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S Shuman

Publications and source records attributed to S Shuman.

At least 109 records · Page 6Linked to original sources

Domain structure of vaccinia DNA ligase.

The 552 amino acid vaccinia virus DNA ligase consists of three structural domains defined by partial proteolysis: (i) an amino-terminal 175 amino acid segment that is susceptible to digestion with chymotrypsin and trypsin; (ii) a protease-resistant central domain that contains the active site of nucleotidyl transfer (Lys-231); (iii) a protease-resistant carboxyl domain. The two protease-resistant domains are separated by a protease-sensitive interdomain bridge from positions 296 to 307. Adenylyltransferase and DNA ligation activities are preserved when the N-terminal 200 amino acids are deleted. However, the truncated form of vaccinia ligase has a reduced catalytic rate in strand joining and a lower affinity for DNA than does the full-sized enzyme. The 350 amino acid catalytic core of the vaccinia ligase is similar in size and protease-sensitivity to the full-length bacteriophage T7 DNA ligase.

Adenosine Triphosphate↗

Histidine 265 is important for covalent catalysis by vaccinia topoisomerase and is conserved in all eukaryotic type I enzymes.

Vaccinia topoisomerase catalyzes DNA cleavage and rejoining via transesterification to pentapyrimidine recognition site 5'-(C/T)CCTT downward arrow in duplex DNA. The proposed reaction mechanism involves general-base catalysis of the attack by active site nucleophile Tyr-274 on the scissile phosphodiester and general-acid catalysis of the expulsion of the 5'-deoxyribose oxygen on the leaving DNA strand. The pKa values suggest histidine and cysteine side chains as candidates for the roles of proton acceptor and donor, respectively. To test this, we replaced each of the eight histidines and two cysteines of the vaccinia topoisomerase with alanine. Single mutants C100A and C211A and a double mutant C100A-C211A were fully active in DNA relaxation, indicating that a cysteine is not the general acid. Only one histidine mutation, H265A, affected enzyme activity. The rates of DNA relaxation, single-turnover strand cleavage, and single-turnover religation by H265A were 2 orders of magnitude lower than the wild-type rates. Yet the H265A mutation did not alter the dependence of the cleavage rate on pH, indicating that His-265 is not the general base. Replacing His-265 with glutamine or asparagine slowed DNA relaxation and single-turnover cleavage to about one-third of the wild-type rate. All three mutations, H265A, H265N, and H265Q, skewed the cleavage-religation equilibrium in favor of the covalently bound state. His-265 is strictly conserved in every member of the eukaryotic type I topoisomerase family.

Amino Acid Sequence↗

Transcription termination by vaccinia RNA polymerase entails recognition of specific phosphates in the nascent RNA.

Vaccinia virus RNA polymerase terminates transcription downstream of a UUUUUNU signal in the nascent RNA. Transduction of the RNA signal to the elongating polymerase requires a termination factor (vaccinia termination factor/capping enzyme) and is coupled to the hydrolysis of ATP. It was shown previously that incorporation of 5-bromouracil or 5-iodouracil within the UUUUUNU element abolishes termination by preventing factor-dependent release of the nascent chain from the polymerase elongation complex. Here, we report that termination is prevented by phosphorothioate substitution at UMP residues in the nascent RNA. In contrast, phosphorothioate substitution at AMP, CMP, and GMP nucleotides does not inhibit termination. Thus, the action of a eukaryotic termination factor entails recognition of the nucleotide bases and the phosphate groups of the target sequence in nascent RNA.

Adenosine Triphosphate↗

Site-specific ribonuclease activity of eukaryotic DNA topoisomerase I.

Type I topoisomerases alter DNA topology by cleaving and rejoining one strand of duplex DNA through a covalent protein-DNA intermediate. Here we show that vaccinia topoisomerase, a eukaryotic type IB enzyme, catalyzes site-specific endoribonucleolytic cleavage of an RNA-containing strand. The RNase reaction occurs via transesterification at the scissile ribonucleotide to form a covalent RNA-3'-phosphoryl-enzyme intermediate, which is then attacked by the vicinal 2' OH of the ribose sugar to yield a free 2', 3' cyclic phosphate product. Introduction of a single ribonucleoside at the scissile phosphate of an otherwise all-DNA substrate suffices to convert the topoisomerase into an endonuclease. Human topoisomerase I also has endoribonuclease activity. These findings suggest potential roles for topoisomerases in RNA processing.

