Search PubMed⌕ Search

Biomedical subjects

H Manor

Publications and source records attributed to H Manor.

68 records · Page 4Linked to original sources

Amount and distribution of virus-specific sequences in giant RNA molecules isolated from polyoma-infected mouse kidney cells.

A two-step hybridization with polyoma DNA was used to study the composition of giant RNA molecules synthesized in mouse kidney cells late in productive infection by polyoma virus. Giant molecules longer than a complete transcript of the polyoma genome were purified from cells that had been pulse-labeled for 30 min with [3H]uridine and annealed, under mild conditions (50% formamide, 37 degrees C), with polyoma DNA loaded on nitrocellulose filters. Hybridized RNA (6 to 7% of the entire population of 3H-labeled molecules and up to 15% of the molecules containing polyadenylic acid [poly(A)]] was eluted and annealed a second time with polyoma DNA under more stringent conditions. In this second step, 75% of the 3H-labeled RNA formed an RNase-resistant hybrid. Under the same conditions, complementary RNA hybridized with polyoma DNA to a maximal extent of 80%. Since the difference between 75 and 80% is within the experimental error of the hybridization assay, it is inferred that the giant molecules selected by the first hybridization may consist entirely of virus-specific sequences or contain, at the most, a minor fraction of nonviral sequences. To examine the possibility that such nonviral sequences are clustered at the 3'-terminus of these molecules, poly(A)+ giant RNA, which had not been preselected by hybridization with polyoma DNA, was fragmented by a limited alkaline hydrolysis. Fragments linked to the poly(A) segment were separated from the rest of the cleavage products. A one-step hybridization with polyoma DNA revealed that both fractions contain 8 to 10% of virus-specific sequences. These results indicate that the 3'-termini of the poly(A)+ polyoma-specific giant RNA molecules consist of viral rather than nonviral sequences.

Animals↗

Effects of cycloheximide on virus RNA replication in an inducible line of polyoma-transformed rat cells.

In this article, we describe two distinct effects of cycloheximide (CH), a potent inhibitior of protein synthesis, on the replication of polyoma virus (PV) DNA in an inducible line of PV-transformed rat cells (LPT cells). Exposure of LPT cells to CH causes up to an 8 fold increase in the cellular concentration of PV DNA determined by molecular hybridization. The same treatment inhibits cell division and chromosomal DNA replication. However, the amount of chromosomal DNA per cell is not affected by the drug. In LPT cells treated with mitomycin C (MMC), PV DNA replication is enhanced after 7 hr. During the period extending from 7 hr to 24 hr, the concentration of virus DNA increases at least 100 fold. CH added to the cells 0-7 hr after treatment with MMC inhibits the replication of PV DNA by 90-100%. The inhibition is less effective in cells exposed to CH from 7 hr and on. The inhibitory effect is reversible: virus DNA synthesis is resumed after removal of CH from the growth medium. Thus CH acts as an inducer of virus DNA synthesis in cells whose resident viral genome is repressed, but inhibits the autonomous replication of the activated genome following induction with MMC.

Animals↗

Intrahepatic abscess due to gallbladder perforation.

BACKGROUND: Perforation of the gallbladder with cholecystohepatic communication is a rare cause of liver abscess. We report four cases of this condition and describe the imaging procedures related to its diagnosis and treatment. METHODS: The medical and x-ray files of 39 patients with percutaneous drainage of liver abscesses were retrospectively reviewed. Four patients with hepatic abscess due to gallbladder perforation were identified. The patients presented with clinical features suggestive of cholecystitis. RESULTS: Sonography in four patients showed a hypoechoic lesion in the liver adjacent to the gallbladder. CT in three patients showed a hypodense area in the liver, corresponding to the sonographic findings. Percutaneous abscess drainage, followed by an abscessogram, was performed in all patients. Contrast material injected through the drainage catheter filled the gallbladder directly from the abscess cavity. Two patients subsequently underwent cholecystectomy, confirming perforation of the gallbladder fundus. In both cases the gallbladder was noted to be embedded in the liver and covered by adhesions. CONCLUSION: Perforation of the gallbladder is a rare cause of pyogenic liver abscess. We suggest, however, based on our two patients who underwent surgery, and several cases reported in the literature, that this condition may be more common when the gallbladder is partially or totally intrahepatic.

Aged↗