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N C Mandal

Publications and source records attributed to N C Mandal.

8 recordsLinked to original sources

Multiphasic denaturation of the lambda repressor by urea and its implications for the repressor structure.

Urea denaturation of the lambda repressor has been studied by fluorescence and circular dichroic spectroscopies. Three phases of denaturation could be detected which we have assigned to part of the C-terminal domain, N-terminal domain and subunit dissociation coupled with further denaturation of the rest of the C-terminal domain at increasing urea concentrations. Acrylamide quenching suggests that at least one of the three tryptophan residues of the lambda repressor is in a different environment and its emission maximum is considerably blue-shifted. The transition in low urea concentration (midpoint approximately 2 M) affects the environment of this tryptophan residue, which is located in the C-terminal domain. Removal of the hinge and the N-terminal domain shifts this transition towards even lower urea concentrations, indicating the presence of interaction between hinge on N-terminal and C-terminal domains in the intact repressor.

DNA-Binding Proteins

An operator-induced conformational change in the C-terminal domain of the lambda repressor.

4,4'-bis(1-anilino-8-naphthalenesulfonic acid (Bis-ANS), an environment-sensitive fluorescent probe for hydrophobic region of proteins, binds specifically to the C-terminal domain of lambda repressor. The binding is characterized by positive cooperativity, the magnitude of which is dependent on protein concentration in the concentration range where dimeric repressor aggregates to a tetramer. In this range, positive cooperativity becomes more pronounced at higher protein concentrations. This suggests a preferential binding of Bis-ANS to the dimeric form of the repressor. Binding of single operator OR1 to the N-terminal domain of the repressor causes enhancement of fluorescence of the C-terminal domain bound Bis-ANS. The binding of single operator OR1 also leads to quenching of fluorescence of tryptophan residues, all of which are located in the hinge or the C-terminal domain. Thus two different fluorescent probes indicate an operator-induced conformational change which affects the C-terminal domain. The significance of this conformational change with respect to the function of lambda repressor has been discussed.

Anilino Naphthalenesulfonates

Bacteriophage lambda P gene shows host killing which is not dependent on lambda DNA replication.

Bacteriophage lambda, having a mutation replacing glycine by glutamic acid at the 48th codon of cro, kills the host under N- conditions; we call this the hk mutation. In lambda N-N-cl-hk phage-infected bacteria, the late gene R is expressed to a significant level, phage DNA synthesis occurs with better efficiency, and the Cro activity is around 20% less, all compared to those in lambda N-N-cl-hk(+)-infected bacteria. Segments of lambda DNA from the left of pR to the right of tR2, carrying cro, cII, O, P, and the genes of the nin5 region from the above hk and hk+ phages, were cloned in pBR322. Studies with these plasmids and their derivatives having one or more of the lambda genes deleted indicate that the hk mutation is lethal only when a functional P gene is also present. When expression of P from pR is elevated, due to the deletion of tR1, host killing also occurs without the hk mutation. We conclude that the higher levels of P protein, produced either (1) when cro has the hk mutation or (2) when tR1 is deleted, are lethal to the host. We also show that due to the hk mutation, the Cro protein becomes partially defective in its negative regulation at pR, resulting in the expression of P to a lethal level even in the absence of N protein-mediated antitermination. This P protein-induced host killing depends neither on lambda DNA replication nor on any other gene functions of the phage.

Amino Acid Sequence

Isolation and preliminary characterization of Escherichia coli mutants resistant to lethal action of the bacteriophage lambda P gene.

Both spontaneous and NTG-induced mutants of Escherichia coli 594 insensitive to the lethal action of lambda P gene were isolated and called rpl (resistant to P lethality). These mutants were of two types, showing different phenotypes. On type I rpl mutants, lambda cl- and lambda v1v3 did not plate, while lambda vir, lambda cl- c17, lambda imm434, and lambda imm21 did; plasmid pMR45 carrying the lambda P gene could not complement lambda imm21P- phage in type I mutants. On the other hand, the type II rpl mutants support the growth of all the above phages including lambda cl-. Neither type of rpl mutation affects growth of the bacteria.

Bacteriophage lambda

Enzymes of carbohydrate metabolism in fast-growing Rhizobium grown on hexoses or succinate.

Enzymatic evidence supports that succinate mediates repression of hexose-catabolising enzymes in fast-growing Rhizobium sp. (Cicer arietinum). Enzymes of the Embden-Myerhof-Parnas, Entner-Doudoroff and pentose phosphate pathways were found present in hexose-grown cells but not in succinate-grown cells. These however could be induced by the presence of hexoses.

Carbohydrate Metabolism

Structure and function of the repressor of bacteriophage lambda. III. Molecular cloning of the high-affinity mutant cI gene of lambda and studies of the properties of the clones.

The high-affinity mutant cI gene of lambda cIha (Nag et al. 1984) was cloned in the multicopy plasmid pBR322. In the resulting plasmid, pMD 102, a lacUV5 promoter was inserted giving the lacUV5-cIha fusion plasmid pMD 205. Bacteria carrying pMD 102 and pMD 205 contain 2.5 and 15 times, respectively, the level of repressor in a monolysogen of lambda cIha. Results of the study of certain properties of the bacteria carrying these plasmids suggest that the ha repressor also has a higher affinity for the virulent mutant operators as well as the prm promoter of lambda.

Bacteriophage lambda

An Escherichia coli mutant with a temperature-sensitive function affecting bacteriophage Qbeta RNA replication.

We report the isolation of E. coli mutant capable of supporting replication of bacteriophage Qbeta at 33 degrees, but not at 40 degrees. Coliphages f2, R23, fd, and yamma formed plaques on mutant cells at both temperatures. Temperature-shift experiments showed that bacteriophage Q beta replication was blocked in the mutant within the first 20-30 min of infection. The defect did not prevent translation of the Qbeta polymerase gene or assembly of catalytically active Qbeta replicase molecules. In fact, mutant cells infected at 40 degrees hyperinduced replicase active both in vivo and in vitro. However, zone sedimentation of the in vivo RNA product showed it to consist of partially double-stranded material sedimenting at 9 S, with little or no viral 32S RNA. The 9S RNA was also found, along with a predominant peak of 32S RNA in parental cells infected at 40 degrees, but not in cells infected at 33 degrees. It thus appears that the temperature-sensitive component is required for viral RNA replication, but not for other RNA synthesis catalyzed by the replicase. Uninfected mutant cells grew normally at 40 degrees in nutrient broth, but not in glucose- or glycerol-minimal media. Revertants selected for their abillity to grow in minimal medium at 40 degrees also supported bacteriophage Qbeta replication at 40 degrees.

Coliphages

Heat-sensitive DNA-binding activity of the cI product of bacteriophage lambda.

The binding of lambda gene cI product to lambda DNA was studied at temperatures from 0 degrees C to 46 degrees C. Binding activity of the products of cIts mutants was higher at 22 degrees C than at 0 degrees C, 26 degrees C or 30 degrees C. Both cI+ and cIts products lost DNA-binding activity at 46 degrees C, but after subsequent cooling to 22 degrees C, they regained 50-100% of their activity.

Cold Temperature