Literature DB >> 12414709

Calcium binding to calmodulin mutants monitored by domain-specific intrinsic phenylalanine and tyrosine fluorescence.

Wendy S VanScyoc1, Brenda R Sorensen, Elena Rusinova, William R Laws, J B Alexander Ross, Madeline A Shea.   

Abstract

Cooperative calcium binding to the two homologous domains of calmodulin (CaM) induces conformational changes that regulate its association with and activation of numerous cellular target proteins. Calcium binding to the pair of high-affinity sites (III and IV in the C-domain) can be monitored by observing calcium-dependent changes in intrinsic tyrosine fluorescence intensity (lambda(ex)/lambda(em) of 277/320 nm). However, calcium binding to the low-affinity sites (I and II in the N-domain) is more difficult to measure with optical spectroscopy because that domain of CaM does not contain tryptophan or tyrosine. We recently demonstrated that calcium-dependent changes in intrinsic phenylalanine fluorescence (lambda(ex)/lambda(em) of 250/280 nm) of an N-domain fragment of CaM reflect occupancy of sites I and II (VanScyoc, W. S., and M. A. Shea, 2001, Protein Sci. 10:1758-1768). Using steady-state and time-resolved fluorescence methods, we now show that these excitation and emission wavelength pairs for phenylalanine and tyrosine fluorescence can be used to monitor equilibrium calcium titrations of the individual domains in full-length CaM. Calcium-dependent changes in phenylalanine fluorescence specifically indicate ion occupancy of sites I and II in the N-domain because phenylalanine residues in the C-domain are nonemissive. Tyrosine emission from the C-domain does not interfere with phenylalanine fluorescence signals from the N-domain. This is the first demonstration that intrinsic fluorescence may be used to monitor calcium binding to each domain of CaM. In this way, we also evaluated how mutations of two residues (Arg74 and Arg90) located between sites II and III can alter the calcium-binding properties of each of the domains. The mutation R74A caused an increase in the calcium affinity of sites I and II in the N-domain. The mutation R90A caused an increase in calcium affinity of sites III and IV in the C-domain whereas R90G caused an increase in calcium affinity of sites in both domains. This approach holds promise for exploring the linked energetics of calcium binding and target recognition.

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Year:  2002        PMID: 12414709      PMCID: PMC1302361          DOI: 10.1016/S0006-3495(02)75286-7

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  54 in total

1.  Spectroscopic characterization of a high-affinity calmodulin-target peptide hybrid molecule.

Authors:  S R Martin; P M Bayley; S E Brown; T Porumb; M Zhang; M Ikura
Journal:  Biochemistry       Date:  1996-03-19       Impact factor: 3.162

2.  Calcium binding decreases the stokes radius of calmodulin and mutants R74A, R90A, and R90G.

Authors:  B R Sorensen; M A Shea
Journal:  Biophys J       Date:  1996-12       Impact factor: 4.033

Review 3.  Ca(2+)-binding and structural dynamics in the functions of calmodulin.

Authors:  H Weinstein; E L Mehler
Journal:  Annu Rev Physiol       Date:  1994       Impact factor: 19.318

4.  Solution structure of calcium-free calmodulin.

Authors:  H Kuboniwa; N Tjandra; S Grzesiek; H Ren; C B Klee; A Bax
Journal:  Nat Struct Biol       Date:  1995-09

5.  Diverse essential functions revealed by complementing yeast calmodulin mutants.

Authors:  Y Ohya; D Botstein
Journal:  Science       Date:  1994-02-18       Impact factor: 47.728

6.  Quantitative endoproteinase GluC footprinting of cooperative Ca2+ binding to calmodulin: proteolytic susceptibility of E31 and E87 indicates interdomain interactions.

Authors:  S Pedigo; M A Shea
Journal:  Biochemistry       Date:  1995-01-31       Impact factor: 3.162

7.  Resolution of structural changes associated with calcium activation of calmodulin using frequency domain fluorescence spectroscopy.

Authors:  Y Yao; C Schöneich; T C Squier
Journal:  Biochemistry       Date:  1994-06-28       Impact factor: 3.162

Review 8.  Molecular and structural basis of target recognition by calmodulin.

