima CD (2016) Nuclear RNA exosome at 3.1 a reveals substrate specificities, RNA paths, and allosteric inhibition of Rrp44/Dis3. Mol Cell 64(4):734–745
doi: 10.1016/j.molcel.2016.09.038 pubmed: 27818140 pmcid: 5115963
Makino DL, Conti E (2013) Structure determination of an 11-subunit exosome in complex with RNA by molecular replacement. Acta Crystallogr D Biol Crystallogr 69(Pt 11):2226–2235
doi: 10.1107/S0907444913011438 pubmed: 24189234 pmcid: 3817696
Makino DL, Schuch B, Stegmann E, Baumgartner M, Basquin C, Conti E (2015) RNA degradation paths in a 12-subunit nuclear exosome complex. Nature 524(7563):54–58
doi: 10.1038/nature14865 pubmed: 26222026
Chen CY, Gherzi R, Ong SE, Chan EL, Raijmakers R, Pruijn GJ, Stoecklin G, Moroni C, Mann M, Karin M (2001) AU binding proteins recruit the exosome to degrade ARE-containing mRNAs. Cell 107(4):451–464
doi: 10.1016/S0092-8674(01)00578-5 pubmed: 11719186
Lubas M, Christensen MS, Kristiansen MS, Domanski M, Falkenby LG, Lykke-Andersen S, Andersen JS, Dziembowski A, Jensen TH (2011) Interaction profiling identifies the human nuclear exosome targeting complex. Mol Cell 43(4):624–637
doi: 10.1016/j.molcel.2011.06.028 pubmed: 21855801
Andersen PR, Domanski M, Kristiansen MS, Storvall H, Ntini E, Verheggen C, Schein A, Bunkenborg J, Poser I, Hallais M, Sandberg R, Hyman A, LaCava J, Rout MP, Andersen JS, Bertrand E, Jensen TH (2013) The human cap-binding complex is functionally connected to the nuclear RNA exosome. Nat Struct Mol Biol 20(12):1367–1376
doi: 10.1038/nsmb.2703 pubmed: 24270879 pmcid: 3923317
Tomecki R, Kristiansen MS, Lykke-Andersen S, Chlebowski A, Larsen KM, Szczesny RJ, Drazkowska K, Pastula A, Andersen JS, Stepien PP, Dziembowski A, Jensen TH (2010) The human core exosome interacts with differentially localized processive RNases: hDIS3 and hDIS3L. EMBO J 29(14):2342–2357
doi: 10.1038/emboj.2010.121 pubmed: 20531386 pmcid: 2910271
Staals RH, Bronkhorst AW, Schilders G, Slomovic S, Schuster G, Heck AJ, Raijmakers R, Pruijn GJ (2010) Dis3-like 1: a novel exoribonuclease associated with the human exosome. EMBO J 29(14):2358–2367
doi: 10.1038/emboj.2010.122 pubmed: 20531389 pmcid: 2910272
Schneider C, Leung E, Brown J, Tollervey D (2009) The N-terminal PIN domain of the exosome subunit Rrp44 harbors endonuclease activity and tethers Rrp44 to the yeast core exosome. Nucleic Acids Res 37(4):1127–1140
doi: 10.1093/nar/gkn1020 pubmed: 19129231 pmcid: 2651783
Bonneau F, Basquin J, Ebert J, Lorentzen E, Conti E (2009) The yeast exosome functions as a macromolecular cage to channel RNA substrates for degradation. Cell 139(3):547–559
doi: 10.1016/j.cell.2009.08.042 pubmed: 19879841
Towler BP, Jones CI, Harper KL, Waldron JA, Newbury SF (2016) A novel role for the 3′-5′ exoribonuclease Dis3L2 in controlling cell proliferation and tissue growth. RNA Biol 13(12):1286–1299
doi: 10.1080/15476286.2016.1232238 pubmed: 27630034 pmcid: 5207379
Pirouz M, Du P, Munafo M, Gregory RI (2016) Dis3l2-mediated decay is a quality control pathway for noncoding RNAs. Cell Rep 16(7):1861–1873
doi: 10.1016/j.celrep.2016.07.025 pubmed: 27498873 pmcid: 4998061
Pashler AL, Towler BP, Jones CI, Newbury SF (2016) The roles of the exoribonucleases DIS3L2 and XRN1 in human disease. Biochem Soc Trans 44(5):1377–1384
doi: 10.1042/BST20160107 pubmed: 27911720
Malecki M, Viegas SC, Carneiro T, Golik P, Dressaire C, Ferreira MG, Arraiano CM (2013) The exoribonuclease Dis3L2 defines a novel eukaryotic RNA degradation pathway. EMBO J 32(13):1842–1854
doi: 10.1038/emboj.2013.63 pubmed: 23503588 pmcid: 3981172
Faehnle CR, Walleshauser J, Joshua-Tor L (2014) Mechanism of Dis3l2 substrate recognition in the Lin28-let-7 pathway. Nature 514(7521):252–256
doi: 10.1038/nature13553 pubmed: 25119025 pmcid: 4192074
Ustianenko D, Hrossova D, Potesil D, Chalupnikova K, Hrazdilova K, Pachernik J, Cetkovska K, Uldrijan S, Zdrahal Z, Vanacova S (2013) Mammalian DIS3L2 exoribonuclease targets the uridylated precursors of let-7 miRNAs. RNA 19(12):1632–1638
