1987FEMS Microbiology LettersOpen access

Silent genes in prokaryotes

Ifor R. Beacham

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Abstract

DNA sequence analysis provides excellent evidence for the origin of new genes, encoding new enzyme specificities or isozymes, via gene-duplication. New genes which arise in this way are likely to have arisen via silent gene intermediates. Such ‘silent’ genes are conceptually distinct from ‘cryptic’ genes which may also be silent; whereas cryptic genes are thought to be retained due to periodic selection, silent genes would be expected to have only a transient existence in the genome. Only very few of the known inactive genes are possibly (and with varying degrees of likelihood) of the ‘silent’ type.

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DNA sequence analysis provides excellent evidence for the origin of new genes, encoding new enzyme specificities or isozymes, via gene-duplication. New genes which arise in this way are likely to have arisen via silent gene intermediates. Such ‘silent’ genes are conceptually distinct from ‘cryptic’ genes which may also be silent; whereas cryptic genes are thought to be retained due to periodic selection, silent genes would be expected to have only a transient existence in the genome. Only very few of the known inactive genes are possibly (and with varying degrees of likelihood) of the ‘silent’ type.

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Available abstract

DNA sequence analysis provides excellent evidence for the origin of new genes, encoding new enzyme specificities or isozymes, via gene-duplication. New genes which arise in this way are likely to have arisen via silent gene intermediates. Such ‘silent’ genes are conceptually distinct from ‘cryptic’ genes which may also be silent; whereas cryptic genes are thought to be retained due to periodic selection, silent genes would be expected to have only a transient existence in the genome. Only very few of the known inactive genes are possibly (and with varying degrees of likelihood) of the ‘silent’ type.

Key concepts: Gene, Biology, Gene duplication, Genetics, Isozyme, Genome, Concerted evolution, Enzyme

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