Multivalent binding of formin-binding protein 21 (FBP21)-Tandem-WW domains fosters protein recognition in the pre-spliceosome.

Klippel S, Wieczorek M, Schuemann M, Krause E, Marg B, Seidel T, Meyer T, Knapp E-W, Freund C (2011)
Journal of Biological Chemistry 286(44): 38478-38487.

Zeitschriftenaufsatz | Veröffentlicht | Englisch
 
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Autor*in
Klippel, Stefan; Wieczorek, Marek; Schuemann, Michael; Krause, Eberhard; Marg, Berenice; Seidel, Thorsten; Meyer, Tim; Knapp, Ernst-Walter; Freund, Christian
Erscheinungsjahr
2011
Zeitschriftentitel
Journal of Biological Chemistry
Band
286
Ausgabe
44
Seite(n)
38478-38487
ISSN
0021-9258
eISSN
1083-351X
Page URI
https://pub.uni-bielefeld.de/record/2379923

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Klippel S, Wieczorek M, Schuemann M, et al. Multivalent binding of formin-binding protein 21 (FBP21)-Tandem-WW domains fosters protein recognition in the pre-spliceosome. Journal of Biological Chemistry. 2011;286(44):38478-38487.
Klippel, S., Wieczorek, M., Schuemann, M., Krause, E., Marg, B., Seidel, T., Meyer, T., et al. (2011). Multivalent binding of formin-binding protein 21 (FBP21)-Tandem-WW domains fosters protein recognition in the pre-spliceosome. Journal of Biological Chemistry, 286(44), 38478-38487. https://doi.org/10.1074/jbc.M111.265710
Klippel, Stefan, Wieczorek, Marek, Schuemann, Michael, Krause, Eberhard, Marg, Berenice, Seidel, Thorsten, Meyer, Tim, Knapp, Ernst-Walter, and Freund, Christian. 2011. “Multivalent binding of formin-binding protein 21 (FBP21)-Tandem-WW domains fosters protein recognition in the pre-spliceosome.”. Journal of Biological Chemistry 286 (44): 38478-38487.
Klippel, S., Wieczorek, M., Schuemann, M., Krause, E., Marg, B., Seidel, T., Meyer, T., Knapp, E. - W., and Freund, C. (2011). Multivalent binding of formin-binding protein 21 (FBP21)-Tandem-WW domains fosters protein recognition in the pre-spliceosome. Journal of Biological Chemistry 286, 38478-38487.
Klippel, S., et al., 2011. Multivalent binding of formin-binding protein 21 (FBP21)-Tandem-WW domains fosters protein recognition in the pre-spliceosome. Journal of Biological Chemistry, 286(44), p 38478-38487.
S. Klippel, et al., “Multivalent binding of formin-binding protein 21 (FBP21)-Tandem-WW domains fosters protein recognition in the pre-spliceosome.”, Journal of Biological Chemistry, vol. 286, 2011, pp. 38478-38487.
Klippel, S., Wieczorek, M., Schuemann, M., Krause, E., Marg, B., Seidel, T., Meyer, T., Knapp, E.-W., Freund, C.: Multivalent binding of formin-binding protein 21 (FBP21)-Tandem-WW domains fosters protein recognition in the pre-spliceosome. Journal of Biological Chemistry. 286, 38478-38487 (2011).
Klippel, Stefan, Wieczorek, Marek, Schuemann, Michael, Krause, Eberhard, Marg, Berenice, Seidel, Thorsten, Meyer, Tim, Knapp, Ernst-Walter, and Freund, Christian. “Multivalent binding of formin-binding protein 21 (FBP21)-Tandem-WW domains fosters protein recognition in the pre-spliceosome.”. Journal of Biological Chemistry 286.44 (2011): 38478-38487.

8 Zitationen in Europe PMC

Daten bereitgestellt von Europe PubMed Central.