Base Sequence↗

A Native American community initiative to prevent diabetes.

The increasing prevalence of obesity and diabetes in the Mohawk Community of Akwesasne led to the formation of an advisory group who's mission was to increase community awareness and strengthen the infrastructure necessary to create a community coalition to promote healthy lifestyles. The methodology used to reach these goals included: obtaining an understanding of the community's knowledge, attitudes and behaviors about diabetes, diet and exercise using semi-structured interviews and focus groups; analyzing data from a case control study of diabetes and it complications using a medical record review; exploring methods for evaluating energy expenditure in children; and identifying influential community members and organizations. In the last 50 years people had become less physically active and high fat, high caloric foods were more available. Community members were concerned about health and the well-being of their children, had knowledge about healthy lifestyles but lacked confidence and social support for bringing about desired changes. A strong association was documented between diabetes, smoking cigarettes, high blood cholesterol and vascular disease in this community. Approximately 100 persons participated, several hundred received the results in presentations to 17 community organizations, two public fora, letters to participants and articles in local newspapers. Fifty persons and 29 businesses or organizations regarded as strong advocates of healthy lifestyles were identified. From these a community coalition was formed and has initiated programs to reduce dietary fat and increase physical activity in young children.

Adult↗

Nick sensing by vaccinia virus DNA ligase requires a 5' phosphate at the nick and occupancy of the adenylate binding site on the enzyme.

Vaccinia virus DNA ligase has an intrinsic nick-sensing function. The enzyme discriminates at the substrate binding step between a DNA containing a 5' phosphate and a DNA containing a 5' hydroxyl at the nick. Further insights into nick recognition and catalysis emerge from studies of the active-site mutant K231A, which is unable to form the covalent ligase-adenylate intermediate and hence cannot activate a nicked DNA substrate via formation of the DNA-adenylate intermediate. Nonetheless, K231A does catalyze phosphodiester bond formation at a preadenylated nick. Hence, the active-site lysine of DNA ligase is not required for the strand closure step of the ligation reaction. The K231A mutant binds tightly to nicked DNA-adenylate but has low affinity for a standard DNA nick. The wild-type vaccinia virus ligase, which is predominantly ligase-adenylate, binds tightly to a DNA nick. This result suggests that occupancy of the AMP binding pocket of DNA ligase is essential for stable binding to DNA. Sequestration of an extrahelical nucleotide by DNA-bound ligase is reminiscent of the base-flipping mechanism of target-site recognition and catalysis used by other DNA modification and repair enzymes.

Adenosine Monophosphate↗

Structure-function analysis of the triphosphatase component of vaccinia virus mRNA capping enzyme.

The N-terminal 60 kDa (amino acids 1 to 545) of the D1 subunit of vaccinia virus mRNA capping enzyme is an autonomous bifunctional domain with triphosphatase and guanylyltransferase activities. We previously described two alanine cluster mutations, R77 to A (R77A)-K79A and E192A-E194A, which selectively inactivated the triphosphatase component. Here, we characterize the activities of 11 single alanine mutants-E37A, E39A, Q60A, E61A, T67A, T69A, K75A, R77A, K79A, E192A, and E194A-and a quadruple mutant in which four residues (R77, K79, E192, and E194) were replaced by alanine. We report that Glu-37, Glu-39, Arg-77, Glu-192, and Glu-194 are essential for gamma-phosphate cleavage. The five essential residues are conserved in the capping enzymes of Shope fibroma virus, molluscum contagiosum virus, and African swine fever virus. Probing the structure of D1(1-545) by limited V8 proteolysis suggested a bipartite subdomain structure. The essential residue Glu-192 is the principal site of V8 cleavage. Secondary cleavage by V8 occurs at the essential residue Glu-39. The triphosphatase-defective quadruple mutant transferred GMP to the triphosphate end of poly(A) to form a tetraphosphate cap structure, GppppA. We report that GppppA-capped RNA is a poor substrate for cap methylation by the vaccinia virus and Saccharomyces cerevisiae RNA (guanine-7) methyltransferases. The transcription termination factor activity of the D1-D12 capping enzyme heterodimer was not affected by mutations that abrogated ATPase activity. Thus, the capping enzyme is not responsible for the requirement for ATP hydrolysis during transcription termination.

