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M Roa

Publications and source records attributed to M Roa.

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Mutations that affect lamB gene expression at a posttranscriptional level.

We previously obtained strains of Escherichia coli in which the beginning of gene lacZ, which codes for beta-galactosidase, is replaced by the beginning of gene lamB, which codes for a maltose-inducible outer membrane protein. In some of these strains the induction (with maltose) of lamB-lacZ hybrid protein synthesis was lethal because of membrane damage resulting from an incomplete export of this protein to the outer membrane. We describe here a class of maltose-resistant mutants obtained from one such strain. Mutants in this class fail to produce the lamB-lacZ hybrid protein but retain the ability to express lacY, which is located distal to the hybrid gene. Some of the mutants carry deletions within the hybrid gene. The others carry point mutations which most probably affect the initiation of translation at the beginning of the hybrid gene. One of these is located in the sequence that codes for the presumed ribosome interaction site on the mRNA. Three others, of which two are located in the coding region (sixth codon), are believed to result in an alteration of mRNA secondary structure such that the accessibility of the ribosome interaction site is reduced.

Amino Acid Sequence↗

Structure of the malB region in Escherichia coli K12. I. Genetic map of the malK-lamB operon.

A series of deletions, Mu insertions and point mutations affecting the malK-lamB operon have been isolated. They were used to establish a deletion map of this operon, which could be divided in 27 intervals, with 16 in malK and 11 in lamB. One interesting feature of this map is the lack of randomness in the distribution of Mu insertions in the lamB gene; by using data published elsewhere on the physical length of the deletion intervals it can be concluded that about 25% of these Mu insertions are clustered in a segment representing 2 to 8% of the gene. This map is presently being used to study the biosynthesis, structure, and function of the lamB product, which is an outer membrane protein involved in the transport of maltose and maltodextrin, and which in addition constitutes the receptor for phage lambda.

Chromosome Mapping↗

Interaction of bacteriophage K10 with its receptor, the lamB protein of Escherichia coli.

The lamB protein of Escherichia coli was initially recognized as the receptor for bacteriophage lambda. It is now shown also to constitute the receptor for phage K10. The lamB protein interacts with phage K10 in vitro, but this interaction does not lead to phage inactivation. Most lambda-resistant labB mutants are also resistant to K10, and vice versa. However, a significant proportion of the mutants resistant to one of the phages is sensitive to the other. Nineteen K10-resistant lambda-sensitive mutants have been studied. Only six of them produce a lamB protein which seems totally unimpaired in its ihe same deletion interval of the lamB gene. The corresponding region of the lamB polypeptide must be specifically involved in the interaction with phage K10. An unusual pattern of K10 host range mutants has been obtained; two calsses of such mutants could be defined, growing on two distinct classes of K10-resistant lamB mutants.

Bacterial Proteins↗