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D W Kindelberger

Publications and source records attributed to D W Kindelberger.

4 recordsLinked to original sources

Nuclear pre-tRNA terminal structure and RNase P recognition.

Nuclear pre-tRNA transcripts often contain an extension of the aminoacyl stem formed by base pairing between the 5'-leader and 3'-trailing sequences, but the -1 position preceding the mature 5' end is usually left unpaired. Considering recently proposed tertiary structural models for RNase P RNAs, we hypothesize that the -1 mismatch prevents a strong, coaxially extended aminoacyl stem, which might otherwise sterically interfere with substrate positioning in the RNase P active site. This hypothesis is tested by creating uninterrupted aminoacyl stem extensions in four nuclear tRNA precursors that normally have a mismatched nucleotide at position -1, and comparing their cleavage rates with those of the normal precursors. Determinations of Km and kcat values for a normal and an altered pre-tRNA(SUP53), which exhibits the most subtle structural alteration immediately upstream of the cleavage site, indicate that the mismatch at position -1 is an important structural requirement for both substrate affinity and efficient catalysis (and/or product release) by nuclear RNase P. This conclusion is further supported in vivo, where the pre-tRNA(SUP53) mutant precursor lacking the -1 mismatch is shown to accumulate.

Endoribonucleases↗

An RNase P RNA subunit mutation affects ribosomal RNA processing.

RNase P is a ribonucleoprotein endoribonuclease responsible for the 5' maturation of precursor tRNAs in all organisms. While analyzing mutations in conserved positions of the yeast nuclear RNase P RNA subunit, significant accumulation of an aberrant RNA of approximately 193 nucleotides was observed. This abundant RNA was identified as a 3'extended form of the 5.8S rRNA. This strain also displays a slightly elevated level of other rRNA processing intermediates with 5-ends at processing site A2 in the internal transcribed spacer 1 (ITS1) region of the rRNA primary transcript. To test whether pre-rRNA in the region of ITS1/5.8S/ITS2 is a substrate for RNase P in vitro, nuclear RNase P was partially purified to remove contaminating nucleases. Cleavage assays were performed using an rRNA substrate transcribed in vitro which includes the 5.8S region and its surrounding processing sites in ITS1 and ITS2. Discrete cleavages of this rRNA substrate were coincident with the peak fractions of nuclear RNase P, but not with fractions corresponding to mitochondrial RNase P or ribonuclease MRP RNA. The cleavage activity is sensitive to treatment with micrococcal nuclease, also consistent with an activity attributable to RNase R The strong RNase P cleavage sites were mapped and their possible relationships to steps in the rRNA processing pathway are considered. These observations suggest an intimate relationship between the processes of tRNA and rRNA maturation in the eukaryotic nucleus.

Base Sequence↗

Structure-sensitive RNA footprinting of yeast nuclear ribonuclease P.

Several enzymatic and chemical reagents were used to probe the secondary structure of Saccharomyces cerevisiae nuclear RNase P RNA in the presence and absence of its protein components. Double-stranded regions were detected with RNase V1 and single-stranded regions with RNase ONE (Escherichia coli RNase I). Nucleotides not paired at Watson-Crick positions were monitored with dimethyl sulfate, kethoxal, and 1-cyclohexyl-3-[2-(N-methylmorpholinio)ethyl]carbodiimide p-toluenesulfonate. The results supported most aspects of the previously proposed, phylogenetically-derived RNA secondary structure, although minor refinements allowed incorporation of both the biochemical and phylogenetic data. Digestion of the RNase P protein(s) with proteinase K gave enhanced reactivities to structure probes at selected positions, indicating regions of the RNA made inaccessible by the presence of the protein subunit(s). The regions of RNA protected in the yeast nuclear holoenzyme were considerably more extensive than that seen in the Escherichia coli holoenzyme, consistent with the observation that the protein moiety generally comprises a larger percentage of the RNase P holoenzyme in eukaryotes than in eubacteria.

Base Composition↗

Replacement of the Saccharomyces cerevisiae RPR1 gene with heterologous RNase P RNA genes.

Phylogenetic studies of yeast nuclear RNase P RNA genes have shown a striking conservation of secondary structure for the Saccharomyces and Schizosaccharomyces RNase P RNAs, yet much of the primary sequence and many substructures vary among the RNAs examined. To investigate which sequences and structural features can be varied and still allow function in a heterologous organism, RNase P genes from several yeast species were tested for the ability to substitute for the Saccharomyces cerevisiae RNA. The RNase P genes from Saccharomyces carlsbergensis and Saccharomyces kluyveri could act as the sole source of RNase P RNA within S. cerevisiae cells, whereas the genes from Saccharomyces globosus and Schizosaccharomyces pombe could not. Although heterologous RNase P RNAs were synthesized by the cells in all cases, the RNAs that complemented tended to be processed from longer precursor transcripts into mature-sized RNase P RNA, while the RNAs that did not complement tended to accumulate as the longer precursor form. The results identified sequences and structures in the RNA that are not essential for interaction with species-specific proteins, processing or localization, and suggested other positions that may be candidates for such processes.

Base Sequence↗