Physical properties of DNA in vivo as probed by the length dependence of the lac operator looping process.
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[1] B. Müller-Hill,et al. Synthetic lac operator mediates repression through lac repressor when introduced upstream and downstream from lac promoter. , 1986, The EMBO journal.
[2] S. Adhya,et al. A control element within a structural gene: The gal operon of Escherichia coli , 1983, Cell.
[3] R. L. Baldwin,et al. Energetics of DNA twisting. I. Relation between twist and cyclization probability. , 1983, Journal of molecular biology.
[4] R. L. Baldwin,et al. Energetics of DNA twisting. II. Topoisomer analysis. , 1983, Journal of molecular biology.
[5] P. Hagerman,et al. Analysis of the ring‐closure probabilities of isotropic wormlike chains: Application to duplex DNA , 1985, Biopolymers.
[6] J. Shimada,et al. DNA-topoisomer analysis on the basis of the helical wormlike chain. , 1984, Biopolymers.
[7] J. Wang,et al. Helical repeat of DNA in solution. , 1979, Proceedings of the National Academy of Sciences of the United States of America.
[8] R. J. Robbins,et al. Torsion and bending of nucleic acids studied by subnanosecond time-resolved fluorescence depolarization of intercalated dyes , 1982 .
[9] R. Schleif. Why should DNA loop? , 1987, Nature.
[10] S. Adhya,et al. Demonstration of two operator elements in gal: in vitro repressor binding studies. , 1984, Proceedings of the National Academy of Sciences of the United States of America.
[11] M C Mossing,et al. Upstream operators enhance repression of the lac promoter. , 1986, Science.
[12] K. Struhl,et al. Functional dissection of a eukaryotic transcriptional activator protein, GCN4 of Yeast , 1986, Cell.
[13] A. Klug,et al. Helical periodicity of DNA determined by enzyme digestion , 1980, Nature.
[14] R. Wells,et al. Left-handed DNA in vivo. , 1987, Science.
[15] K. Hammer,et al. Two operator sites separated by 599 base pairs are required for deoR repression of the deo operon of Escherichia coli. , 1985, The EMBO journal.
[16] R. Brent,et al. A eukaryotic transcriptional activator bearing the DNA specificity of a prokaryotic repressor , 1985, Cell.
[17] D. Crothers,et al. The DNA binding domain and bending angle of E. coli CAP protein , 1986, Cell.
[18] A. Riggs,et al. Lac repressor-operator interaction. V. Characterization of super- and pseudo-wild-type repressors. , 1972, Journal of molecular biology.
[19] W. Gilbert,et al. Mutants that make more lac repressor. , 1968, Proceedings of the National Academy of Sciences of the United States of America.
[20] K. Martin,et al. The DNA loop model for ara repression: AraC protein occupies the proposed loop sites in vivo and repression-negative mutations lie in these same sites. , 1986, Proceedings of the National Academy of Sciences of the United States of America.
[21] H. Buc,et al. Variations of intramolecular ligation rates allow the detection of protein‐induced bends in DNA. , 1986, The EMBO journal.
[22] D. Pettijohn,et al. Interaction of the Escherichia coli HU protein with DNA. Evidence for formation of nucleosome-like structures with altered DNA helical pitch. , 1986, Journal of molecular biology.
[23] M. Ptashne,et al. Cooperative binding of λ repressors to sites separated by integral turns of the DNA helix , 1986, Cell.
[24] E. Milgrom,et al. Association of DNA-bound progesterone receptors , 1987, Nature.
[25] Jiro Shimada,et al. Ring-closure probabilities for twisted wormlike chains: application to DNA , 1984 .
[26] B. Magasanik,et al. Transcription of glnA in E. coli is stimulated by activator bound to sites far from the promoter , 1986, Cell.
[27] Homer Jacobson,et al. Intramolecular Reaction in Polycondensations. I. The Theory of Linear Systems , 1950 .
[28] R. Wells,et al. Supercoiling facilitates lac operator-repressor-pseudooperator interactions. , 1987, The Journal of biological chemistry.
[29] B. Müller-Hill,et al. lac repressor forms loops with linear DNA carrying two suitably spaced lac operators. , 1987, The EMBO journal.
