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F J Schmidt

Publications and source records attributed to F J Schmidt.

At least 37 records · Page 2Linked to original sources

Sites of initiation and pausing in the Escherichia coli rnpB (M1 RNA) transcript.

DNA sequences affecting the transcription of the Escherichia coli rnpB transcript encoding the catalytic M1 RNA subunit of RNase P have been analyzed. Previous work (Motamedi, H., Lee, Y., and Schmidt, F.J.) (1984) Proc. Natl. Acad. Sci. U. S. A. 81, 3959-3963) identified S1 nuclease protection products corresponding to transcripts originating upstream of the M1 RNA gene. Sequence analysis of the upstream region of rnpB identified three regions homologous to the E. coli consensus promoter sequence. In the present work, analysis of in vitro transcription products by S1 nuclease mapping indicated that all three promoter homologies were capable of directing transcription. The nearest promoter, P-1, was approximately 100 times more active than either of the upstream homologies P-2 and vivo experiments, wherein the three promoter homologies preceding rnpB were cloned into the galactokinase (GalK) expression vector pKO100. The promoter homology nearest to the M1 RNA gene directed the synthesis of GalK above background. The upstream promoter homologies did not direct the synthesis of GalK at a level greater than 1% of transcription from P-1. Deletion of the upstream homologies did not affect transcription from P-1. It was concluded that P-1 is responsible for essentially all M1 RNA transcription in vivo. Single-round transcription experiments in vitro detected strong NusA-independent transcriptional pausing at nucleotides +118 and +121 of the rnpB transcript, with a half-life of 27 s when concentrations of NTPs were near the average Km for elongation. Pausing at these points was eliminated by substitution of ITP for GTP in the transcription mixture. This suggests that pausing is dependent on transcript secondary structure. The position of pausing corresponds to that of a dual stem and loop structure of M1 RNA which has recently been proposed on the basis of phylogenetic sequence analysis.

Base Sequence↗

Teaching human genetics in biochemistry by computer literature searching.

We describe a new user-intense-learning experience that incorporates the teaching of clinical and research applications of human genetics in biochemistry while training first-year medical students to develop skills in computer access to the literature. Human genetics was incorporated into the biochemistry curriculum by providing each student with experience in on-line literature searching in MEDLINE, using Grateful Med, in order to write an abstract about a specific inherited biochemical disorder. We stressed the need for the students to obtain current information in order to understand and interpret the rapidly changing field of human genetics. We taught the students that the most efficient method of obtaining such information was by searching the medical literature via computer.

Biochemistry↗

[Decoupling or ultra-short therapy of torticollis].

S. Rentrop's survey of literature on the history of the psychotherapeutic treatment of torticollis (76 titles) last year has encouraged us to contribute two examples of treatment to the discussion. The large number of theories, explanations, and treatment methods reveals the wide variety of increasingly effective treatment techniques, but it also makes apparent the dilemma involved in the search for a clear and comprehensive theory. On the basis of two case studies, we would like to show how torticollis symptoms could be eliminated with the help of a one-time focus on a largely unconscious traumatic complex, without additional therapy. One of the two female patients was treated in a supportive clinical environment, the other appeared at the out-patient clinic only once. Finally, we discuss the theoretical approach involved.

Adult↗

Dependence of M1 RNA substrate specificity on magnesium ion concentration.

We have constructed a plasmid expressing E. coli M1 RNA, the catalytic RNA subunit of ribonuclease P, under the control of a phage T7 promoter. The active M1 RNA species synthesized in vitro by T7 RNA polymerase from this vector was reacted with the tRNA(Gln) - tRNA(Leu) precursor RNA (Band K) encoded by phage T4. Only the tRNA(Leu) moiety of this dimeric precursor RNA contains the 3' terminal C-C-A sequence common to all tRNAs. We observed that protein-free M1 RNA was capable of processing the precursor RNA at the 5' ends of both tRNA tRNA sequences. The rate of cleavage of the tRNA(Gln) sequence was more strongly dependent on [Mg2+] than that of tRNA(Leu), increasing severalfold between 100 and 500 mM Mg2+, conditions under which the rate of cleavage at the tRNA(Leu) sequence was constant.

Base Sequence↗

Gene organization and structure of the Streptomyces lividans gal operon.

We present the gene organization and DNA sequence of the Streptomyces lividans galactose utilization genes. Complementation of Escherichia coli galE, galT, or galK mutants and DNA sequence analysis were used to demonstrate that the galactose utilization genes are organized within an operon with the gene order galT, galE, and galK. Comparison of the inferred protein sequences for the S. lividans gal gene products to the corresponding E. coli and Saccharomyces carlbergensis sequences identified regions of structural homology within each of the galactose utilization enzymes. Finally, we discuss a potential relationship between the gene organization of the operon and the functional roles of the gal enzymes in cellular metabolism.

Amino Acid Sequence↗

Two promoters, one inducible and one constitutive, control transcription of the Streptomyces lividans galactose operon.

Galactose utilization in Streptomyces lividans was shown to be controlled by an operon that is induced in the presence of galactose and repressed by glucose. Two promoters, galP1 and galP2, which direct transcription of two distinct polycistronic transcripts, have been identified. galP1 is located immediately upstream of the operon and is induced in the presence of galactose. This promoter directs transcription of the galT, galE, and galK genes. The second promoter, galP2, is located within the operon just upstream of the galE gene. This promoter is responsible for constitutive transcription of the galE and galK genes. Comparison of the S. lividans gal operon to the Escherichia coli gal operon indicates the presence of a constitutive promoter positioned upstream of galE in both operons. We suggest that coupling the operon's constitutive promoter to the galE gene fulfills a physiological requirement for constitutive UDPgalactose 4-epimerase expression in Streptomyces.

