PubMed HealthSearch

Biomedical subjects

H Aviv

Publications and source records attributed to H Aviv.

14 recordsLinked to original sources

Partial trisomy 11q in a female infant with Robin sequence and congenital heart disease.

We describe the clinical and cytogenetic findings in a female infant with partial trisomy 11q, Robin sequence, cardiac anomalies, and other minor malformations. We compare the phenotypic similarities of our case to a series by Pihko et al. (1981), who reported on 20 cases with partial trisomy 11q with similar associated craniofacial and cardiac defects. We conclude that genetic etiologies for patients diagnosed with the Robin sequence may be more common than previously believed and that initial karyotyping should be performed to aid both diagnosis and clinical management. In addition, the pattern of Robin sequence and cardiac defects may be specifically suggestive of partial trisomy 11q.

Chromosomes, Human, Pair 11

Evaluation of several enrichment procedures for the isolation of recombinant plasmid DNA.

A number of methods for the selective enrichment of recombinant plasmids were examined; these include alkaline phosphatase treatment of the restricted pBR322 vector, as well as a combination of this and S1 nuclease treatment of the ligated mixture of pBR322 and pCR1 plasmids or S. griseus DNA followed by D-cycloserine treatment to enrich for cells carrying recombinant molecules. The relative efficiencies of these methods were compared.

Alkaline Phosphatase

Methylation and capping of RNA polymerase II primary transcripts by HeLa nuclear homogenates.

HeLa nuclear homogenates incubated in vitro incorporate [beta-32P]ATP and S-[methyl-3H]-adenosylmeth-ionine ([3H]SAM) into blocked methylated 5' termini of newly synthesized RNA. Approximately 10% of the RNA chains initiated in vitro with [beta-32P]ATP are subsequently blocked by condensation of GMP to di- or triphosphate terminated RNA. The blocked termini can then be methylated by transfer of methyl groups from [3H]SAM to the 7 position of the guanosine and 2'-O position of the adenosine to form m7Gpp*pAm- capped terminus. In addition to conventional triphosphate caps, HeLa nuclear homogenates produce capping structures containing two phosphate residues in the pyrophosphate bridge. The two distinct cap forms were separated by DEAE-cellulose chromatography and analyzed. In contrast to triphosphate caps (m7GpppXm) in which X can be any one of the four nucleosides (G, A, C, or U), in diphosphate caps (m7GppXm), more than 95% of the penultimate nucleoside Xm is G. Incorporation of both [beta-32P]ATP and [3H]SAM into caps was markedly reduced by low concentrations of alpha-amanitin. However, an ammonium sulfate fraction of the nuclear homogenate can cap beta-32P-labeled RNA (pp*pA-RNA) to form m7Gpp*pA-RNA, in the presence of 0.5 microgram/mL of alpha-amanitin. Therefore, the nuclear capping enzyme is resistant to this drug. Our results indicate that RNA polymerase II primary transcripts are the substrate for the cellular capping enzyme and that the beta phosphate in the pyrophosphate bridge (m7GgammapbetapalphapXm) is derived from the 5' ends of the RNA chains.

Amanitins

Initiation of RNA synthesis in isolated nuclei.

Ribonucleotide triphosphates, labeled at the beta position, were synthesized and used directly to quantify RNA chain initiation in nuclei isolated from Friend cells grown in tissue culture. At the optimal salt concentration, low-molecular-weight RNAs (4-5 S) synthesized by RNA polymerase III were the predominant species initiated. Less than 5% of the molecules were initiated by polymerase II. We calculate that 50-80% of the small RNA molecules synthesized in vitro were also initiated in vitro. Assuming that a substantial fraction of the nuclei were active in vitro, the number of 4-5 S RNA molecules initiated per nucleus was about 100 molecules/min.

Acetates

Globin RNA precursor molecules: biosynthesis and process in erythroid cells.

