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Z F Zainuddin

Publications and source records attributed to Z F Zainuddin.

5 recordsLinked to original sources

Does Mycobacterium tuberculosis have plasmids?

Evidence of the presence of plasmids in Mycobacterium tuberculosis is lacking, whereas they are widespread in some other mycobacterial species. We examined, by agarose gel electrophoresis, a total of 197 clinical isolates of M. tuberculosis, mostly resistant to one or more antibiotics, and were able to detect bands of apparently extrachromosomal DNA at a low level in some isolates. These presumptive plasmids could not be isolated by CsCl/ethidium bromide gradient ultracentrifugation, and may consist of unusual forms of DNA. The possible existence of single stranded plasmid DNA is discussed.

Antitubercular Agents

Characterization of a Mycobacterium tuberculosis insertion sequence belonging to the IS3 family.

A repetitive element (IS986), previously isolated from Mycobacterium tuberculosis and shown to detect multiple restriction fragment-length polymorphisms (RFLPs), has been sequenced. It consists of a potential insertion sequence of 1358bp, with 30-bp inverted repeat ends. IS986 has four potentially significant open reading frames (ORFs): ORFa1, ORFa2 and ORFb on one strand and ORFc on the complementary strand. The sequences of the potential translated products identify IS986 as a member of the IS3 family, with an apparent frameshift between ORFa1 and ORFa2. IS986 has potential as a highly specific probe for detection and typing of M. tuberculosis, as well as for transposon mutagenesis of mycobacteria. The sequence of IS986 is virtually identical to that of another recently described element, IS6110 (Thierry et al., 1990).

Amino Acid Sequence

Polymorphic repetitive DNA sequences in Mycobacterium tuberculosis detected with a gene probe from a Mycobacterium fortuitum plasmid.

Clinical isolates of Mycobacterium tuberculosis were shown by Southern blotting to contain DNA sequences hybridizing to a probe derived from a Mycobacterium fortuitum plasmid. Two such M. tuberculosis DNA fragments, isolated from a gene library, were used as probes to show restriction fragment length polymorphism in M. tuberculosis strains by detecting a repetitive sequence apparently located at different points on the chromosome. This could indicate the presence of a transposable element in M. tuberculosis which is partly homologous to a region of the M. fortuitum plasmid. The probes described can be used to fingerprint M. tuberculosis isolates, and in addition are capable of distinguishing M. tuberculosis from Mycobacterium bovis and BCG.

Blotting, Southern

Transformation of Mycobacterium smegmatis with Escherichia coli plasmids carrying a selectable resistance marker.

One limiting factor in studies of tuberculosis and leprosy is the difficulty of genetic analysis and manipulation of mycobacteria. Two approaches were adopted for the construction of vectors, based on different Escherichia coli plasmids and using Mycobacterium smegmatis as the host. In both cases we found that the original E. coli plasmid is capable of being replicated in M. smegmatis, yielding chloramphenicol-resistant colonies. One such plasmid has been recovered from a M. smegmatis transformant and used to re-transform both M. smegmatis and E. coli to chloramphenicol resistance. This plasmid is indistinguishable from the original plasmid by restriction analysis, and can be used as a shuttle vector for the genetic manipulation of mycobacterial species.

Blotting, Southern

Transformation of Mycobacterium smegmatis with E. coli plasmids.

One limiting factor in the studies of tuberculosis and leprosy is the lack of a versatile system for genetic analysis and manipulation of mycobacteria. One strategy used in constructing a plasmid vector for transforming Mycobacterium smegmatis was to insert fragments of a mycobacterial plasmid into an Escherichia coli plasmid. We found that the parental E. coli plasmid is capable of self-replication in M. smegmatis yielding chloramphenicol-resistant colonies. Plasmids from different passages of one M. smegmatis transformant were recovered and characterised by restriction digest analysis. The plasmid from the earlier passage was found to be indistinguishable from the original plasmid by restriction analysis. Plasmids from later preparations, however, were found to have undergone modifications in the M. smegmatis host resulting in an apparent increase in transformation efficiency for M. smegmatis. These plasmids can be used as a shuttle vector for the genetic manipulation of mycobacterial species.

DNA, Bacterial