Analysis of the cooperative thermal unfolding of the td intron of bacteriophage T4

被引:22
|
作者
Brion, P
Michel, F
Schroeder, R
Westhof, E [1 ]
机构
[1] Inst Biol Mol & Cellulaire, CNRS, UPR 9002, F-67084 Strasbourg, France
[2] CNRS, Ctr Genet Mol, F-91190 Gif Sur Yvette, France
[3] Vienna Bioctr, Inst Microbiol & Genet, A-1030 Vienna, Austria
关键词
D O I
10.1093/nar/27.12.2494
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
The thermal stability of folded transcripts of the fd intron of bacteriophage T4 that carried up to three base substitutions was investigated by temperature gradient gel electrophoresis (TGGE) and UV melting. The unfolding of this autocatalytic group I intron is endothermic and entropically driven. Although the effects of mutations in base pairs follow in most cases the expected order G-C>A-U>G.U>A.C, the extent of global destabilization varies strongly according to the helix in which substitutions are located. Effects are more pronounced in the P7 helix which forms, together with the P3 helix, the central pseudoknot of group I introns, The stability of the tertiary fold was also monitored as a function of ionic concentration and of the nature of the ion, At low ionic strength, the stabilizing effect of divalent ions is independent Of the nature of the ion. However, with increasing ionic concentration, stabilization is most pronounced for Mg2+ and less for Mn2+ with Ca2+ having intermediate effects. Ammonium ions stabilize folding with a similar slope, but at concentrations about 400 times higher than divalent ions. The apparent enthalpic change associated with the tertiary structure thermal unfolding increases strongly with increasing concentrations of divalent ions,A similar increase is observed with the monovalent ammonium ions, However, in the presence of NH4+ ions, the apparent enthalpy peaks at 2.0 M and decreases beyond.
引用
收藏
页码:2494 / 2502
页数:9
相关论文
共 50 条
  • [41] Inhibitory action of FMN and its analogues on the self-splicing of T4 td intron RNA
    Kim, JY
    Shin, S
    Park, IK
    FASEB JOURNAL, 1997, 11 (09): : A958 - A958
  • [42] The thermal stability of fibritin from bacteriophage T4 and its truncated mutants
    Londer, YY
    Mesyanzhinov, VV
    BIOORGANICHESKAYA KHIMIYA, 1999, 25 (04): : 257 - 263
  • [43] Deletion analysis of the bacteriophage T4 AsiA protein, a co-activator of T4 middle transcription.
    Pal, D
    Pande, S
    Wheeler, D
    Hinton, D
    FASEB JOURNAL, 1999, 13 (07): : A1462 - A1462
  • [44] SOME STEPS IN ASSEMBLY OF BACTERIOPHAGE T4
    EDGAR, RS
    LIELAUSIS, I
    JOURNAL OF MOLECULAR BIOLOGY, 1968, 32 (02) : 263 - +
  • [45] IN VITRO SYNTHESIS OF BACTERIOPHAGE T4 PROTEINS
    WILHELM, J
    HASELKOR.R
    FEDERATION PROCEEDINGS, 1969, 28 (02) : 660 - &
  • [46] Microarray analysis of gene expression during bacteriophage T4 infection
    Luke, K
    Radek, A
    Liu, XP
    Campbell, J
    Uzan, M
    Haselkorn, R
    Kogan, Y
    VIROLOGY, 2002, 299 (02) : 182 - 191
  • [47] The structure of isometric capsids of bacteriophage T4
    Olson, NH
    Gingery, M
    Eiserling, FA
    Baker, TS
    VIROLOGY, 2001, 279 (02) : 385 - 391
  • [48] Structure and assembly of bacteriophage T4 head
    Rao, Venigalla B.
    Black, Lindsay W.
    VIROLOGY JOURNAL, 2010, 7
  • [49] T4 bacteriophage as a phage display platform
    Mariam Gamkrelidze
    Krystyna Dąbrowska
    Archives of Microbiology, 2014, 196 : 473 - 479
  • [50] The functional domains of bacteriophage T4 terminase
    Kanamaru, S
    Kondabagil, K
    Rossmann, MG
    Rao, VB
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2004, 279 (39) : 40795 - 40801