Acid Anhydride Hydrolases↗

Characterization of an ATP-dependent DNA ligase encoded by Chlorella virus PBCV-1.

We report that Chlorella virus PBCV-1 encodes a 298-amino-acid ATP-dependent DNA ligase. The PBCV-1 enzyme is the smallest member of the covalent nucleotidyl transferase superfamily, which includes the ATP-dependent polynucleotide ligases and the GTP-dependent RNA capping enzymes. The specificity of PBCV-1 DNA ligase was investigated by using purified recombinant protein. The enzyme catalyzed efficient strand joining on a singly nicked DNA in the presence of magnesium and ATP (Km, 75 microM). Other nucleoside triphosphates or deoxynucleoside triphosphates could not substitute for ATP. PBCV-1 ligase was unable to ligate across a 2-nucleotide gap and ligated poorly across a 1-nucleotide gap. A native gel mobility shift assay showed that PBCV-1 DNA ligase discriminated between nicked and gapped DNAs at the substrate-binding step. These findings underscore the importance of a properly positioned 3' OH acceptor terminus in substrate recognition and reaction chemistry.

Adenosine Monophosphate↗

An ATPase component of the transcription elongation complex is required for factor-dependent transcription termination by vaccinia RNA polymerase.

Vaccinia virus RNA polymerase terminates transcription in response to a specific signal UUUUUNU in the nascent transcript. Transduction of this signal to the elongating polymerase requires a virus-encoded termination factor, VTF. The existence of a second termination factor was suggested by the finding that transient exposure of purified elongation complexes to heparin rendered them refractory to VTF-induced termination. Loss of termination competence correlated with the removal of several polypeptide components of the elongation complex. We present the identification of factor X, an activity that restored VTF responsiveness to heparin-stripped ternary complexes. We propose that factor X, which has an associated DNA-dependent ATPase activity, mediates the requirement for ATP hydrolysis during transcription termination.

Adenosine Triphosphatases↗

Mutations within a conserved region of vaccinia topoisomerase affect the DNA cleavage-religation equilibrium.

The segment of the vaccinia DNA topoisomerase from residues 143 to 167 (VGLLTLKNKHIEISPDEIVIKFVGK) is conserved in other members of the eukaryotic type I topoisomerase family. In order to gauge the function of this region, we performed a mutational analysis in which 23 of 25 positions were substituted by alanine. Several non-alanine mutations were also studied. Purified wild-type and mutant proteins were compared with respect to their activities in relaxing supercoiled DNA and in single-turnover strand cleavage. Lys167, an invariant residue, was judged essential for catalysis, insofar as alanine replacement resulted in a 100-fold decrement in specific activity. Alanine substitutions for invariant residues Gly144 and Gly166 were well-tolerated, but a G144R mutation inactivated the enzyme and G166R reduced activity by two orders of magnitude. More modest effects of other mutations were demonstrated by kinetic analysis of the single-turnover DNA cleavage and religation reactions and by studies of covalent adduct formation under equilibrium conditions. Mutations G144A and T147A elicited a shift in the cleavage-religation equilibrium toward the non-covalently bound state; this was caused by slowing of the forward cleavage reaction. Mutations F164A, G166A, G166R, K167A, and K167R produced opposite effects on reaction equilibrium, resulting in higher levels of covalent complex formation. We suggest that invariant residues F164, G166, and K167, constitute part of the active site of the enzyme.

Amino Acid Sequence↗

Covalent DNA binding by vaccinia topoisomerase results in unpairing of the thymine base 5' of the scissile bond.

