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E Dassa

Publications and source records attributed to E Dassa.

43 records · Page 3Linked to original sources

[Construction of Hfr strains in "Salmonella montevideo" (author's transl)].

Lac+ variants of Salmonella montevideo were recovered from mating with an Escherichia coli strain harbouring the thermosensitive sex-factor Ft114-lac+. The properties of these variants suggest that this F' factor behaves identically in Salmonella and Escherichia. From these variants, it is possible to select mutants in which lac expression is stable at high temperature (42 degrees C) and it was proved that they behave as Hfr's. Twelve independently isolated Hfr's were similar with respect to both point of origin and sequence of markers transferred. These results suggest that our strain of S. montevideo carries an F-factor affinity site near met C gene.

Acridines↗

The sequence of the malG gene from Salmonella typhimurium and its functional implications.

The nucleotide sequence of the malG gene which is essential for maltose transport was determined in Salmonella typhimurium and compared to homologous genes from Escherichia coli and Enterobacter aerogenes. malG genes from S. typhimurium and E. aerogenes were expressed and their products were active in E. coli. The primary structure of the three MalG proteins was highly conserved. Changes were mainly clustered in a relatively large hydrophilic region of the protein (residues 40 to 75). In contrast, other hydrophilic segments were more conserved, and most remaining changes occurred in the hydrophobic putative transmembrane segments. This suggests that hydrophilic loops in this inner membrane protein may be functionally constrained. These results prove new insights into the functional sites in MalG.

Base Sequence↗

The maltoporin of Salmonella typhimurium: sequence and folding model.

The sequence of the lamB gene from Salmonella typhimurium was determined. It encodes the precursor to the LamB protein from S. typhimurium (pre-LamBS.t.; 452 residues) which presents extensive homologies with the pre-LamB protein from Escherichia coli (pre-LamBE.c.; 446 residues). The first third of pre-LamBS.t. is the most conserved, with 4% changes and strict identity between the signal peptides. The last two-third contains five "variable" segments where more than 50% of the residues are changed with respect to LamBE.c.. The three first variable segments are 8 to 14 residues long and contain only substitutions, while the two more distal ones are 24 and 29 residues long and also include insertions and deletions. It is remarkable that the variable segments correspond essentially to regions predicted to be extramembranous loops on our 2D folding model for LamBE.c.; they alternate with conserved predicted transmembranous segments. Four of the variable regions were predicted to be cell-surface-exposed loops on the basis of genetic and immunological data, while one of them (region II) was predicted to be periplasmic on the sole basis of folding rules. The LamB protein from S. typhimurium can substitute for the LamB protein from E. coli for maltodextrins binding and transport, but not for infection by any of the known E. coli phages using LamBE.c. for adsorption. A tetrapeptide, RGDS, assumed to be responsible for mammalian cell aggregation by LamBE.c. is conserved in LamBS.t., suggesting that it could have a functional role. The conservation of the binding and transport activity can be accounted for by the conservation of the regions known to be directly involved, namely the first third of the protein and a region corresponding to 352 to 374 of LamBS.t.. The phage resistance can be attributed to the variability of the four cell-surface-exposed loops previously identified as essential for phage adsorption. These results, together with those obtained with polyclonal and monoclonal antibodies directed against known LamB regions, strongly support the folding model presented for LamBE.c. and the idea that it can essentially be extended to LamBS.t., except perhaps for a region between residues 155 and 245. We propose that the existence of variable regions is due essentially, and perhaps only, to the local lack of structural constraints in the protein. The intergenic region between lamB and the following gene, malM, comprises conserved segments, including one palindromic unit.

Amino Acid Sequence↗

[Homologies between integral proteins of the inner membrane of binding protein transport systems in enterobacteria].

Binding protein-dependent transport systems from Enterobacteriaceae comprise a periplasmic binding protein and three proteins associated with the inner membrane. Of these, two appear to be integral membrane proteins. We describe here a sequence which is highly conserved between these two proteins in the case of the system for maltose transport in Escherichia coli. This sequence is also present in all of the known integral membrane proteins from binding protein-dependent transport systems. It is remarkable that this sequence is located at a constant distance of approximatively 90 residues from the COOH-terminal ends of these proteins. Some implications of these observations are discussed.

Amino Acid Sequence↗

The ABC of ABCS: a phylogenetic and functional classification of ABC systems in living organisms.

ATP binding cassette (ABC) systems constitute one of the most abundant superfamilies of proteins. They are involved not only in the transport of a wide variety of substances, but also in many cellular processes and in their regulation. In this paper, we made a comparative analysis of the properties of ABC systems and we provide a phylogenetic and functional classification. This analysis will be helpful to accurately annotate ABC systems discovered during the sequencing of the genome of living organisms and to identify the partners of the ABC ATPases.

ATP-Binding Cassette Transporters↗