doi: 10.1261/rna.040055.113 pubmed: 24141620 pmcid: 3884668
Domanski M, Upla P, Rice WJ, Molloy KR, Ketaren NE, Stokes DL, Jensen TH, Rout MP, LaCava J (2016) Purification and analysis of endogenous human RNA exosome complexes. RNA 22(9):1467–1475
doi: 10.1261/rna.057760.116 pubmed: 27402899 pmcid: 4986900
Schuch B, Feigenbutz M, Makino DL, Falk S, Basquin C, Mitchell P, Conti E (2014) The exosome-binding factors Rrp6 and Rrp47 form a composite surface for recruiting the Mtr4 helicase. EMBO J 33(23):2829–2846
doi: 10.15252/embj.201488757 pubmed: 25319414 pmcid: 4282559
Mitchell P, Petfalski E, Houalla R, Podtelejnikov A, Mann M, Tollervey D (2003) Rrp47p is an exosome-associated protein required for the 3′ processing of stable RNAs. Mol Cell Biol 23(19):6982–6992
doi: 10.1128/MCB.23.19.6982-6992.2003 pubmed: 12972615 pmcid: 193929
Mitchell P (2010) Rrp47 and the function of the Sas10/C1D domain. Biochem Soc Trans 38(4):1088–1092
doi: 10.1042/BST0381088 pubmed: 20659009
Garland W, Feigenbutz M, Turner M, Mitchell P (2013) Rrp47 functions in RNA surveillance and stable RNA processing when divorced from the exoribonuclease and exosome-binding domains of Rrp6. RNA 19(12):1659–1668
doi: 10.1261/rna.039388.113 pubmed: 24106327 pmcid: 3884647
Feigenbutz M, Jones R, Besong TM, Harding SE, Mitchell P (2013) Assembly of the yeast exoribonuclease Rrp6 with its associated cofactor Rrp47 occurs in the nucleus and is critical for the controlled expression of Rrp47. J Biol Chem 288(22):15959–15970
doi: 10.1074/jbc.M112.445759 pubmed: 23580640 pmcid: 3668751
Feigenbutz M, Garland W, Turner M, Mitchell P (2013) The exosome cofactor Rrp47 is critical for the stability and normal expression of its associated exoribonuclease Rrp6 in Saccharomyces cerevisiae. PLoS One 8(11):e80752
doi: 10.1371/journal.pone.0080752 pubmed: 24224060 pmcid: 3818262
Wasmuth EV, Zinder JC, Zattas D, Das M, Lima CD (2017) Structure and reconstitution of yeast Mpp6-nuclear exosome complexes reveals that Mpp6 stimulates RNA decay and recruits the Mtr4 helicase. elife 6:213
Schilders G, Raijmakers R, Raats JM, Pruijn GJ (2005) MPP6 is an exosome-associated RNA-binding protein involved in 5.8S rRNA maturation. Nucleic Acids Res 33(21):6795–6804
doi: 10.1093/nar/gki982 pubmed: 16396833 pmcid: 1310903
Falk S, Bonneau F, Ebert J, Kogel A, Conti E (2017) Mpp6 incorporation in the nuclear exosome contributes to RNA Channeling through the Mtr4 helicase. Cell Rep 20(10):2279–2286
doi: 10.1016/j.celrep.2017.08.033 pubmed: 28877463 pmcid: 5603729
Weick EM, Puno MR, Januszyk K, Zinder JC, DiMattia MA, Lima CD (2018) Helicase-dependent RNA decay illuminated by a cryo-EM structure of a human nuclear RNA exosome-MTR4 complex. Cell. 173(7): 1663–1677
Mossessova E, Lima CD (2000) Ulp1-SUMO crystal structure and genetic analysis reveal conserved interactions and a regulatory element essential for cell growth in yeast. Mol Cell 5(5):865–876
doi: 10.1016/S1097-2765(00)80326-3 pubmed: 10882122

Auteurs

Kurt Januszyk (K)

Structural Biology Program, Sloan Kettering Institute, Memorial Sloan Kettering Cancer Center, New York, NY, USA.

Eva-Maria Weick (EM)

Structural Biology Program, Sloan Kettering Institute, Memorial Sloan Kettering Cancer Center, New York, NY, USA.

Christopher D Lima (CD)

Structural Biology Program, Sloan Kettering Institute, Memorial Sloan Kettering Cancer Center, New York, NY, USA. limac@mskcc.org.
Howard Hughes Medical Institute, New York, NY, USA. limac@mskcc.org.

Articles similaires

[Redispensing of expensive oral anticancer medicines: a practical application].

Lisanne N van Merendonk, Kübra Akgöl, Bastiaan Nuijen
1.00
Humans Antineoplastic Agents Administration, Oral Drug Costs Counterfeit Drugs

Smoking Cessation and Incident Cardiovascular Disease.

Jun Hwan Cho, Seung Yong Shin, Hoseob Kim et al.
1.00
Humans Male Smoking Cessation Cardiovascular Diseases Female
Humans United States Aged Cross-Sectional Studies Medicare Part C
1.00
Humans Yoga Low Back Pain Female Male

Classifications MeSH