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Biomedical subjects

A Weissbach

Publications and source records attributed to A Weissbach.

89 records · Page 5Linked to original sources

Separation of a new deoxyribonucleic acid polymerase from vaccinia-infected HeLa cells.

HeLa cell deoxyribonucleic acid (DNA) polymerase was purified about 100-fold by sequential column chromatography on phosphocellulose, hydroxylapatite, and Bio Rex 70. A new form of DNA polymerase found in vaccinia virus-infected cells was separated from HeLa DNA polymerase by chromatography on diethylamino-ethyl cellulose. The new form was also purified approximately 100-fold in the same manner as the HeLa DNA polymerase. In addition to chromatographic differences, the two enzymes differed with regard to primer response, relative activity at high pH, inactivation by heat and p-chloromercuribenzoate, and inhibition by vaccinia antiserum.

Chloromercuribenzoates↗

Evidence for a new endonuclease synthesized by lambda bacteriophage.

Infection of nonlysogenic Escherichia coli CR34(S) (Thy(-)) with bacteriophage lambda C(I)857 resulted in the formation of twisted circular double-stranded phage deoxyribonucleic acid (DNA; species I). When such infected bacteria were incubated in the absence of thymine, there was a significant decrease in the amount of species I DNA after 60 min of incubation. A similar loss of species I lambda DNA during incubation in a thymine-deficient medium was also observed after infection of the endonuclease I-deficient strain, E. coli 1100(S) (Thy(-)). This destruction of twisted, circular lambda DNA in thymine-deprived cells did not occur in the presence of chloramphenicol nor in lysogenic E. coli CR34 carrying a noninducible lambda prophage. It is therefore concluded that the endonuclease which attacks this circular configuration of lambda DNA is newly synthesized after infection and is directed by the phage chromosome.

Centrifugation, Zonal↗

Deoxyribonucleic acid replication in lambda bacteriophage mutants.

After ultraviolet light induction of Escherichia coli K-12 strain W3350(lambda), several structural intermediate forms of phage deoxyribonucleic acid (DNA) are synthesized. The early defective lysogens of lambda, sus O(8), sus P(3), and T(11), were found to synthesize none of the DNA structural intermediates. A lysogen believed to be defective in all known phage activities, lambdasus N(7), was found to be able to synthesize an early phage DNA intermediate. The lysogen lambdasus Q(21), defective in late phage functions, is able to synthesize the early phage DNA intermediate and a concatenated molecule of greater molecular weight than the mature lambda DNA.

Centrifugation, Density Gradient↗

Intracellular forms of lambda deoxyribonucleic acid in Escherichia coli infected with clear or virulent mutants of bacteriophage lambda.

Weissbach, Arthur (National Institutes of Health, Bethesda, Md.), Allan Lipton, and Arnold Lisio. Intracellular forms of lambda deoxyribonucleic acid in Escherichia coli infected with clear or virulent mutants of bacteriophage lambda. J. Bacteriol. 91:1489-1493. 1966.-Infection of either the sensitive or lysogenic strain of Escherichia coli K-112S by lambda(+) leads to the formation of a new phage deoxyribonucleic acid (DNA) species having the properties of a twisted circular DNA duplex. This new phage DNA species is also seen in cells infected with clear or virulent mutants of lambda which cannot lysogenize, or do so at a low frequency. The sedimentation rate of circular lambda DNA duplex at various pH values and its lability were examined.

Carbon Isotopes↗

Repression of lambda-Associated Enzyme Synthesis After lambda(vir) Superinfection of Lysogenic Hosts.

Lisio, Arnold L. (National Institutes of Health, Bethesda, Md.), and Arthur Weissbach. Repression of lambda-associated enzyme synthesis after lambda(vir) superinfection of lysogenic hosts. J. Bacteriol. 90:661-666. 1965.-Phage lambda(vir) is a multiple mutant of lambda which is capable of overcoming the immunity of a host lysogenic for lambda, and initiating normal vegetative replication of the superinfecting phage genome. Superinfection of Escherichia coli K-112 (lambda(22)) with lambda(vir) results in a normal phage yield, lysis time, and H(3)-thymine incorporation compared with infection of the sensitive host, K-112 (S). However, the production of the lambda phage-specific early protein, lambda-exonuclease, after superinfection of E. coli K-112 (lambda(22)) with lambda(vir) is only 25 to 50% of that obtained from corresponding infection of a nonlysogenic host, E. coli K-112 (S). This repression of lambda-exonuclease synthesis is dependent on the C(1) cistron of the prophage and is overcome if the lysogenic host cells are induced prior to superinfection. The data are interpreted as evidence for partial repression of lambda(vir) by the host immunity.

Journal Article↗