Base Sequence↗

Observations on the Tullio phenomenon.

Vestibular responses (vertigo, nystagmus-like eye movements) to acoustic stimuli are known as the "Tullio phenomenon". Detailed electro-oculographic analysis of this reaction, as observed in a 30-year-old patient, revealed the following: a maximum amplitude of eye movement (mainly vertical) was achieved by sine wave bursts of high intensity, a frequency of 500 to 1000 Hz and a duration of 100 ms. The ocular deviation was composed of a fast initial component, followed by a slower resetting movement that was often divided into two parts of different velocities. At longer stimulus durations (more than 100 ms) the electro-oculogram showed a fractionation of the eye deviation, terminating in an "off-response". Various positions of the patient's head influenced the direction of the eye motion. The possibility that the Tullio phenomenon may be due to an abnormal excitation of the statolith organs is discussed.

Acoustic Maculae↗

Characterization of the in vivo RNA product of the pOUT promoter of IS10R.

We characterized a single RNA species (RNAout1) which was the major in vivo RNA made from pOUT of IS10R. RNAout1 was 70 nucleotides long; its 5' end corresponded exactly to the in vitro start of pOUT transcription. The concentration of RNAout1 was estimated at 5 to 10 molecules per cell containing the single-copy plasmid NR1. RNA sequences from pOUT of IS10L were detected at a much lower (less than one molecule per cell) steady-state concentration and may be preferentially degraded in vivo. We suggest that the low level of the IS10L transcript led to the inability of IS10L sequences to translationally inhibit Tn10 transposition.

Base Sequence↗

Tandem promoters preceding the gene for the M1 RNA component of Escherichia coli ribonuclease P.

The nucleotide sequence of a cloned gene for the RNA component of Escherichia coli ribonuclease P, M1 RNA, is presented. The sequence determined extends 320 nucleotides upstream of the 377-base-pair (bp) structural gene and includes three sequences homologous to the consensus E. coli promoter sequence. Two nucleotides found in the M1 RNA structural gene sequence were not found in a previously determined gene sequence of another M1 RNA clone [Reed, R. E., Baer, M. F., Guerrier-Takeda, C., Donis-Keller, H. & Altman, S. (1982) Cell 30, 627-636]. In vitro transcription of supercoiled plasmid DNA containing the M1 RNA gene resulted in a major transcript arising from the strong promoter nearest to the mature M1 RNA. RNAs encoded by the M1 RNA clone in vivo were examined by S1 nuclease mapping. The results indicated that in vivo transcripts originate from all three promoters preceding the M1 RNA gene. These transcripts are apparently processed in a multistep pathway to generate the 5' end of mature M1 RNA.

Base Sequence↗

Site of action of a ribosomal RNA methylase responsible for resistance to erythromycin and other antibiotics.

The enzyme which confers resistance to erythromycin in the producing organism Streptomyces erythraeus dimethylates a single adenine residue in Bacillus stearothermophilus 23 S rRNA. This corresponds to residue Ade 2058 in Escherichia coli 23 S RNA. The methylase responsible for resistance to macrolides, lincomycin, and streptogramin B-related antibiotics in Staphylococcus aureus also acts at this site.

Anti-Bacterial Agents↗

The binding site for ribosomal protein L11 within 23 S ribosomal RNA of Escherichia coli.

Ribosomal protein L11 of Escherichia coli was bound to 23 S rRNA and the resultant complex was digested with ribonuclease T1. A single RNA fragment, protected by protein L11, was isolated from such digests and was shown to rebind specifically to protein L11. The nucleotide sequence of this RNA fragment was examined by two-dimensional fingerprinting of ribonuclease digests. It proved to be 61 residues long and the constituent oligonucleotides could be fitted perfectly between residues 1052 and 1112 of the nucleotide sequence of E. coli 23 S rRNA.

Bacterial Proteins↗

Ossification of the skull of the growing hamster. Autoradiographic observations.

Desmal ossification of the roof of the skull and of the alveolus of the incisor teeth of the mandible of growing hamsters and secondary ossification of the mandible were followed by autoradiography. Matrix production patterns as known from chondral ossification can be confirmed for desmal ossification as well. The secondary cartilage of the mandible shows an extremely low glycine turnover. These cells and the surrounding intercellular substance show different incorporation patterns as known for the epiphyseal cartilage of long bones. Secondary cartilage does not have growth functions for the mandible.

Animals↗

Low molecular weight RNA species encoded by a multiple drug resistance plasmid.

Multiple drug resistance plasmid NR1 is shown to code for at least 10 low molecular weight RNAs. These species, ranging in size from 60 to 120 nucleotides, have been purified from minicells by two-dimensional gel electrophoresis and characterized by RNase T1 fingerprinting. Hybridization of purified RNAs to restriction endonuclease digests of NR1 DNA indicates that most are derived from the resistance transfer factor region of the plasmid genome. One RNA was found to be coded by the transposable tetracycline resistance element Tn10, and several are associated with DNA fragments that contain origins of replication.

Escherichia coli↗