Affiliation:
1. Department of Biological Sciences, University of Maryland Baltimore County, Baltimore, Maryland
Abstract
ABSTRACT
Expression of the
tet
resistance gene from plasmid pBC16 is induced by the antibiotic tetracycline, and induction is independent of the native promoter for the gene. The nucleotide sequence at the 5′ end of the
tet
mRNA (the leader region) is predicted to assume a complex secondary structure that sequesters the ribosome binding site for the
tet
gene. A spontaneous, constitutively expressed
tet
gene variant contains a mutation predicted to provide the
tet
gene with a nonsequestered ribosome binding site. Lastly, comparable levels of
tet
mRNA can be demonstrated in tetracycline-induced and uninduced cells. These results are consistent with the idea that the pBC16
tet
gene is regulated by translation attenuation, a model originally proposed to explain the inducible regulation of the
cat
and
erm
genes in gram-positive bacteria. As with inducible
cat
and
erm
genes, the pBC16
tet
gene is preceded by a translated leader open reading frame consisting of a consensus ribosome binding site and an ATG initiation codon, followed by 19 sense codons and a stop codon. Mutations that block translation of
cat
and
erm
leaders prevent gene expression. In contrast, we show that mutations that block translation of the
tet
leader result in constitutive expression. We provide evidence that translation of the
tet
leader peptide coding region blocks
tet
expression by preventing the formation of a secondary-structure complex that would, in the absence of leader translation, expose the
tet
ribosome binding site. Tetracycline is proposed to induce
tet
by blocking or slowing leader translation. The results indicate that
tet
regulation is a variation of the translation attenuation model.
Publisher
American Society for Microbiology
Subject
Molecular Biology,Microbiology
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