Chemical Denaturants Smoothen Ruggedness on the Free Energy Landscape of Protein Folding

被引:8
|
作者
Malhotra, Pooja [1 ]
Jethva, Prashant N. [1 ]
Udgaonkar, Jayant B. [1 ]
机构
[1] Tata Inst Fundamental Res, Natl Ctr Biol Sci, Bengaluru 560065, India
关键词
HYDROGEN-EXCHANGE MECHANISM; CAVITY-CREATING MUTATIONS; INTERNAL-FRICTION; UNFOLDING REACTIONS; SPEED LIMIT; KINETICS; PATHWAYS; DYNAMICS; BARSTAR; THERMODYNAMICS;
D O I
10.1021/acs.biochem.7b00367
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
To characterize experimentally the ruggedness of the free energy landscape of protein folding is challenging, because the distributed small free energy barriers are usually Luc, dominated by one, or a few, large activation free energy barriers. LL This study delineates changes in the roughness of the free energy landScape by making use of the observation that a decrease in ruggedness is accompanied invariably by an increase in folding cooperativity. Flydrogeri, exchange (HX) coupled to mass spectrometry was used to detect transient sampling of local N energy minima and the global unfolded state on the free energy landscape of the small protein single-chain monellin. Under native conditions, local noncooperative opening result in interconversions between Boltzmann-distributed intermediate states, populated on an extremely rugged "uphill" energy landscape. The cooperativity of these iinerconversions was increased by selectively destabilizing the native state via mutations, and further by the addition of a chemical denaturant. The perturbation of stability aloneresulted in seven backbone amide sites exchanging cooperatively. The,size of the cooperatively exchanging and/or unfolding unit did not depend on the extent of protein destabilization. Only upon the addition of a denaturant to a deStabilized mutant variant did seven additional backbone amide sites,exchange cooperatively. Segmentwise analysis of the HX kinetics of the mutant variants further confirmed that the observed increase in cooperativity was due to the smoothing of the ruggedness of the free energy landscape of folding of the protein by the chemical denaturant.
引用
收藏
页码:4053 / 4063
页数:11
相关论文
共 50 条
  • [31] Theory of protein folding: The energy landscape perspective
    Onuchic, JN
    LutheySchulten, Z
    Wolynes, PG
    ANNUAL REVIEW OF PHYSICAL CHEMISTRY, 1997, 48 : 545 - 600
  • [32] Fast protein folding on downhill energy landscape
    Cavalli, A
    Haberthür, U
    Paci, E
    Caflisch, A
    PROTEIN SCIENCE, 2003, 12 (08) : 1801 - 1803
  • [33] Protein folding simulations in a deformed energy landscape
    U.H.E. Hansmann
    The European Physical Journal B - Condensed Matter and Complex Systems, 1999, 12 : 607 - 611
  • [34] Protein folding on a complex energy landscape.
    Dyer, RB
    Leeson, DT
    Gregoret, LM
    Rodriguez, HM
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2000, 219 : U283 - U284
  • [35] Protein folding and unfolding on a complex energy landscape
    Leeson, DT
    Gai, F
    Rodriguez, HM
    Gregoret, LM
    Dyer, RB
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2000, 97 (06) : 2527 - 2532
  • [36] Effective search of the energy landscape for protein folding
    Santos, E
    Kim, KJ
    Santos, EE
    GENETIC AND EVOLUTIONARY COMPUTATION - GECCO 2003, PT I, PROCEEDINGS, 2003, 2723 : 642 - 643
  • [37] The energy landscape for protein folding and biomolecular machines
    Onuchic, Jose Nelson
    JOURNAL OF BIOMOLECULAR STRUCTURE & DYNAMICS, 2015, 33 : 33 - 33
  • [38] The Folding Energy Landscape and Free Energy Excitations of Cytochrome c
    Weinkam, Patrick
    Zimmermann, Joerg
    Romesberg, Floyd E.
    Wolynes, Peter G.
    ACCOUNTS OF CHEMICAL RESEARCH, 2010, 43 (05) : 652 - 660
  • [39] Dynamical phase transitions in glasses induced by the ruggedness of the free-energy landscape
    Ritort, F
    JOURNAL OF PHYSICS-CONDENSED MATTER, 2000, 12 (29) : 6453 - 6461
  • [40] Free energy landscape of protein folding in water: Explicit vs. implicit solvent
    Zhou, RH
    PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 2003, 53 (02) : 148 - 161