Authors:  A Crivici; M Ikura
Journal:  Annu Rev Biophys Biomol Struct       Date:  1995

9.  Calcium-induced interactions of calmodulin domains revealed by quantitative thrombin footprinting of Arg37 and Arg106.

Authors:  M A Shea; A S Verhoeven; S Pedigo
Journal:  Biochemistry       Date:  1996-03-05       Impact factor: 3.162

10.  Discontinuous equilibrium titrations of cooperative calcium binding to calmodulin monitored by 1-D 1H-nuclear magnetic resonance spectroscopy.

Authors:  S Pedigo; M A Shea
Journal:  Biochemistry       Date:  1995-08-22       Impact factor: 3.162

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  52 in total

1.  Correlating calcium binding, Förster resonance energy transfer, and conformational change in the biosensor TN-XXL.

Authors:  Anselm Geiger; Luigi Russo; Thomas Gensch; Thomas Thestrup; Stefan Becker; Karl-Peter Hopfner; Christian Griesinger; Gregor Witte; Oliver Griesbeck
Journal:  Biophys J       Date:  2012-05-15       Impact factor: 4.033

2.  Relative Cosolute Size Influences the Kinetics of Protein-Protein Interactions.

Authors:  Laurel Hoffman; Xu Wang; Hugo Sanabria; Margaret S Cheung; John A Putkey; M Neal Waxham
Journal:  Biophys J       Date:  2015-08-04       Impact factor: 4.033

3.  Prediction of volatile anesthetic binding sites in proteins.

Authors:  John H Streiff; Thomas W Allen; Elena Atanasova; Nenad Juranic; Slobodan Macura; Alan R Penheiter; Keith A Jones
Journal:  Biophys J       Date:  2006-07-28       Impact factor: 4.033

4.  Role of Ca2+ activation and bilobal structure of calmodulin in nuclear and nucleolar localization.

Authors:  Richard Thorogate; Katalin Török
Journal:  Biochem J       Date:  2007-02-15       Impact factor: 3.857

5.  Recognition of β-calcineurin by the domains of calmodulin: thermodynamic and structural evidence for distinct roles.

Authors:  Susan E O'Donnell; Liping Yu; C Andrew Fowler; Madeline A Shea
Journal:  Proteins       Date:  2010-12-06

6.  Thermodynamic linkage between calmodulin domains binding calcium and contiguous sites in the C-terminal tail of Ca(V)1.2.

Authors:  T Idil Apak Evans; Johannes W Hell; Madeline A Shea
Journal:  Biophys Chem       Date:  2011-06-24       Impact factor: 2.352

7.  Calmodulin mutations associated with recurrent cardiac arrest in infants.

Authors:  Lia Crotti; Christopher N Johnson; Elisabeth Graf; Gaetano M De Ferrari; Bettina F Cuneo; Marc Ovadia; John Papagiannis; Michael D Feldkamp; Subodh G Rathi; Jennifer D Kunic; Matteo Pedrazzini; Thomas Wieland; Peter Lichtner; Britt-Maria Beckmann; Travis Clark; Christian Shaffer; D Woodrow Benson; Stefan Kääb; Thomas Meitinger; Tim M Strom; Walter J Chazin; Peter J Schwartz; Alfred L George
Journal:  Circulation       Date:  2013-02-06       Impact factor: 29.690

8.  Acidic/IQ motif regulator of calmodulin.

Authors:  John A Putkey; M Neal Waxham; Tara R Gaertner; Kari J Brewer; Michael Goldsmith; Yoshihisa Kubota; Quinn K Kleerekoper
Journal:  J Biol Chem       Date:  2007-11-08       Impact factor: 5.157

9.  A simple model-free method for direct assessment of fluorescent ligand binding by linear spectral summation.

Authors:  Oktay K Gasymov; Adil R Abduragimov; Ben J Glasgow
Journal:  J Fluoresc       Date:  2013-09-18       Impact factor: 2.217

10.  Calcium-dependent association of calmodulin with the rubella virus nonstructural protease domain.

Authors:  Yubin Zhou; Wen-Pin Tzeng; Hing-Cheung Wong; Yiming Ye; Jie Jiang; Yanyi Chen; Yun Huang; Suganthi Suppiah; Teryl K Frey; Jenny J Yang
Journal:  J Biol Chem       Date:  2010-01-19       Impact factor: 5.157

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