Chorismate mutase/prephenate dehydratase from Escherichia coli K12. Modification with 5,5'-dithio-bis(2-nitrobenzoic acid).
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Biomedical subjects
Publications and source records attributed to M J Gething.
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Cytotoxic T cells lyse only those virus infected target cells in vitro which express, in addition to the viral antigen(s), those K or D region products of the major histocompatibility complex (MHC) which were present during anti-viral sensitisation in vivo. This 'associative recognition' by cytotoxic T cells could reflect the interaction of two T-cell receptors with specificity for target K or D gene products and independently for the viral antigen, or one receptor with specificity for virally altered K or D region products (see ref. 1 and refs therein). There are various ways that the MHC antigens could be altered, including 'modification from within', where the virus modifies host protein synthesis by interfering with transcription, translation or post-translational glycosylation; or 'modification from without' where enzymic or chemical alteration of cell membrane proteins are induced by virus activity at the cell surface. In this report we show that inactivated Sendai virus or isolated Sendai virus envelopes can serve to modify a cell and make it a specific target for Sendai-immune T-cell killing, thus excluding the possibility of 'modification from within' in this system.
A new simplified procedure for the purification of chorismate mutase/prephenate dehydratase, based on affinity chromatography on Sepharosyl-phenylalanine, has been developed. The method utilizes the effect of NaCl on the binding properties of the enzyme. NaCl inhibits both the mutase and dehydratase activities of the enzyme. In each case this inhibition is cooperative indicating homotropic interactions between NaCl binding sites on the enzyme. In addition NaCl induces homotropic cooperative effects between chorismate binding sites and between prephenate binding sites. NaCl also increases the sensitivity of the enzyme to inhibition by phenylalanine.
On the basis of amino acid composition, tryptic fingerprints and the determination of amino acid sequences around the four cysteine residues, it can be concluded that chorismate mutase/prephenate dehydratase from Escherichia coli K12 consists of identical, or closely similar subunits. It follows from this that the mutase and dehydratase activities of the enzyme are probably catalysed on the one subunit.
Study of many of the interesting properties of Klebsiella aerogenes is limited by the lack of a well-characterized genetic system for this organism. Our investigations of the evolution of the enzyme ribitol dehydrogenase (EC 1.1.1.56) in K. aerogenes would be greatly facilitated by the availability of such a system, and we here report two approaches to developing one. We have isolated mutants sensitive to the coliphage P1, which will efficiently tranduce genetic markers between such sensitive strains and which will thus make detailed mapping studies possible. Derivatives of K. aerogenes lysogenic for P1 can be readily isolated by using the specialized transducing particle P1CMclr100. Bacteria lysogenic for this phage are chloramphenicol resistant and temperature sensitive. Phage particles produced by temperature induction of such lysogens can be used to transfer K. aerogenes genes to the natural host of P1 phage. Escherichia coli. We have used this method to prepare derivatives of E. coli K-12 carrying the K. aerogenes genes conferring the ability to metabolize the pentitols ribitol and D-arabitol. We have shown that these E. coli-K. aerogenes hybrids synthesize a ribitol dehydrogenase with the properties of the K. aerogenes enzyme and have mapped the position of the transferred gene on the E. coli chromosome. The ramifications of this methodology are discussed.