[30] R. Sinden,et al. Torsional tension in the DNA double helix measured with trimethylpsoralen in living E. coli cells: Analogous measurements in insect and human cells , 1980, Cell.
[31] Bruno H. Zimm,et al. Theory of twisting and bending of chain macromolecules; analysis of the fluorescence depolarization of DNA , 1979 .
[32] A. Fulton,et al. How crowded is the cytoplasm? , 1982, Cell.
[33] Walter H. Stockmayer,et al. Statistical Mechanics of Wormlike Chains. II. Excluded Volume Effects , 1972 .
[34] Hen-Ming Wu,et al. DNA bending at adenine · thymine tracts , 1986, Nature.
[35] T. Smith,et al. The nature of lactose operator constitive mutations. , 1971, Journal of molecular biology.
[36] A. Courey,et al. Cruciform formation in a negatively supercoiled DNA may be kinetically forbidden under physiological conditions , 1983, Cell.
[37] J. Wang,et al. On the probability of ring closure of lambda DNA. , 1966, Journal of molecular biology.
[38] N. Cozzarelli,et al. Use of site-specific recombination as a probe of DNA structure and metabolism in vivo. , 1987, Journal of molecular biology.
[39] A Klug,et al. The helical periodicity of DNA on the nucleosome. , 1981, Nucleic acids research.
[40] Mark Ptashne,et al. Gene regulation by proteins acting nearby and at a distance , 1986, Nature.
[41] F. Neidhardt,et al. Culture Medium for Enterobacteria , 1974, Journal of bacteriology.
[42] A. Novick,et al. THE PROPERTIES OF REPRESSOR AND THE KINETICS OF ITS ACTION. , 1965, Journal of molecular biology.
[43] J. Michael Schurr,et al. Torsion dynamics and depolarization of fluorescence of linear macromolecules: II. Fluorescence polarization anisotropy measurements on a clean viral φ29 DNA , 1980 .
[44] B. Dombroski,et al. Iron(II) EDTA used to measure the helical twist along any DNA molecule. , 1985, Science.
[45] R. Wells,et al. Influence of sequence and distance between two operators on interaction with the lac repressor. , 1987, The Journal of biological chemistry.
[46] J. Gralla,et al. DNA supercoiling promotes formation of a bent repression loop in lac DNA. , 1987, Journal of molecular biology.
[47] G W Hatfield,et al. Effects of promoter strengths and growth conditions on copy number of transcription-fusion vectors. , 1984, The Journal of biological chemistry.
[48] A. Nordheim,et al. DNA supercoiling changes the spacing requirement of two lac operators for DNA loop formation with lac repressor. , 1988, The EMBO journal.
[49] L. Maquat,et al. lac Promoter mutations located downstream from the transcription start site. , 1980, Journal of molecular biology.
[50] N. Panayotatos,et al. A native cruciform DNA structure probed in bacteria by recombinant T7 endonuclease. , 1987, The Journal of biological chemistry.
[51] Hen-Ming Wu,et al. The locus of sequence-directed and protein-induced DNA bending , 1984, Nature.
[52] D. Pettijohn,et al. Supercoils in prokaryotic DNA restrained in vivo. , 1980, Proceedings of the National Academy of Sciences of the United States of America.
[53] D. Dripps,et al. DNA bending induced by the catabolite activator protein allows ring formation of a 144 bp DNA. , 1987, Journal of biomolecular structure & dynamics.
[54] E N Trifonov,et al. Curved DNA: design, synthesis, and circularization. , 1986, Proceedings of the National Academy of Sciences of the United States of America.
[55] R. Wells,et al. Influence of supercoiling and sequence context on operator DNA binding with lac repressor. , 1987, The Journal of biological chemistry.
[56] T. Dunn,et al. An operator at -280 base pairs that is required for repression of araBAD operon promoter: addition of DNA helical turns between the operator and promoter cyclically hinders repression. , 1984, Proceedings of the National Academy of Sciences of the United States of America.
[57] J. Wang,et al. Torsional rigidity of DNA and length dependence of the free energy of DNA supercoiling. , 1984, Journal of molecular biology.