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A new concept in (adenoviral) oncogenesis: integration of foreign DNA and its consequences
1Institut für Genetik, Universität zu Köln, Germany. doerfler@scan.genetik.uni-koeln.de
Abstract:
A new concept for viral oncogenesis is presented which is based on experimental work on the chromosomal integration of adenovirus DNA into mammalian genomes. The mechanism of adenovirus DNA integration is akin to non-sequence-specific insertional recombination in which patch homologies between the recombination partners are frequently observed. This reaction has been imitated in a cell-free system by using nuclear extracts from hamster cells and partly purified fractions derived from them. As a consequence of foreign DNA insertion into the mammalian genome, the foreign DNA is extensively de novo methylated in specific patterns, presumably as part of a mammalian host cell defense mechanism against inserted foreign DNA which can be permanently silenced in this way. A further corollary of foreign (adenovirus or bacteriophage lambda) DNA integration is seen in extensive changes in cellular DNA methylation patterns at sites far remote from the locus of insertional recombination. Repetitive cellular, retrotransposon-like sequences are particularly, but not exclusively, prone to these increases in DNA methylation. It is conceivable that these changes in DNA methylation are a reflection of a profound overall reorganization process in the affected genomes. Could these alterations significantly contribute to the transformation events during viral or other types of oncogenesis? These sequelae of foreign DNA integration into established mammalian genomes will have to be critically considered when interpreting results obtained with transgenic, knock-out, and knock-in animals and when devising schemes for human somatic gene therapy. The interpretation of de novo methylation as a cellular defense mechanism has prompted investigations on the fate of food-ingested foreign DNA. The gastrointestinal (GI) tract provides a large surface for the entry of foreign DNA into any organism. As a tracer molecule, bacteriophage M13 DNA has been fed to mice. Fragments of this DNA can be found in small amounts (about 1% of the administered DNA) in all parts of the intestinal tract and in the feces. Furthermore, M13 DNA can be traced in the columnar epithelia of the intestine, in Peyer's plaque leukocytes, in peripheral white blood cells, in spleen, and liver. Authentic M13 DNA has been recloned from total spleen DNA. If integrated, this DNA might elicit some of the described consequences of foreign DNA insertion into the mammalian genome. Food-ingested DNA will likely infiltrate the organism more frequently than viral DNA.
Insights
Foreign DNA integration into mammalian genomes, like adenovirus, triggers extensive DNA methylation changes. This cellular defense mechanism may play a role in oncogenesis and gene therapy considerations.
Area of Science:
- Molecular Biology
- Genetics
- Virology
Background:
- Viral oncogenesis involves the integration of viral DNA into host mammalian genomes.
- Adenovirus DNA integration resembles non-sequence-specific recombination with observed homologies.
- Cell-free systems can mimic this integration process using nuclear extracts.
Purpose of the Study:
- To present a new concept for viral oncogenesis based on DNA integration mechanisms.
- To investigate the consequences of foreign DNA insertion on mammalian genome methylation.
- To explore the implications of these findings for gene therapy and transgenic models.
Main Methods:
- Experimental integration of adenovirus DNA into mammalian genomes.
- Cell-free system replication of DNA integration using hamster cell nuclear extracts.
- Administration of bacteriophage M13 DNA to mice to trace gastrointestinal tract DNA fate.
Main Results:
- Foreign DNA insertion leads to de novo methylation of the inserted DNA and remote genomic regions.
- Repetitive and retrotransposon-like sequences are particularly susceptible to increased DNA methylation.
- Traces of ingested M13 DNA were found in various mouse tissues, including spleen and liver, with successful recloning from spleen DNA.
Conclusions:
- De novo methylation following foreign DNA integration acts as a host defense mechanism, potentially silencing foreign DNA.
- Alterations in DNA methylation patterns suggest a broader genomic reorganization process.
- Ingested foreign DNA can infiltrate the organism, raising questions about its potential to elicit similar genomic consequences as viral DNA.
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