B-DNA TO Z-DNA STRUCTURAL TRANSITIONS IN THE SV40 ENHANCER - STABILIZATION OF Z-DNA IN NEGATIVELY SUPERCOILED DNA MINICIRCLES

被引:16
|
作者
GRUSKIN, EA
RICH, A
机构
[1] MIT,DEPT BIOL,CAMBRIDGE,MA 02139
[2] US SURG CORP,NORWALK,CT 06856
关键词
D O I
10.1021/bi00060a007
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
During replication and transcription, the SV40 control region is subjected to significant levels of DNA unwinding. There are three, alternating purine-pyrimidine tracts within this region that can adopt the Z-DNA conformation in response to negative superhelix density: a single copy of ACACACAT and two copies of ATGCATGC. Since the control region is essential for both efficient transcription and replication, B-DNA to Z-DNA transitions in these vital sequence tracts may have significant biological consequences. We have synthesized DNA minicircles to detect B-DNA to Z-DNA transitions in the SV40 enhancer, and to determine the negative superhelix density required to stabilize the Z-DNA. A variety of DNA sequences, including the entire SV40 enhancer and the two segments of the enhancer with alternating purine-pyrimidine tracts, were incorported into topologically relaxed minicircles. Negative supercoils were generated, and the resulting topoisomers were resolved by electrophoresis. Using an anti-Z-DNA Fab and an electrophoretic mobility shift assay, Z-DNA was detected in the enhancer-containing minicircles at a superhelix density of -0.05. Fab saturation binding experiments demonstrated that three, independent Z-DNA tracts were stabilized in the supercoiled minicircles. Two other minicircles, each with one of the two alternating purine-pyrimidine tracts, also contained single Z-DNA sites. These results confirm the identities of the Z-DNA-forming sequences within the control region. Moreover, the B-DNA to Z-DNA transitions were detected at superhelix densities observed during normal replication and transcription processes in the SV40 life cycle.
引用
收藏
页码:2167 / 2176
页数:10
相关论文
共 50 条
  • [1] TRANSITIONS BETWEEN B-DNA AND Z-DNA - A DILEMMA
    HOPKINS, RC
    JOURNAL OF THEORETICAL BIOLOGY, 1983, 101 (03) : 327 - 333
  • [2] EFFECTS OF BASE SUBSTITUENTS ON THE HYDRATION OF B-DNA AND Z-DNA - CORRELATIONS TO THE B-DNA TO Z-DNA TRANSITION
    KAGAWA, TF
    HOWELL, ML
    TSENG, KH
    HO, PS
    NUCLEIC ACIDS RESEARCH, 1993, 21 (25) : 5978 - 5986
  • [3] THE ANATOMY OF A-DNA, B-DNA, AND Z-DNA
    DICKERSON, RE
    DREW, HR
    CONNER, BN
    WING, RM
    FRATINI, AV
    KOPKA, ML
    SCIENCE, 1982, 216 (4545) : 475 - 485
  • [4] MOLECULAR-MECHANICAL STUDIES OF Z-DNA - A COMPARISON OF THE STRUCTURAL AND ENERGETIC PROPERTIES OF Z-DNA AND B-DNA
    KOLLMAN, P
    WEINER, P
    QUIGLEY, G
    WANG, A
    BIOPOLYMERS, 1982, 21 (10) : 1945 - 1969
  • [5] PHOTOIONIZATION SPECTRA OF B-DNA AND Z-DNA
    VERCAUTEREN, DP
    CLEMENTI, E
    INTERNATIONAL JOURNAL OF QUANTUM CHEMISTRY, 1983, : 11 - 30
  • [6] THE TRANSITION BETWEEN B-DNA AND Z-DNA
    JOVIN, TM
    SOUMPASIS, DM
    MCINTOSH, LP
    ANNUAL REVIEW OF PHYSICAL CHEMISTRY, 1987, 38 : 521 - 560
  • [7] VISUALIZING THE ANATOMY OF A-DNA,B-DNA AND Z-DNA
    GEIS, I
    JOURNAL OF BIOMOLECULAR STRUCTURE & DYNAMICS, 1983, 1 (03): : 581 - &
  • [8] ON THE MECHANISM OF THE TRANSITION BETWEEN B-DNA AND Z-DNA
    CLARK, P
    RIFKIND, JM
    FROEHLICH, JP
    EICHHORN, GL
    FASEB JOURNAL, 1988, 2 (04): : A773 - A773
  • [9] HYDRATION OF METHYLATED AND NONMETHYLATED B-DNA AND Z-DNA
    HO, PS
    QUIGLEY, GJ
    TILTON, RF
    RICH, A
    JOURNAL OF PHYSICAL CHEMISTRY, 1988, 92 (04): : 939 - 945
  • [10] LOCALIZATION OF DINOFLAGELLATE CHROMOSOMAL B-DNA AND Z-DNA
    SOYERGOBILLARD, MO
    GERAUD, ML
    BARRAY, M
    COULAUD, D
    REVET, B
    DELAIN, E
    BIOLOGY OF THE CELL, 1987, 60 (01) : A21 - A21