We have used potassium permanganate to probe contacts between vaccinia DNA topoisomerase and thymine residues in its 5'-CCCTT downward arrow DNA target site. Two major conclusions emerge from the experiments presented: (i) permanganate oxidation of the +2T base of the scissile strand interferes with topoisomerase binding to DNA, and (ii) the +1T base of the scissile strand becomes unpaired upon formation of the covalent topoisomerase-DNA intermediate. Disruption of T:A base pairing is confined to the +1-position. Covalently bound DNAs that have experienced this structural distortion (such DNAs being marked by oxidation at +1T) are fully capable of being religated. We suggest that a protein-induced DNA conformational change is a component of the strand passage step of the topoisomerase reaction.

Base Sequence↗

Factor-dependent release of nascent RNA by ternary complexes of vaccinia RNA polymerase.

Factor-dependent transcription termination during synthesis of vaccinia early mRNAs occurs at heterogeneous sites downstream of a UUUUUNU signal in the nascent transcript. The choice of termination site is flexible and is determined by a kinetic balance between nascent chain elongation and the transmission of the RNA signal to the polymerase. To eliminate ongoing elongation as a variable, we have established a system to study transcript release by purified ternary complexes halted at a defined template position 50-nucleotides 3' of the first U residue of the termination signal. Release of the nascent RNA depends on the vaccinia termination factor (VTF) and an ATP cofactor. Transcript release is blocked by BrUMP substitution within the termination signal of the nascent RNA. In these respects, the release reaction faithfully mimics the properties of the termination event. We demonstrate that ternary complexes are refractory to VTF-mediated transcript release when the first U of the UUUUUNU signal is situated 20 nucleotides from the growing point of the nascent chain. Ribonuclease footprinting of the arrested ternary complexes defines a nascent RNA binding site on the polymerase elongation complex that encompasses a 16-21 nucleotide RNA segment extending proximally from the 3' end of the chain. We surmise that access of VTF to the signal sequence is prevented when UUUUUNU is bound within the nascent RNA binding site. Hence, physical not kinetic constraints determine the minimal distance between the signal and potential sites of 3' end formation.

Base Sequence↗

Identification of contacts between topoisomerase I and its target DNA by site-specific photocrosslinking.

Vaccinia DNA topoisomerase, a eukaryotic type I enzyme, binds and cleaves duplex DNA at sites containing the sequence 5'-(T/C)CCTT. We report the identification of Tyr70 as the site of contact between the enzyme and the +4C base of its target site. This was accomplished by UV-crosslinking topoisomerase to bromocytosine-substituted DNA, followed by isolation and sequencing of peptide-DNA photoadducts. A model for the topoisomerase-DNA interface is proposed, based on the crystal structure of a 9 kDa N-terminal tryptic fragment. The protein domain fits into the DNA major groove such that Tyr70 is positioned close to the +4C base and Tyr72 is situated near the +3C base. Mutational analysis indicates that Tyr70 and Tyr72 contribute to site recognition during covalent catalysis. We propose, based on this and other studies of the vaccinia protein, that DNA backbone recognition and reaction chemistry are performed by a relatively well-conserved 20 kDa C-terminal portion of the vaccinia enzyme, whereas discrimination of the DNA sequence at the cleavage site is accomplished by a separate N-terminal domain, which is less conserved between viral and cellular proteins. Division of function among distinct structural modules may explain the different site specificities of the eukaryotic type I topoisomerases.

Amino Acid Sequence↗

Closing the gap on DNA ligase.

The crystal structure of T7 DNA ligase complexed with ATP illuminates the mechanism of covalent catalysis by a superfamily of nucleotidyl transferases that includes the ATP-dependent polynucleotide ligases and the GTP-dependent mRNA capping enzymes.

Adenosine Triphosphate↗

Vaccinia virus mRNA (guanine-7-)methyltransferase: mutational effects on cap methylation and AdoHcy-dependent photo-cross-linking of the cap to the methyl acceptor site.

