Mutational analysis of human profilin I reveals a second PI(4,5)-P2 binding site neighbouring the poly(L-proline) binding site

被引:38
|
作者
Lambrechts, Anja [1 ]
Jonckheere, Veronique
Dewitte, Daisy
Vandekerckhove, Joel
Ampe, Christophe
机构
[1] Univ Ghent VIB, Dept Med Prot Res VIB09, Ghent, Belgium
来源
BMC BIOCHEMISTRY | 2002年 / 3卷
关键词
D O I
10.1186/1472-2091-3-12
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Background: Profilin is a small cytoskeletal protein which interacts with actin, proline-rich proteins and phosphatidylinositol 4,5-bisphosphate (PI(4,5)-P-2). Crystallography, NMR and mutagenesis of vertebrate profilins have revealed the amino acid residues that are responsible for the interactions with actin and poly(L-proline) peptides. Although Arg88 of human profilin I was shown to be involved in PI(4,5)-P-2-binding, it was suggested that carboxy terminal basic residues may be involved as well. Results : Using site directed mutagenesis we have refined the PI(4,5)-P-2 binding site of human profilin I. For each mutant we assessed the stability and studied the interactions with actin, a proline-rich peptide and PI(4,5)-P-2 micelles. We identified at least two PI(4,5)-P-2-binding regions in human profilin I. As expected, one region comprises Arg88 and overlaps with the actin binding site. The second region involves Arg136 in the carboxy terminal helix and neighbours the poly(L-proline) binding site. In addition, we show that adding a small protein tag to the carboxy terminus of profilin strongly reduces binding to poly(L-proline), suggesting local conformational changes of the carboxy terminal a-helix may have dramatic effects on ligand binding. Conclusions : The involvement of the two terminal a-helices of profilin in ligand binding imposes important structural constraints upon the functions of this region. Our data suggest a model in which the competitive interactions between PI(4,5)-P-2 and actin and PI(4,5)-P-2 and poly(L-proline) regulate profilin functions.
引用
收藏
页数:12
相关论文
共 42 条
  • [21] Characterization of the Lipid Binding Properties of Otoferlin Reveals Specific Interactions between PI(4,5)P2 and the C2C and C2F Domains
    Padmanarayana, Murugesh
    Hams, Nicole
    Speight, Lee C.
    Petersson, E. James
    Mehl, Ryan A.
    Johnson, Colin P.
    BIOCHEMISTRY, 2014, 53 (30) : 5023 - 5033
  • [22] Dynamic Studies of the Tumour Suppressor Protien PTEN Binding to Membranes Composed PI(4,5)P2 and Various Anionic Lipids
    Neumann, Brittany M.
    Ross, Alonzo
    Gericke, Arne
    BIOPHYSICAL JOURNAL, 2015, 108 (02) : 252A - 252A
  • [23] PI(4,5)P2 binding sites in the Ebola virus matrix protein VP40 modulate assembly and budding
    Johnson, Kristen A.
    Budicini, Melissa R.
    Bhattarai, Nisha
    Sharma, Tej
    Urata, Sarah
    Gerstman, Bernard S.
    Chapagain, Prem P.
    Li, Sheng
    V. Stahelin, Robert
    JOURNAL OF LIPID RESEARCH, 2024, 65 (03)
  • [24] Binding Affinities of WT and H93R PTEN to Lipid Membranes Containing PS and PI(4,5)P2
    Shenoy, Siddharth
    Gericke, Arne
    Ross, Alonzo
    Loesche, Mathias
    BIOPHYSICAL JOURNAL, 2011, 100 (03) : 525 - 525
  • [25] Characterization of constitutive and inducible transcription factors binding to the P2 NF-AT site in the human interleukin-4 promoter
    LiWeber, M
    Salgame, P
    Hu, CG
    Krammer, PH
    GENE, 1997, 188 (02) : 253 - 260
  • [26] The second PI(3,5)P2 binding site in the S0 helix of KCNQ1 stabilizes PIP2-at the primary PI1 site with potential consequences on intermediate-to-open state transition
    Dellin, Maurice
    Rohrbeck, Ina
    Asrani, Purva
    Schreiber, Julian A.
    Ritter, Nadine
    Glorius, Frank
    Wuensch, Bernhard
    Budde, Thomas
    Temme, Louisa
    Struenker, Timo
    Stallmeyer, Birgit
    Tuettelmann, Frank
    Meuth, Sven G.
    Spehr, Marc
    Matschke, Johann
    Steinbicker, Andrea
    Gatsogiannis, Christos
    Stoll, Raphael
    Strutz-Seebohm, Nathalie
    Seebohm, Guiscard
    BIOLOGICAL CHEMISTRY, 2023, 404 (04) : 241 - 254
  • [27] Effects of PI(4,5)P2 concentration on the F-BAR domain membrane binding as revealed by coarse-grained simulations
    Stanishneva-Konovalova, Tatiana B.
    Sokolova, Olga S.
    PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 2019, 87 (07) : 561 - 568
  • [28] SPECIFICITY IN THE BINDING OF INHIBITORS TO THE ACTIVE-SITE OF HUMAN PRIMATE ASPARTIC PROTEINASES - ANALYSIS OF P2-P1-P1'-P2' VARIATION
    RAO, CM
    SCARBOROUGH, PE
    KAY, J
    BATLEY, B
    RAPUNDALO, S
    KLUTCHKO, S
    TAYLOR, MD
    LUNNEY, EA
    HUMBLET, CC
    DUNN, BM
    JOURNAL OF MEDICINAL CHEMISTRY, 1993, 36 (18) : 2614 - 2620
  • [29] The matrix domain of the Gag protein from avian sarcoma virus contains a PI(4,5)P2-binding site that targets Gag to the cell periphery
    Watanabe, Susan M.
    Medina, Gisselle N.
    Eastep, Gunnar N.
    Ghanam, Ruba H.
    Vlach, Jiri
    Saad, Jamil S.
    Carter, Carol A.
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2018, 293 (49) : 18841 - 18853
  • [30] Molecular Determinants of Phosphatidylinositol 4,5-Bisphosphate (PI(4,5)P2) Binding to Transient Receptor Potential V1 (TRPV1) Channels
    Poblete, Horacio
    Oyarzun, Ingrid
    Olivero, Pablo
    Comer, Jeffrey
    Zuniga, Matias
    Sepulveda, Ronnina V.
    Baez-Nieto, David
    Gonzalez Leon, Carlos
    Gonzalez-Nilo, Fernando
    Latorre, Ramon
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2015, 290 (04) : 2086 - 2098