NMR structures of r(GCA(G)under-barGC(G)under-barUGC)2 and determinants of stability for single guanosine-guanosine base pairs

被引:60
作者
Burkard, ME [1 ]
Turner, DH [1 ]
机构
[1] Univ Rochester, Dept Chem, Rochester, NY 14627 USA
关键词
D O I
10.1021/bi000720i
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
Nucleotides in RNA that are not Watson-Crick-paired form unique structures for recognition or catalysis, but determinants of these structures and their stabilities are poorly understood. A single noncanonical pair of two guanosines (G) is more stable than other noncanonical pairs and can potentially form pairing structures with two hydrogen bonds in four different ways. Here, the energetics and structure of single GG pairs are investigated in several sequence contexts by optical melting and NMR. The data for r(5'GCAGGCGUGC3')(2), in which G4 and G7 are paired, are consistent with a model in which G4 and G7 alternate syn glycosidic conformations in a two-hydrogen-bond pair. The two distinct structures are derived from nuclear Overhauser effect spectroscopic distance restraints coupled with simulated annealing using the AMBER 95 force field. In each structure, the imino and amino protons of the anti G are hydrogen bonded to the O6 and N7 accepters of the syn G, respectively. An additional hydrogen-bond connects the syn G amino group to the 5' nonbridging pro-R-p phosphate oxygen. The GG pair fits well into a Watson-Crick helix. In r(5'GCAGGCGUGC3')(2), the G4(anti), G7(syn) structure is preferred over G4(syn), G7(anti). For single GG pairs in other contexts, exchange processes make interpretation of spectra more difficult but the pairs are also G(syn), G(anti). Thermodynamic data for a variety of duplexes containing pairs of G, inosine, and 7-deazaguanosine flanked by GC pairs are consistent with the structural and energetic interpretations for r(5'GCAGGCGUGC3')(2), suggesting similar GG conformations.
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页码:11748 / 11762
页数:15
相关论文
共 63 条
  • [1] BASE-BASE MISMATCHES - THERMODYNAMICS OF DOUBLE HELIX FORMATION FOR DCA3XA3G + DCT3YT3G (X, Y = A,C,G,T)
    ABOULELA, F
    KOH, D
    TINOCO, I
    MARTIN, FH
    [J]. NUCLEIC ACIDS RESEARCH, 1985, 13 (13) : 4811 - 4824
  • [2] Crystal structure of the ribonucleoprotein core of the signal recognition particle
    Batey, RT
    Rambo, RP
    Lucast, L
    Rha, B
    Doudna, JA
    [J]. SCIENCE, 2000, 287 (5456) : 1232 - +
  • [3] alpha helix-RNA major groove recognition in an HIV-1 Rev peptide RRE RNA complex
    Battiste, JL
    Mao, HY
    Rao, NS
    Tan, RY
    Muhandiram, DR
    Kay, LE
    Frankel, AD
    Williamson, JR
    [J]. SCIENCE, 1996, 273 (5281) : 1547 - 1551
  • [4] Been MD, 1995, RNA, V1, P1061
  • [5] Thermodynamic analysis of an RNA combinatorial library contained in a short hairpin
    Bevilacqua, JM
    Bevilacqua, PC
    [J]. BIOCHEMISTRY, 1998, 37 (45) : 15877 - 15884
  • [6] Bonvin AMJJ, 1996, J BIOMOL NMR, V7, P72
  • [7] CONFORMATIONAL PROPERTIES OF THE G-BULLET-G MISMATCH IN D(CGCGAATTGGCG)2 DETERMINED BY NMR
    BORDEN, KLB
    JENKINS, TC
    SKELLY, JV
    BROWN, T
    LANE, AN
    [J]. BIOCHEMISTRY, 1992, 31 (23) : 5411 - 5422
  • [8] STABILITY OF RIBONUCLEIC-ACID DOUBLE-STRANDED HELICES
    BORER, PN
    DENGLER, B
    TINOCO, I
    UHLENBECK, OC
    [J]. JOURNAL OF MOLECULAR BIOLOGY, 1974, 86 (04) : 843 - 853
  • [9] BORER PN, 1975, HDB BIOCH MOL BIOL N, V1, P589
  • [10] Burkard M. E., 1999, RNA WORLD, P675