The (guanine-7-)methyltransferase domain of the vaccinia virus mRNA capping enzyme is composed of the C-terminal portion of the D1 subunit, D1(498-844), heterodimerized with the D12 protein. In order to identify protein structural elements involved in cap methylation, we introduced eight alanine substitution mutations within two sequence motifs of D1(498-844)-(594)VLAIDFGNG(602) and (681)IHYSF(685)--that are conserved in the cap methyltransferase from yeast. The D1(498-844)-Ala proteins were coexpressed in bacteria with the D12 subunit, and the recombinant D1(498-844)/D12 heterodimers were purified. Alanine substitutions at five positions--Asp-598, Gly-602, Ile-681, Ser-684, and Phe-685--had little or no effect on methyltransferase activity. Mutations at three conserved residues were deleterious. Alanine substitution at Gly-600 reduced the specific activity to 4% of that of the wild-type protein. Substitutions at His-682 and Tyr-683 reduced activity to 4% and 0.05%, respectively. By further mutating Tyr-683 to Phe and Ser, we established that the aromatic group was essential for cap methylation, whereas the hydroxyl moiety was dispensable. Specific binding of the methyltransferase to the RNA cap was demonstrated by UV cross-linking to [32P]GMP-labeled capped poly(A). Label transfer occurred exclusively to the D1(498-844) subunit and was competed by the cap analogs GpppA and m7GpppA. Cap-specific cross-linking to m7GpppA(pA)n was stimulated by AdoHcy, whereas cross-linking to GpppA(pA)n was unaffected by AdoHcy, but stimulated by AdoMet. We suggest that occupancy of the methyl donor site either enhances the affinity for the cap guanosine or alters the protein interface so that a photoreactive moiety is brought closer to the cap structure. The catalytically defective H682A, Y683A, and Y683S mutant methyltransferases were unable to cross-link to the cap in the presence of AdoHcy. The catalytically defective G600A mutant did cross-link to the cap in the presence of AdoHcy, suggesting that this mutation affects the chemical step of transmethylation.

Alanine↗

Physical and functional characterization of the double-stranded RNA binding protein encoded by the vaccinia virus E3 gene.

The vaccinia virus E3 gene encodes a 190-amino acid double-stranded (ds) RNA-binding protein that antagonizes cellular antiviral response pathways triggered by dsRNA and interferon. The physical and functional properties of the E3 protein were determined using recombinant E3 produced in bacteria and purified to homogeneity. We show by sedimentation and chemical crosslinking that E3 is a dimer in solution at high ionic strength. E3 self-associates to form higher order oligomers as ionic strength is reduced from 1 to 0.1 M NaCl. Structure probing by limited proteolysis suggests that E3 consists of amino- and carboxyl-terminal domains separated by a trypsin-sensitive bridge at residues Lys-92 and Arg-95. The carboxyl-domain of E3 contains a conserved dsRNA binding motif (dsRBM) found in many other proteins that interact with dsRNA. That the C-terminal domain per se binds to dsRNA was verified by studies of recombinant E3(100-190) purified from bacteria. The affinity of the C-terminal domain for dsRNA was comparable to that of the full-length E3 protein (KD approximately 7 to 9 nM). E3(100-190) did not bind to DNA-DNA duplexes or to DNA-RNA hybrids, suggesting that the dsRBM specifically recognizes an A-form helix. E3(100-190) is a dimer in solution; however, unlike the full-sized E3 protein, E3(100-190) does not form higher order multimers at low ionic strength.

Base Sequence↗

A temperature-sensitive mutation of the vaccinia virus E11 gene encoding a 15-kDa virion component.

The ts49 mutation of vaccinia virus WR was mapped by marker rescue to the E11 gene encoding a 15-kDa polypeptide. During synchronous infection of BSC40 cells with wild-type virus, immunoreactive E11 protein accumulated in parallel with the onset of late protein synthesis. Immunoblotting of extracts of wild-type virions showed that the E11 protein was encapsidated within the virus core. A normal temporal pattern of viral protein synthesis was observed in cells infected with ts49 at the nonpermissive temperature (40 degrees) and normal-appearing ts49 progeny virions were observed by electron microscopy. Sequencing of the E11 gene of ts49 revealed a single amino acid substitution, Gly(66)Arg, in the mutant E11 polypeptide. The steady-state level of E11 protein during ts49 infection was much lower than that observed during infection with wild-type virus. This was the case at both the permissive and nonpermissive temperatures. We discuss two possible explanations for the thermosensitive growth of ts49: (i) that virus infectivity requires a threshold level of active E11 protein or (ii) that E11 function is conditionally essential.

Chromosome Mapping↗