Multiple WW domains of Nedd4-1 undergo conformational exchange that is quenched upon peptide binding.
Panwalkar V, Neudecker P, Willbold D, Dingley AJ., FEBS Lett 591(11), 2017
PMID: 28471472
A new role for FBP21 as regulator of Brr2 helicase activity.
Henning LM, Santos KF, Sticht J, Jehle S, Lee CT, Wittwer M, Urlaub H, Stelzl U, Wahl MC, Freund C., Nucleic Acids Res 45(13), 2017
PMID: 28838205
Structural basis for the recognition of spliceosomal SmN/B/B' proteins by the RBM5 OCRE domain in splicing regulation.
Mourão A, Bonnal S, Soni K, Warner L, Bordonné R, Valcárcel J, Sattler M., Elife 5(), 2016
PMID: 27894420
Versatile communication strategies among tandem WW domain repeats.
Dodson EJ, Fishbain-Yoskovitz V, Rotem-Bamberger S, Schueler-Furman O., Exp Biol Med (Maywood) 240(3), 2015
PMID: 25710931
Exploring monovalent and multivalent peptides for the inhibition of FBP21-tWW.
Henning LM, Bhatia S, Bertazzon M, Marczynke M, Seitz O, Volkmer R, Haag R, Freund C., Beilstein J Org Chem 11(), 2015
PMID: 26124874
Peptide-polymer ligands for a tandem WW-domain, an adaptive multivalent protein-protein interaction: lessons on the thermodynamic fitness of flexible ligands.
Koschek K, Durmaz V, Krylova O, Wieczorek M, Gupta S, Richter M, Bujotzek A, Fischer C, Haag R, Freund C, Weber M, Rademann J., Beilstein J Org Chem 11(), 2015
PMID: 26124884
Ligand binding to WW tandem domains of YAP2 transcriptional regulator is under negative cooperativity.
Schuchardt BJ, Mikles DC, Hoang LM, Bhat V, McDonald CB, Sudol M, Farooq A., FEBS J 281(24), 2014
PMID: 25283809

39 References

Daten bereitgestellt von Europe PubMed Central.

The structure and function of proline recognition domains.
Zarrinpar A, Bhattacharyya RP, Lim WA., Sci. STKE 2003(179), 2003
PMID: 12709533
Recognition of proline-rich motifs by protein-protein-interaction domains.
Ball LJ, Kuhne R, Schneider-Mergener J, Oschkinat H., Angew. Chem. Int. Ed. Engl. 44(19), 2005
PMID: 15880548
The GYF domain.
Kofler MM, Freund C., FEBS J. 273(2), 2006
PMID: 16403013
Structure and function of the WW domain.
Sudol M., Prog. Biophys. Mol. Biol. 65(1-2), 1996
PMID: 9029943
SH3 domains: complexity in moderation.
Mayer BJ., J. Cell. Sci. 114(Pt 7), 2001
PMID: 11256992
WW domains provide a platform for the assembly of multiprotein networks.
Ingham RJ, Colwill K, Howard C, Dettwiler S, Lim CS, Yu J, Hersi K, Raaijmakers J, Gish G, Mbamalu G, Taylor L, Yeung B, Vassilovski G, Amin M, Chen F, Matskova L, Winberg G, Ernberg I, Linding R, O'donnell P, Starostine A, Keller W, Metalnikov P, Stark C, Pawson T., Mol. Cell. Biol. 25(16), 2005
PMID: 16055720
Proline-rich sequence recognition: I. Marking GYF and WW domain assembly sites in early spliceosomal complexes.
Kofler M, Schuemann M, Merz C, Kosslick D, Schlundt A, Tannert A, Schaefer M, Luhrmann R, Krause E, Freund C., Mol. Cell Proteomics 8(11), 2009
PMID: 19483244
Structure and function of the two tandem WW domains of the pre-mRNA splicing factor FBP21 (formin-binding protein 21).
Huang X, Beullens M, Zhang J, Zhou Y, Nicolaescu E, Lesage B, Hu Q, Wu J, Bollen M, Shi Y., J. Biol. Chem. 284(37), 2009
PMID: 19592703
WW domain sequence activity relationships identified using ligand recognition propensities of 42 WW domains.
Otte L, Wiedemann U, Schlegel B, Pires JR, Beyermann M, Schmieder P, Krause G, Volkmer-Engert R, Schneider-Mergener J, Oschkinat H., Protein Sci. 12(3), 2003
PMID: 12592019
Mapping of C-termini of V-ATPase subunits by in vivo-FRET measurements.
Seidel T, Golldack D, Dietz KJ., FEBS Lett. 579(20), 2005
PMID: 16061227
Recognition sequences for the GYF domain reveal a possible spliceosomal function of CD2BP2.
Kofler M, Heuer K, Zech T, Freund C., J. Biol. Chem. 279(27), 2004
PMID: 15105431
The CCPN project: an interim report on a data model for the NMR community.
Fogh R, Ionides J, Ulrich E, Boucher W, Vranken W, Linge JP, Habeck M, Rieping W, Bhat TN, Westbrook J, Henrick K, Gilliland G, Berman H, Thornton J, Nilges M, Markley J, Laue E., Nat. Struct. Biol. 9(6), 2002
PMID: 12032555
Speeding up three-dimensional protein NMR experiments to a few minutes.
Schanda P, Van Melckebeke H, Brutscher B., J. Am. Chem. Soc. 128(28), 2006
PMID: 16834371
Backbone dynamics of a free and phosphopeptide-complexed Src homology 2 domain studied by 15N NMR relaxation.
Farrow NA, Muhandiram R, Singer AU, Pascal SM, Kay CM, Gish G, Shoelson SE, Pawson T, Forman-Kay JD, Kay LE., Biochemistry 33(19), 1994
PMID: 7514039