Hybridization of labeled RNA with excess amounts of DNA complementary to globin mRNA, in conjunction with a pulse-chase technique, were used to investigate the biosynthetic pathway of globin mRNA in erythroid cells. Three species of molecules sharing common sequences with globin mRNA were detected in the nuclei of these cells, two of which are larger than the cytoplasmic globin mRNA. One species was approximately 7 times larger than globin mRNA ("27S"), and the other ("15S") was only about twice the size of cytoplasmic globin mRNA. The largest species lacked poly(A) sequences, while the others contained poly(A), After chase, the large RNA species gradually disappeared ( 1/2 = 5 min), while the cytoplasmic 10S species accumulated. From these results a model is proposed describing the biosynthetic pathway of globin RNA transcription: an early transcription product is the large molecule "27S" (approximately 5000 nucleotides long) which is then cleaved into a smaller species "15S" (approximately 1500 nucleotides). This intermediate precursor is then clipped, presumably at the 5' end, and finally converted to the exported "10S" molecule (approximately 750 nucleotides) which accumulates in the cytoplasm.

Cell Line

Quantitation of labeled globin messenger RNA by hybridization with excess complementary DNA covalently bound to cellulose.

A method is described to quantitate labeled globin mRNA by hybridization with excess cDNA which was enzymatically polymerized on oligo(dT)-cellulose. In a large excess of cDNA-cellulose the rate of RNA hybridization was dependent on DNA concentration and not on RNA concentration. Nonhybridized RNA can be digested by RNase and washed from the cDNA which is covalently bound to cellulose. This enables the detection of labeled globin mRNA even when present in a porportion as low as 0.02-0.03% of the total RNA.

Animals

Preferential synthesis of viral late RNA by nuclei isolated from SV40 lytically infected cells.

Nuclei from SV40-infected monkey cells were isolated late in lytic infection and their cell-free transcriptional activity was characterized. 3H-RNA synthesized in vitro was hybridized to excess quantities of separated SV40 DNA strands which were each covalently bound to Sepharose. It was found that 3-5% of the newly synthesized RNA is virus-specific and that the plus-strand DNA, coding for late RNA sequences, is transcribed at a rate about 15 times higher than that of the minus-strand DNA, which codes for early RNA sequences. This indicates that transcriptional control has a major role in determining the relative abundancy of early and late RNA classes in lytically infected cells.

Amanitins

Biosynthesis and stability of globin mRNA in cultured erythroleukemic Friend cells.

Biosynthesis and stability of the mRNA population in DMSO-induced Friend erythroleukemic cells were studied after labeling the RNA with 3H-uridine and then chasing it with nonlabeled uridine. Globin RNA metabolism was studied by hybridization to excess complementary DNA convalently coupled to oligo(dT)-cellulose. After a labeling period of 120 min, 2-4% of the poly(A)-containing labeled RNA was in globin RNA; it decayed with a half-life of 16-17 hr. The rest of the poly(A)-containing RNA was composed to two kinetic populations: 85-90% decayed with a half-life of about 3 hr, while 10% decayed with a half-life of about 37 hr. The portion of globin RNA in labeled poly(A)-containing RNA behaved in an unexpected fashion during the chase period. During the initial chase period, the percentage of globin RNA increased rapidly, reaching a maximum of about 15% at 20 hr, but it subsequently declined gradually. Based on these findings, a model was built that describes the changes in the proportion of globin mRNA in poly(A)-containing RNA during continuous synthesis and after chase of the labeled RNA. It appears that if the parameters described remain constant during the maturation of erythroblasts, then this model would not account for the almost exclusive presence of globin RNA in the reticulocyte. By far the most effective way to achieve this high level of globin RNA is the destabilization of the mRNA population which is more stable than globin RNA, and not the stabilization of globin RNA itself.

Cell Line

Purification of SV-40 messenger RNA by hybridization to SV-40 DNA covalently bound to Sepharose.

SV-40 DNA sheared form was coupled in a stable covalent bond to cyanogen bromide activated Sepharose. Under the conditions used at least 80% of the DNA was bound to Sepharose. The T 1/2 of hybridization of 0.5 mug/ml of SV-40 cRNA to SV-40 DNA-Sepharose was 1 hr. This rate of hybridization is sufficiently rapid to purify SV-40 sequences from solutions containing as little as 0.05-0.1 mug/ml. Nonspecific hybridization of RNA is in the range of 0.1-0.2% of the total input RNA. The DNA-Sepharose is fairly stable and can be reused several times to purify RNA. The SV-40 DNA-Sepharose was used to select large quantities of virus specific RNA from SV-40 infected BS-C-1 cells. The virus specific RNA when added to cell-free extracts from wheat germ was shown to direct the synthesis of the major viral structural protein VP-1.

Cells, Cultured