Contributions of all 20 amino acids at site 96 to the stability and structure of T4 lysozyme

被引:20
|
作者
Mooers, Blaine H. M. [1 ,2 ]
Baase, Walter A. [1 ,2 ]
Wray, Jonathan W. [1 ,2 ]
Matthews, Brian W. [1 ,2 ]
机构
[1] Univ Oregon, Howard Hughes Med Inst, Inst Mol Biol, Eugene, OR 97403 USA
[2] Univ Oregon, Dept Phys, Eugene, OR 97403 USA
关键词
T4; lysozyme; electrostatics; strain; temperature-sensitive mutant; BACTERIOPHAGE-T4; LYSOZYME; MACROMOLECULAR STRUCTURES; PROTEIN STABILITY; MOLECULAR REPLACEMENT; SIMULATION ANALYSIS; DIFFRACTION DATA; POINT MUTATIONS; FOLDED PROTEIN; MUTANT; REFINEMENT;
D O I
10.1002/pro.94
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 try to resolve the loss of stability in the temperature-sensitive mutant of T4 lysozyme, Arg 96 -> His, all of the remaining 18 naturally occurring amino acids were substituted at site 96. Also, in response to suggestions that the charged residues Lys85 and Asp89, which are 5-8 angstrom away, may have important effects, each of these amino acids was replaced with alanine. Crystal structures were determined for many of the variants. With the exception of the tryptophan and valine mutants R96W and R96V, the crystallographic analysis shows that the substituted side chain following the path of Arg96 in wildtype (WT). The melting temperatures of the variants decrease by up to similar to 16 degrees C with WT being most stable. There are two site 96 replacements, with lysine or glutamine, that leave the stability close to that of WT. The only element that the side chains of these residues have in common with the WT arginine is the set of three carbon atoms at the C-alpha, C-beta, and C-gamma positions. Although each side chain is long and flexible with a polar group at the distal position, the details of the hydrogen bonding to the rest of the protein differ in each case. Also, the glutamine replacement lacks a positive charge. This shows that there is some adaptability in achieving full stabilization at this site. At the other extreme, to be maximally destabilizing a mutation at site 96 must not only eliminate favorable interactions but also introduce an unfavorable element such as steric strain or a hydrogen-bonding group that remains unsatisfied. Overall, the study highlights the essential need for atomic resolution site-specific structural information to understand and to predict the stability of mutant proteins. It can be very misleading to simply assume that conservative amino acid substitutions cause small changes in stability, whereas large stability changes are associated with nonconservative replacements.
引用
收藏
页码:871 / 880
页数:10
相关论文
共 50 条
  • [41] Predictive absolute binding free energy calculations for an engineered binding site in T4 Lysozyme
    Mobley, David L.
    Graves, Alan P.
    Chodera, John D.
    Shoichet, Brian K.
    Dill, Ken A.
    BIOPHYSICAL JOURNAL, 2007, : 368A - 368A
  • [42] INFLUENCE OF SINGLE AMINO-ACID SUBSTITUTIONS IN PHAGE-T4 LYSOZYME ON THE STRUCTURE AND STABILITY OF THE ENZYME
    GRUTTER, MG
    RINE, K
    MATTHEWS, BW
    HOPPE-SEYLERS ZEITSCHRIFT FUR PHYSIOLOGISCHE CHEMIE, 1979, 360 (08): : 1009 - 1009
  • [43] Protein Structure-Function Relationships of T4 Lysozyme in an Advanced Biochemistry Laboratory
    Watt, Terry
    Toro, Tasha
    FASEB JOURNAL, 2015, 29
  • [44] Structure and orientation of T4 lysozyme bound to the small heat shock protein α-crystallin
    Claxton, Derek P.
    Zou, Ping
    Mchaourab, Hassane S.
    JOURNAL OF MOLECULAR BIOLOGY, 2008, 375 (04) : 1026 - 1039
  • [45] Multiple methionine substitutions are tolerated in T4 lysozyme and have coupled effects on folding and stability
    Gassner, NC
    Baase, WA
    Mooers, BHM
    Busam, RD
    Weaver, LH
    Lindstrom, JD
    Quillin, ML
    Matthews, BW
    BIOPHYSICAL CHEMISTRY, 2003, 100 (1-3) : 325 - 340
  • [46] Role of medium- and long-range interactions to the stability of the mutants of T4 lysozyme
    Gromiha, MM
    Thangakani, AM
    PREPARATIVE BIOCHEMISTRY & BIOTECHNOLOGY, 2001, 31 (03): : 217 - 227
  • [47] Comparative adsorption studies with synthetic, structural stability and charge mutants of bacteriophage T4 lysozyme
    McGuire, J
    Krisdhasima, V
    Wahlgren, MC
    Arnebrant, T
    PROTEINS AT INTERFACES II: FUNDAMENTALS AND APPLICATIONS, 1995, 602 : 52 - 65
  • [48] Sequential adsorption of bacteriophage T4 lysozyme stability variants at solid-water interfaces
    Podhipleux, N
    McGuire, J
    Bothwell, MK
    Horbett, TA
    COLLOIDS AND SURFACES B-BIOINTERFACES, 2003, 27 (04) : 277 - 285
  • [49] STRUCTURE AND THERMAL-STABILITY OF PHAGE-T4 LYSOZYME
    ALBER, T
    MATTHEWS, BW
    METHODS IN ENZYMOLOGY, 1987, 154 : 511 - 533
  • [50] Details of the partial unfolding of T4 lysozyme on quartz using site-directed spin labeling
    Jacobsen, Kerstin
    Hubbell, Wayne L.
    Ernst, Oliver P.
    Risse, Thomas
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2006, 45 (23) : 3874 - 3877