Brooks B., Bruccoleri R., Olafson B., States D., Swaminathan S., Karplus M.., 1983

MacKerell A., Bashford D., Bellott M., Dunbrack R., Evanseck J., Field M., Fischer S., Gao J., Guo H., Ha S., Joseph D., Kuchnir L., Kuczera K., Lau F., Mattos C., Michnick S., Ngo T., Nguyen D., Prodhom B., Reiher W., Roux B., Schlenkrich M., Smith J., Stote R., Straub J., Watanabe M., Wiorkiewicz-Kuczera J., Yin D., Karplus M.., 1998
Artificial cytochrome b: computer modeling and evaluation of redox potentials.
Popovic DM, Zaric SD, Rabenstein B, Knapp EW., J. Am. Chem. Soc. 123(25), 2001
PMID: 11414837
Understanding properties of cofactors in proteins: redox potentials of synthetic cytochromes b.
Gamiz-Hernandez AP, Kieseritzky G, Galstyan AS, Demir-Kavuk O, Knapp EW., Chemphyschem 11(6), 2010
PMID: 20411561
Proline-rich sequence recognition: II. Proteomics analysis of Tsg101 ubiquitin-E2-like variant (UEV) interactions.
Schlundt A, Sticht J, Piotukh K, Kosslick D, Jahnke N, Keller S, Schuemann M, Krause E, Freund C., Mol. Cell Proteomics 8(11), 2009
PMID: 19542561
Biochemical and NMR analyses of an SF3b155-p14-U2AF-RNA interaction network involved in branch point definition during pre-mRNA splicing.
Spadaccini R, Reidt U, Dybkov O, Will C, Frank R, Stier G, Corsini L, Wahl MC, Luhrmann R, Sattler M., RNA 12(3), 2006
PMID: 16495236
Release of SF3 from the intron branchpoint activates the first step of pre-mRNA splicing.
Lardelli RM, Thompson JX, Yates JR 3rd, Stevens SW., RNA 16(3), 2010
PMID: 20089683
Borrelidin, a potent antimalarial: stage-specific inhibition profile of synchronized cultures of Plasmodium falciparum.
Ishiyama A, Iwatsuki M, Namatame M, Nishihara-Tsukashima A, Sunazuka T, Takahashi Y, Omura S, Otoguro K., J. Antibiot. 64(5), 2011
PMID: 21343942
Spliceostatin A blocks angiogenesis by inhibiting global gene expression including VEGF.
Furumai R, Uchida K, Komi Y, Yoneyama M, Ishigami K, Watanabe H, Kojima S, Yoshida M., Cancer Sci. 101(11), 2010
PMID: 20726856
Structural features and ligand binding properties of tandem WW domains from YAP and TAZ, nuclear effectors of the Hippo pathway.
Webb C, Upadhyay A, Giuntini F, Eggleston I, Furutani-Seiki M, Ishima R, Bagby S., Biochemistry 50(16), 2011
PMID: 21417403
Coupling of tandem Smad ubiquitination regulatory factor (Smurf) WW domains modulates target specificity.
Chong PA, Lin H, Wrana JL, Forman-Kay JD., Proc. Natl. Acad. Sci. U.S.A. 107(43), 2010
PMID: 20937913
Specificity and autoregulation of Notch binding by tandem WW domains in suppressor of Deltex.
Jennings MD, Blankley RT, Baron M, Golovanov AP, Avis JM., J. Biol. Chem. 282(39), 2007
PMID: 17656366
Solution structure and ligand recognition of the WW domain pair of the yeast splicing factor Prp40.
Wiesner S, Stier G, Sattler M, Macias MJ., J. Mol. Biol. 324(4), 2002
PMID: 12460579
The spliceosome: design principles of a dynamic RNP machine.
Wahl MC, Will CL, Luhrmann R., Cell 136(4), 2009
PMID: 19239890
Arrangement of RNA and proteins in the spliceosomal U1 small nuclear ribonucleoprotein particle.
Stark H, Dube P, Luhrmann R, Kastner B., Nature 409(6819), 2001
PMID: 11206553
The role of the proline-rich domain of Ssdp1 in the modular architecture of the vertebrate head organizer.
Enkhmandakh B, Makeyev AV, Bayarsaihan D., Proc. Natl. Acad. Sci. U.S.A. 103(31), 2006
PMID: 16864769
Structure of a WW domain containing fragment of dystrophin in complex with beta-dystroglycan.
Huang X, Poy F, Zhang R, Joachimiak A, Sudol M, Eck MJ., Nat. Struct. Biol. 7(8), 2000
PMID: 10932245
Structural basis for phosphoserine-proline recognition by group IV WW domains.
Verdecia MA, Bowman ME, Lu KP, Hunter T, Noel JP., Nat. Struct. Biol. 7(8), 2000
PMID: 10932246
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