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Biomedical subjects

S A Lacks

Publications and source records attributed to S A Lacks.

63 records · Page 4Linked to original sources

Renaturation of enzymes after polyacrylamide gel electrophoresis in the presence of sodium dodecyl sulfate.

A number of enzymes, including amylases, dehydrogenases, and proteases, were shown to be renaturable after polyacrylamide gel electrophoresis in the presence of sodium dodecyl sulfate. Enzyme activity was detected in situ by action on substrates introduced into the gel and subsequent staining of either the product or unreacted substrate. This technique combines the advantage of enzyme identification with the resolution and molecular weight dependence of gel electrophoresis in the presence of sodium dodecyl sulfate. Enzymes appeared to recover activity as soon as the detergent diffused out of the gel. Most monomeric enzymes could be renatured even after disruption of their disulfide bonds, but several proteases, including trypsin, could not. Oligomeric enzymes composed of identical subunits were poorly renaturable. Renatured enzymes were retained in gels after electrophoresis longer than native enzymes which had been subjected to electrophoresis in the absence of detergent. Re-electrophoresis of the renatured enzymes showed that part of the retained activity was physically anchored to the gel, possibly by the folding of polypeptide aroung the gel matrix as the enzymes were renatured.

Amylases↗

Detection of histones by DNA binding ability after polyacrylamide gel electrophoresis in the presence of sodium dodecyl sulfate.

Histones can be detected on the basis of their binding to DNA after electrophoresis in sodium dodecyl sulfate-polyacrylamide gels containing DNA. The method depends on the ability of individual histone components to 1) renature, 2) bind to DNA, and 3) prevent ethidium bromide binding and fluorescence. This technique can provide qualitative and, possibly, quantitative information on histones in crude extracts.

Animals↗

Recovery of donor deoxyribonucleic acid marker activity from eclipse in pneumococcal transformation.

After the uptake of deoxyribonucleic acid (DNA), donor marker-transforming activity is temporarily lost. Restoration of the activity by annealing in vitro supports the idea that donor DNA is single-stranded at this stage. Kinetics of in vivo recovery from eclipse were examined for various markers at three temperatures. Sigmoidal recovery curves at lower temperatures indicate that the process consists of several steps. Rate of recovery was found to depend on the nature of the donor marker. Single-site markers recover much more rapidly than multisite markers corresponding to recipient deletions. Single-site markers vary somewhat in recovery rate, with rapidity of recovery inversely related to integration efficiency. Appearance of a recombinant-transforming activity lags only slightly behind recovery of its constituent donor marker.

Chromosome Mapping↗

Plasmid vector for cloning in Streptococcus pneumoniae and strategies for enrichment for recombinant plasmids.

A new plasmid, pLS101, was constructed for use as a vector for cloning in Streptococcus pneumoniae. This plasmid carries two selectable genes, tet and malM, each of which contains two or more restriction sites for cloning. Insertional inactivation of the malM gene allowed direct selection of TcRMal- clones containing recombinant plasmids. Other means of enriching a recipient population for cells containing recombinant plasmids were examined. The effect of removing vector terminal phosphate in attempts to clone heterogeneous DNA fragments, such as those from chromosomal DNA, was to abolish recombinant plasmid establishment altogether, presumably because donor DNA processing during entry into the cell prevented establishment of the hemiligated molecule. However, with homogeneous DNA fragments, such as those from plasmid or viral DNA, vector phosphate removal allowed enrichment for recombinant plasmids. In the cloning of heterogeneous DNA that was homologous to the recipient chromosome (i.e. chromosomal DNA from S. pneumoniae), recovery of recombinant plasmids could be enriched tenfold (relative to the regenerated vector) by the process of chromosomal facilitation of plasmid establishment. This involved an additional passage of the mixed plasmids in which interaction with the chromosome of plasmids containing chromosomal DNA inserts (i.e. recombinant plasmids) increased their frequency of establishment relative to the vector plasmid. An overall strategy for cloning in S. pneumoniae, depending on the nature of the fragment to be cloned, is proposed.

Alkaline Phosphatase↗