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K U Sprague

Publications and source records attributed to K U Sprague.

13 recordsLinked to original sources

New twists in class III transcription.

Recent work emphasizes the similarity between polymerase II and III in the mechanisms of transcription. Highlights of the past year include the alignment of individual polypeptides within class III transcription complexes and the demonstration that class III transcription machinery includes TFIID and an RNA component.

Animals

A class III transcription factor composed of RNA.

It is generally assumed that the machinery that transcribes genes is composed entirely of polypeptides. However, in vitro transcription by silkworm RNA polymerase III requires a transcription factor that is not a polypeptide. This component, TFIIIR, is distinct from the previously identified transcription components: RNA polymerase III, and the accessory factors TFIIIA, TFIIIB, TFIIIC, and TFIIID. The newly discovered TFIIIR is a macromolecule that appears to be composed of RNA. It is resistant to heat, detergent, phenol, protease, and deoxyribonuclease, but it is sensitive to alkali and ribonuclease.

Animals

Sequences far downstream from the classical tRNA promoter elements bind RNA polymerase III transcription factors.

We have examined the interaction of transcription factors TFIIIC and TFIIID with a silkworm alanine tRNA gene. Previous functional analysis showed that the promoter for this gene is unusually large compared with the classical tRNA promoter elements (the A and B boxes) and includes sequences downstream from the transcription termination site. The goal of the experiments reported here was to determine which sequences within the full promoter make stable contacts with transcription factors. We show that when TFIIIC and TFIIID are combined, a complex is formed with the tRNA(Ala)C gene. Neither factor alone can form this complex. DNase I digestion of gene-factor complexes reveals that most of the tRNA(Ala)C promoter is in contact with factors. The protected region extends from -1 to at least +136 and includes both the A and B boxes and the previously identified downstream promoter sequences. Analysis of mutant promoters shows that sequence-specific contacts throughout the protected region are required for binding. The role of 3'-flanking sequences in transcription factor binding explains the contribution of these sequences to the tRNA(Ala)C promoter. We discuss the possibility that such sequences affect promoter strength in other tRNA genes.

Animals

The nucleotide sequence adjacent to poly(A) in silk fibroin messenger RNA.

The 3'-terminal nucleotide sequence of fibroin mRNA has been determined. A cDNA transcript primed by oligo(dT) hybridized to the poly(A) segment of fibroin mRNA was used to determine the sequence immediately adjacent to poly(A). A specific primer complementary to this sequence then allowed synthesis of 5'-terminally homogeneous transcripts amenable to analysis by rapid sequencing methods. The 3' terminus of fibroin mRNA contains an unusually long oligo(U) stretch, as well as the sequence A2UA3 recently found in 3' non-coding regions of other eukaryotic mRNAs. It lacks the oligonucleotides characteristic of the repetitive coding region of fibroin mRNA.

Animals

Alleles of the fibroin gene coding for proteins of different lengths.

Bombyx mori silkworms producing fibroin proteins of different lengths have been analyzed genetically and shown to possess variant alleles of a single fibroin gene. The structures of two alleles have been compared by using restriction endonuclease sites inside and outsite the fibroin gene as physical markers. We find that fibroins distinguishable on the basis of length are encoded by genes with different internal structures and overall lengths. Our results strongly support the idea that rearrangements within the highly repetitive sequences of the fibroin gene are the result of unequal recombination, and can give rise to variant fibroin genes with altered coding lengths.

Alleles

The primary transcription product of a silkworm alanine tRNA gene: identification of in vitro sites of initiation, termination and processing.

A 13.5 Kb fragment of Bombyx mori DNA containing a single tRNA2Ala gene has been cloned, and transcribed in vitro with Xenopus germinal vesicle extracts. The primary transcription product of the tRNA2Ala gene has been isolated and shown to possess an unprocessed triphosphorylated 5' terminus. Products resulting from processing of this transcript have also been isolated and characterized. Complete nucleotide sequence analysis of this cloned alanine tRNA gene and its primary transcript shows that transcription initiates three nucleotides away from the mature tRNA2Ala 5' end and terminates in a U cluster 22 nucleotides beyond the last encoded 3' nucleotide of the mature species. Sequence determination of the products of in vitro maturation shows that in contrast to the tRNA processing mechanism characteristic of procaryotes, the extra 3'-nucleotides in this silkworm tRNA precursor are removed by a single endonucleolytic cleavage.

Alanine

A single base-pair change creates a Chi recombinational hotspot in bacteriophage lambda.

X4+ mutations, responsible for the Chi phenotype in phage lambda, locally increase the rate of recombination promoted by the Escherichia coli recombination system (Rec). X+ mutations in the cII gene, one of a few sites in lambda at which such mutations arise, were located genetically and physically with overlapping deletions. DNA sequence analysis of the deletion segment containing the X+ C mutations showed that two independent X+ C mutations arose by the same A-T to T-A transversion. Presumably, this change creates a nucleotide sequence recognized by a protein involved in a rate-limiting step of recombination.

Base Sequence

The nucleotide sequence of two silk gland alanine tRNAs: implications for fibroin synthesis and for initiator tRNA structure.

The nucleotide sequences of two major alanine tRNAs from the Bombyx mori posterior silk gland have been determined. One of these tRNAs appears to be specific to the silk gland, where its accumulation is associated with the rapid production of fibroin. Both sequences are identical, with the exception of a single nucleotide in the anticodon stem. A striking feature of both alanine tRNAs is that loop IV contains sequences previously believed to be restricted to initiator tRNA.

Alanine

The Bombyx mori silk proteins: characterization of large polypeptides.

Proteins taken directly from the Bombyx mori silk gland have been separated and identified as either fibroin or sericin on the basis of their location within the gland and their amino acid composition. Molecular weights of these polypeptides have been determined by sodium dodecyl sulfate polyacrylamide gel electrophoresis, and by agarose-guanidine chromatography. Fibroin consists of approximately equimolar amounts of two large (350,000) polypeptide chains. These may be the products of distinct fibroin alleles present in hybrid silkworm strains. Sericin, on the other hand, is composed of at least the three largest polypeptides (130,000-220,000) present in a mixture of proteins ranging in size from about 20,000 to 220,000.

Alleles

The terminal sequences of Bombyx mori 18S ribosomal RNA.

The 5' and 3' terminal T1 oligonucleotides of 32p-labelled B. mori 18S ribosomal RNA were isolated by a two dimensional electrophoretic (diagonal) technique. Nucleotide sequence analysis showed that the 3' terminal fragment, (G)AUCAUUAOH, is identical to that previously obtained from the 18S rRNA of several other eukaryotic species. The sequence of the B. mori 5' terminal fragment is pUCCUCG.

Animals

The 3' terminal oligonucleotide of E. coli 16S ribosomal RNA: the sequence in both wild-type and RNase iii- cells is complementary to the polypurine tracts common to mRNA initiator regions.

Application of Sanger techniques to the analysis of the 3' terminal oligonucleotide from E. coli 32-P-labelled 16 S rRNA yields the sequence AUCACCUCCUUAOH. This sequence is identical in RNA isolated from two wild-type strains (MRE600 and E. coli B, SY106) and from a mutant strain (AB301/105) defective in RNase III. Data presented here explains the previous derivation of an incorrect sequence (AUCCUCACUUCAOH) by others. The functional significance of complementarity between the 3' terminus of 16S rRNA and poly-purine tracts commonly found in mRNA initiator regions is discussed.

Base Sequence