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Biomedical subjects

L Gold

Publications and source records attributed to L Gold.

At least 109 records · Page 6Linked to original sources

Domains of initiator tRNA and initiation codon crucial for initiator tRNA selection by Escherichia coli IF3.

Initiation factors are used by Escherichia coli to select the initiator tRNA over elongator tRNAs during translation initiation. IF3 appears to "inspect" the anticodon end of the tRNA, probably along with the initiation codon. The anticodon stem and loop of the initiator tRNA, together with part of the initiation codon of the mRNA, can be thought of as a unit. Changes made in the anticodon stem, the anticodon loop, or the anticodon of an initiator tRNA fragment result in a loss of selection by IF3 in an in vitro assay for translation initiation. IF3 allows the selection of an initiator tRNA anticodon stem and loop fragment on GUG and UUG codons but does not select that tRNA fragment in response to AUU.

Bacterial Proteins↗

Dual translational initiation sites control function of the lambda S gene.

Lysis gene S of phage lambda has a 107 codon reading frame beginning with the codons Met1-Lys2-Met3. Genetic data have suggested that translational initiation occurs at both Met1 and Met3, generating two polypeptides, S107 and S105 respectively. We have proposed a model in which the proper scheduling of lysis depends on the partition of translational initiations between the two start codons. Here, using in vitro methods, we show that two stem-loop structures, one immediately upstream of the reading frame and a second approximately 10 codons within the gene, control the partitioning event. Utilizing primer-extension inhibition or 'toeprinting', we show that the two S start codons are served by two adjacent Shine-Dalgarno sequences. Moreover, the timing of lysis supported by the wild-type and a number of mutant alleles in vivo can be correlated with the ratio of ternary complex formation over Met1 and Met3 in vitro. Thus the regulation of the S gene is unique in that the products of two adjacent in-frame initiation events have opposing function.

Bacteriolysis↗

Granular cell odontogenic cyst: a unicystic ameloblastoma with late recurrence as follicular ameloblastoma.

This report is a follow-up of the original case of granular cell odontogenic cyst described by Gold and Christ in 1970. The lesion, originally treated by enucleation in 1965, recurred 18 years later as a follicular ameloblastoma with prominent plexiform and acanthomatous histologic patterns. No histologic evidence of granular cells was noted in the recurrent lesion. The recurrent ameloblastoma was treated by marginal resection of the body of the mandible and immediate reconstruction with an iliac bone graft. The anatomic restoration was excellent, and there is no recurrence 5 years postoperatively. This case supports the view that the granular cell odontogenic cyst is a unicystic (monocystic) granular cell ameloblastoma, and that the presence of granular cells in ameloblastoma is not a permanent feature and may be of little value as a prognostic indicator of aggressiveness.

Ameloblastoma↗

Selection of the initiator tRNA by Escherichia coli initiation factors.

We have developed a new technique, called 'toeprinting,' which has allowed a study of the tRNA-binding properties of Escherichia coli translation initiation complexes. In response to natural mRNAs, the initiator tRNA and a variety of elongator tRNAs bind to the same tRNA-binding site on the 30S ribosomal subunit as long as a cognate codon is present near the Shine and Dalgarno sequence. The selection of the initiator tRNA in 30S initiation complexes is accomplished by initiation factors IF2 and IF3. 70S ribosomes accept both initiator tRNA and elongator tRNAs on natural mRNAs, much like 30S ribosomal subunits; IF3 and IF2 do not, however, select the initiator tRNA on 70S initiation complexes unless the initiation factor IF1 is present.

Base Sequence↗

Location and molecular cloning of the structural gene for the deoxyguanosine triphosphate triphosphohydrolase of Escherichia coli.

The structural gene for deoxyguanosine triphosphate triphosphohydrolase (dGTPase) (EC 3.1.5.1) and its regulator, optA, have been located on a lambda phage carrying a 17.5kb Escherichia coli DNA insert. The DNA fragment has been excised and ligated into pBR325 and also transferred to another lambda vector. From the results of transduction and transformation experiments, we find that the structural gene for dGTPase is very closely linked to optA and dapD, which locates it at approximately 3.6 minutes on the genetic map of E. coli K12. We propose the mnemonic dgt as the designation for the structural gene for this enzyme.

Bacteriophage lambda↗

Ribosome-binding sites and RNA-processing sites in the transcript of the Escherichia coli unc operon.

