Identification, cloning and characterization of three late promoters at 14.6, 14.8 and 15.9% of T7 DNA.
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Biomedical subjects
Publications and source records attributed to R D Wells.
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Differential melting curves are reported for four DNA restriction fragments (789, 301, 203, and 95 base pairs in length) spanning the lactose control region. All but the smallest melt with two or more subtransitions. Maps are proposed which identify the positions of regions of different thermal stability in the sequences. The sizes of regions comprising subtransitions range from 60 to 200 base pairs. An analysis is made of the cooperativity exhibited between regions in the sequence. The effect on the shape of the differential melting curves of Na+ between 10 mM and 0.5 M as well as that of Mg2+ and glycerol has been determined. An 81-bp-long sequence of unusual thermal stability occurs at the lactose promoter. Its TM change, resulting from the above change in salt concentration, is out of step by 1.5 degree C with the neighboring DNA sequence. The potential biological significance of this behavior is discussed.
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The construction of several recombinant plasmid derivatives containing novel triple-block DNA sequence insertions is described. The protocol for these constructions involves synthesis of a heterogenous mixture of block oligomer duplexes, : formula: (see text), using pancreatic deoxyribonuclease and terminal transferase. The synthetic duplexes were mixed with linearized and dG-tailed vectors and the DNA mixture used to transform E. coli. Triple-block sequences of the type dGidAjdCk.dGkdTjdCi, characterized by DNA sequencing, were inserted into the Bam HI site of pBR322 and next to the lac wild-type and UV5 promoter regions in pRW26 and pRW28. Similarly, sequences were inserted into the Sma I site of pACYC189 and could be excised by cleavage with Sma I since the procudure regenerates the recognition site. The approach provides a technique for the synthesis of a large family of defined sequence triple-block polymers in essentially unlimited amounts. Although these inserts contain sequences which have the potential for forming stable hairpin structures, the recombinant plasmids are stable and appear to replicate normally.
Three DNA restriction fragments of established sequence containing the Escherichia coli lac genetic controlling regions were cloned. In each case a recombinant plasmid was constructed which was suitable for the subsequent large scale purification of the lac fragment. A 789-base pair HindII fragment, containing the lac operator, promoter, and cyclic AMP receptor protein binding site, was ligated into the single HindII site of the amplifiable plasmid minicolicin E1 DNA (pVH51). A 203-base pair Hae III fragment containing the same genetic sites was ligated into the single Eco RI site of pVH51 which had been "filled in" by the Micrococcus luteus DNA polymerase. Thus, the lac fragment was inserted between two Eco RI sites. Plasmids containing multiple copies of this Eco RI fragment were then constructed. A 95-base pair Alu I fragment containing the lac promoter and operator was cloned similarly. Also, the 203-base pair fragment was cloned into the Eco RI site of pVH51 using a 300-base pair linker fragment (isolated by RPC-5 column chromatography) which permitted retention of its Hae III ends. Mapping studies on pVH51 DNA with a number of DNA restriction endonucleases, including Alu I, Taq I, and Hpa II, are described.
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DNA restriction fragments generally elute from RPC-5 in order of their size. However, some fragments elute later than predicted. Chromatographic studies were performed on five different restriction digests (Hae III, Hha I, Alu I, Taq I, and Hae III + HindII) of pRZ2 DNA in an effort to localize the regions which have the delayed properties. Also, the magnitude of the delay was quantitated in each case. Most of the delayed fragments were localized in one major (931 bp) and one minor (approximately 210 bp) region of the genome. The fragments exhibiting a greater extent of delay were in the major region. The results described herein and in the following paper show that, in most cases, this effect can be explained by the base composition, or sequence of the fragments, or both.
The properties of the fractionated Hae III fragments of pRZ2 DNA (Patient, R.K., Hardies, S.C., and Wells, R.D. (1979) J. Biol. Chem. 254, 5542-5547) were studied in an effort to determine why several of the fragments bind more tightly to RPC-5 than expected on the basis of their length. The purified fragments were analyzed for their nucleotide composition by direct determination of their constituent mononucleotides and by analytical CsCl and Cs2SO4 density gradient analyses. A-T-rich fragments elute at higher salt concentrations than fragments of equivalent size which are not A-T-rich. In addition, denaturation mapping studies by electron microscopy indicate that an A-T-rich run within an otherwise G-C-rich fragment can give rise to delayed elution. At least one other factor influences the separation of DNA restriction fragments by RPC-5 chromatography. Some of the fragments in this digest which elute later than predicted from their size either contain known genetic regulatory sites or bind regulatory proteins.
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The synthesis of several nucleic acid block polymers of the general type dGn.rCidCk is described. The key steps in this procedure were the joining of dCk oligomers, protected at the 3'-OH with an acetyl group, to rCi oligomers by T4 DNA ligase and the purification of the products by RPC-5 column chromatography. The block polymers were characterized by 20% polyacrylamide gel electrophoresis, UV and CD spectra, analytical Cs2SO4 buoyant density analyses, helix-coil transitions and S1 nuclease studies. NMR studies on one member of this series, dGn.rC11dC16, were reported recently (Selsing, E., Wells, R.D., Early, T.A., and Kearns, D.R. (1978) Nature 275, 249-250). The NMR studies and the results described herein indicate that these block polymers are linear duplexes with two adjoining conformations yet are hydrogen-bonded and base-stacked throughout with minimal disruption of the helix at the junction of the two conformations. Computer model building studies described in the following paper (Selsing, E., Wells, R.D., Alden, C.J., and Arnott, S. (1979) J. Biol. Chem. 254, 5417-5422) predict that these nucleic acids contain a bend at the junction region.
