Deletion of 98% of the adenovirus type 2 E4 transcription unit resulted in a delay of several events characteristic of the intermediate stage of infection, including viral DNA synthesis, induction of the cellular gene coding for dihydrofolate reductase, and the onset of the switch from viral early to late gene expression. Although delayed, both viral DNA replication and dihydrofolate reductase induction eventually approached wild-type levels. Events characteristic of the late stage of infection were both delayed and diminished in mutant-infected cells. Therefore, the viral E4 gene family is involved in the transition from the early to late stages of infection, and events whose timing is coincident or dependent upon the early-to-late switch are delayed.
The effects of productive adenovirus infection on host gene expression were studied by using a line of methotrexate-resistant HeLa cells with amplified dihydrofolate reductase (DHFR) genes. We have previously reported that synthesis of DHFR is induced threefold early in infection and is shut off late in infection (Yoder et al., Mol. Cell. Biol. 3:819-828, 1983). These changes in DHFR protein synthesis are accompanied by changes in both the steady-state cytoplasmic levels of DHFR mRNA and in the rate of appearance of DHFR mRNA in the cytoplasm. In this report, we examined the mechanism of nuclear control of DHFR mRNA levels. Transcription of DHFR-specific sequences continued at a constant rate throughout infection, representing 0.015% of the total transcriptional activity. In contrast, nuclear steady-state levels of DHFR sequences changed in correspondence to the changing rate of appearance of DHFR mRNA in the cytoplasm. That is, nuclear levels of DHFR-specific sequences rose 2.5-fold early in infection and declined to a level below that found in uninfected cells late in infection. Thus, the relative nuclear stability of DHFR sequences changed throughout the course of infection such that during the time of induction, DHFR sequences were preferentially stabilized. This stabilization was transient, however, and was no longer observed by the time of shutoff. These data indicate that posttranscriptional nuclear events are important in the regulation of DHFR gene expression by adenovirus.
Infection of human cells by adenovirus results in multiple alterations of host gene expression. To examine the effects of viral infection on the expression of a single gene, a line of human cells was developed which is resistant to growth in methotrexate and which contains amplified RNA and protein specific for dihydrofolate reductase (DHFR). Cytogenetic evidence indicated the presence of amplified DNA. Adenovirus infection of these cells caused an induction and subsequent decline in the synthesis of DHFR protein. The maximum DHFR induction occurred 16 to 19 h after infection and reached a level 2.5-fold greater than that observed in uninfected cells. Induction of DHFR protein synthesis was accompanied by concomitant increases in the level of steady-state DHFR-specific cytoplasmic RNA. The relative rate of DHFR mRNA production (i.e., the appearance of DHFR-specific mRNA sequences in the cytoplasm) also increased 2.5-fold during induction. Later in infection, the relative rate of DHFR protein synthesis declined, reaching a level below that observed in uninfected cells. This decline was accompanied by a similar decline in the steady-state levels of DHFR RNA and in the relative rate of synthesis of DHFR mRNA. These data suggest that adenovirus infection controls DHFR gene expression by increasing and subsequently decreasing the relative rate at which DHFR-specific mRNA sequences appear in the cytoplasm and enter the pool of mRNA available for translation.
The mutagenicity of a non-carcinogenic nitrosamine, N,N-dibenzylnitrosamine (I), and a chemically synthesized alpha-acetoxy derivative, N-(alpha-acetoxy-benzyl)-N-benzylnitrosamine (II), has been examined in Salmonella typhimurium TA100 and TA1535. Compound (I) was non-mutagenic when tested directly or in the presence of a metabolic activation system while (II) was highly mutagenic when tested directly. This is the first report on the conversion of a non-mutagenic N-nitrosamine to a mutagen by the formation of an alpha-acetoxy derivative.
The electronic arrangement of the nitrosamine function provides an interesting stereochemical consequence which may be as significant in the biochemistry of the metabolism of these compounds as in the chemistry of nitrosamines (1). The electronic interaction and the electronic structure of the nitrosamine is uncertain; however, there are some very definite conclusions that one can draw from the physical properties. The atoms shewn in Fig. 1 are all planar, and only the hydrogen or substituents on the alpha carbons are not in the plane of the atoms of the nitrosamine function. The N-O bond of this nitrosamine function is not linear but is angular and therefore leads to Z and E isomerism about the N-N bond. It is clear that the delocalization of the electrons from the amino nitrogen, as indicated in Fig. 1, explains the large rotational barrier to torsion about the N-N bond (2) and leads to a