The polycistronic mRNA encoding the nine genes of the unc operon of Escherichia coli was studied. We demonstrated the ribosome-binding capabilities of six of the nine unc genes, uncB, uncE, uncF, uncH, uncA, and uncD, by using the technique of primer extension inhibition or "toeprinting." No toeprint was detected for the other genes, uncI, uncG, and uncC. The lack of a toeprint for uncG suggests that this gene is expressed by some form of translational coupling, such that either uncG is read by ribosomes which have translated the preceding gene, uncA, or translation of uncA is required for ribosome binding at the uncG site. RNA sequencing and primer extension in the regions of uncI and uncC, the first and last genes in the operon, respectively, gave less intense signals than those obtained for the other unc genes. This suggested that there are fewer copies of those regions of the transcript and that processing of the unc transcript occurred. Using primer extension and RNA sequencing, we identified sites in the unc transcript at which processing appears to take place, including a site which may remove much of the uncI portion of the transcript. Northern (RNA) blot analysis of unc RNA is consistent with the presence of an RNA-processing site in the uncI region of the transcript and another in the uncH region. These processing events may account for some of the differential levels of expression of the unc genes.

Base Sequence↗

Identification of a T4 gene required for bacteriophage mRNA processing.

A ribonucleolytic activity that cleaves within the Shine/Dalgarno sequences of the bacteriophage T4 motA and ORF2 mRNAs was recently described. We have identified additional sites of processing within several other ribosome binding sites, including two sites in the polycistronic frd transcript. Deletion mutants (farP) that overproduce the product of frd are defective in this mRNA processing. The mutants were used to identify processing events dependent on the T4 activity including attack at nuclease-sensitive sites within the coding sequences of some genes and within the intercistronic region 5' of gene 43. All known processing sites lie within similar sequences. Another mutant in mRNA processing carries a point mutation in one of the open reading frames (orf61.9) removed by the farP deletions. Introduction of a cloned copy of this open reading frame into a unique site in the chromosome of farP phage is sufficient to restore mRNA processing capability. The open reading frame probably encodes the T4 regB protein.

Base Sequence↗

Autogenous regulatory site on the bacteriophage T4 gene 32 messenger RNA.

We have identified the binding site on the bacteriophage T4 gene 32 mRNA responsible for autogenous translational regulation. We demonstrate that this site is largely unstructured and overlaps the initiation codon of gene 32 as previously predicted. Co-operative binding of gene 32 protein to this site specifically blocks the formation of 30 S-tRNA(fMet)-gene 32 mRNA ternary complexes and initiation of translation. The translational operator is bound co-operatively by gene 32 protein and this binding is facilitated by a nucleation site far upstream from the initiation codon. A similar unstructured mRNA lacking this nucleation site is also bound co-operatively, but only at concentrations of gene 32 protein higher than those needed to repress binding of ribosomes to the gene 32 mRNA. Some sequence-specific interactions may also influence this binding. Comparison of the bacteriophage T2, T4 and T6 gene 32 operator sequences leads us to propose that the nucleation site is a pseudoknot.

Base Sequence↗

Transcriptional activation of bacteriophage T4 middle promoters by the motA protein.

Transcriptional activation of middle genes in bacteriophage T4 requires the phage-encoded motA protein. Many middle genes are involved in deoxyribonucleotide biosynthesis and phage DNA replication. In the absence of motA, the gene products that are required for DNA synthesis are transcribed from other, upstream promoters. Using primer extension sequencing on RNA templates isolated from T4 motA+ and motA- infected cells, we have characterized 14 motA-dependent transcripts. The T4 middle promoters have a consensus sequence of nine base-pairs, (a/t)(a/t)TGCTT(t/c)A, spaced 11 to 13 nucleotides away from the Escherichia coli--10 consensus sequence, TAnnnT. The motA protein also can act as a transcriptional repressor for at least one early gene. Furthermore, the phage-encoded motA protein can activate in trans a middle promoter resident on a plasmid.

Base Sequence↗

DNA polymerase of bacteriophage T4 is an autogenous translational repressor.

In bacteriophage T4 the protein product of gene 43 (gp43) is a multifunctional DNA polymerase that is essential for replication of the phage genome. The protein harbors DNA-binding, deoxyribonucleotide-binding, DNA-synthesizing (polymerase) and 3'-exonucleolytic (editing) activities as well as a capacity to interact with several other T4-induced replication enzymes. In addition, the T4 gp43 is a repressor of its own synthesis in vivo. We show here that this protein is an autogenous repressor of translation, and we have localized its RNA-binding sequence (translational operator) to the translation initiation domain of gene 43 mRNA. This mechanism for regulation of T4 DNA polymerase expression underscores the ubiquity of translational repression in the control of T4 DNA replication. Many T4 DNA polymerase accessory proteins and nucleotide biosynthesis enzymes are regulated by the phage-induced translational repressor regA, while the T4 single-stranded DNA-binding protein (T4 gp32) is, like gp43, autogenously regulated at the translational level.

Base Sequence↗