A model for the junction of contiguous DNA segments having A-DNA and B-DNA conformations is generated using a computerized linked-atom, least-squares model building program. The junction region comprises one base pair and the two neighboring internucleotide linkages and exhibits full hydrogen-bonded base-pairing, full base-stacking, and unexceptional stereochemistry. In addition, the junction has a mixed sugar ring pucker with the junction base pair adopting C2-endo and C3-endo furanose sugar rings in the complementary strands. Since the junction is fully base-stacked, the differences in base tilt between A-DNA and B-DNA result in a bend of 26 degrees in the duplex at the junction. The results of this study indicate: 1) a correlation of the B leads to A transition with several features of the initiation of RNA transcription, 2) possible structural roles of alternating AT and GC sequences in protein recognition, and 3) the possibility of dynamic conformational discontinuities in a DNA helix.
Large quantities of pure DNA fragments (789, 203 and 95 bp in length) containing the Escherichia coli lac controlling elements (operator, promoter, CRP binding site) were prepared from appropriate recombinant plasmids. High pressure liquid chromatography on RPC-5 or preparative sucrose gradient centrifugation was used to fractionate the pVH51 vector from the inserts. The fragments had few, if any, nicks or depurinated sites, and the majority of the fragment ends were intact. Absorbance-temperature profiles on the fragments showed multiphasic transitions.
Several antibiotics, netropsin, distamycin A, actinomycin D, Hoechst 33258 and olivomycin, which demonstrate base specificity in their DNA binding properties have been found to alter the electrophoretic mobility of DNA restriction fragments in native polyacrylamide gels. The antibiotics mostly reduced the migration of larger DNA fragments, but netropsin and Hoechst 33258 were observed to increase the migration rate of several DNA fragments of intermediate size. DNA fragments of similar molecular weight which comigrate as a single gel band can at times be separated as the result of differential mobility shifts promoted by antibiotic DNA complex formations.
We introduced deletions in the early region of the polyoma virus genome near the HaeII restriction enzyme cleavage site, between the origin of viral DNA replication and the site of initiation of translation of the polyoma T antigens. We analyzed the DNA of the deletion mutants by restriction enzyme digestion. Four of the mutants had deletions beginning very close to the HaeII site and extending clockwise toward the site of initiation of translation. The deletions near the HaeII site varied in size from about 10 base pairs to about 55 base pairs. The mutants containing deletions near the HaeII site were capable of lytic growth in mouse 3T6 cells and were capable of transforming rat F2408 cells, as judged by focus formation.
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Model DNA polymers containing heteroduplex regions of defined sequence and size were synthesized using polynucleotide phosphorylase and calf thymus terminal transferase. Heteroduplexes were of the form (dG)n-d(C12AmC-x), where m - 1-6, and (dG)n-d(C10GmC-x), where m = 1 and 3-5. Thermal melting studies of the model DNAs indicated that the heteroduplex regions did not disrupt the cooperative interaction between the flanking regions of dG-dC base pairs. thus, it is possible that the heteroduplex nucleotides are accommodated in a stacked helical structure.
The sensitivity of the model DNAs containing dA-dG and dtg-dG heteroduplex regions of defined length to S1 and mung bean single-strand specific nucleases was tested by polyacrylamide gel electrophoretic analysis of the distribution of product oligonucleotides. Single-base mismatch heteroduplexes were extremely resistant to these nucleases, although low levels of cleavage at the heteroduplex nucleotide were observed at high nuclease concentrations. The nuclease sensitivity of dA-dtg heteroduplex regions increased gradually as the length of the heteroduplex region increased frome one to six nucleotides. The sensitivity of dG-dG heteroduplexes three to five nucleotides long was considerably greater than that of the single dtg-dG mismatch.
The in vitro binding of the Escherichia coli RNA polymerase (nucleosidetriphosphate:RNA nucleotidyltransferase; EC 2.7.7.6) to fragments of lambdaplac5 DNA generated by restriction endonucleases HindII and HindIII has been studied by a filter binding technique. The results are consistent with RNA polymerase binding at p(R)', the INT promoter (p(I)), several sites in the b2 region, the mis promoter, the oop promoter (or p(O)), and p(rm). Binding was also observed on some fragments that are not known to contain active promoters, including the fragment from the cIII-t(L) region. Some of these binding reactions might also be explained by interaction of RNA polymerase with termination sites. Additional polymerase binding sites have been detected by examining which HindII and HindIII sites were not cleaved when digestion was performed after RNA polymerase had been bound to the DNA. This technique revealed polymerase binding at p(L), at p(R), at a site between R and cos, and at a site at the junction of the gamma and cIII-t(L) fragments. A comparison of the location of polymerase binding fragments with the partial denaturation map of the lambda genome indicates that RNA polymerase binding sites are located within A-T rich regions. It is suggested that RNA polymerase binding is a function both of specific sequences (where recognition occurs) and of the base composition of the surrounding regions (which affects the stability of the helix at the specific site).