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Biomedical subjects

H Murialdo

Publications and source records attributed to H Murialdo.

At least 55 records · Page 3Linked to original sources

Stimulation of groE synthesis in Escherichia coli by bacteriophage lambda infection.

We found that infection of Escherichia cell by lambda results in at least a twofold stimulation in the rate of synthesis of one of the products of groE. To determine what lambda-coded factors were responsible for this stimulation, numerous phage lambda mutants carrying bio substitutions were analyzed for their ability to stimulate groE synthesis. Our results revealed that the main factor(s) which is responsible for stimulating groE synthesis is located between the endpoints of the lambda bio69 and lambda bio252 substitutions, a region of DNA coding for bet, gam, kil, and cIII.

Bacterial Proteins↗

Arrangement of lambda light chain genes in mutant clones of the MOPC 315 mouse myeloma cells.

The synthesis of lambda light chains and the arrangement of the lambda-chain genes was examined in cells of the mouse myeloma MOPC 315, which is an alpha lambda 2 producer, and in several mutants derived from it. The mutants produce lambda 2 chains only (MOPC 315.26, MOPC 315.34, and MOPC 315.37) or fail to produce alpha and lambda 2 chains (MOPC 315.25 and MOPC 315.36). Messenger RNA from the lambda 2 chain-producing cells directed the synthesis of a lambda 2 chain precursor and a fragment of the lambda 1 chain (lambda 1 F) in a wheat embryo cellfree system, whereas mRNA from the cells that do not produce lambda 2 chains directed the synthesis of lambda 1 F only. DNA from the parental MOPC 315 cells and from the lambda 2 chain-producing cells contained discrete EcoRI restriction fragments coding for rearranged lambda 1 and lambda 23 chain genes and their respective germ-line V and J-C regions. DNA from the no-Ig-producing cells contained fragments coding for the rearranged lambda 1 chain gene and the germ-line V lambda 2 region, but it lacked the sequences coding for the rearranged lambda 2 chain gene and the germ-line V lambda 1 and J-C lambda 1 regions. These results suggest that rearrangements of the lambda 1 and lambda 2 chain genes occur on different chromosomes in MOPC 315 cells and imply that rearrangements of the lambda 1 and lambda 2 chain genes on the same chromosome may be mutually exclusive.

Animals↗

Molecular cloning of an immunoglobulin kappa constant gene from NZB mouse.

An EcoRI fragment carrying the immunoglobulin C kappa gene and multiple J gene segments from the DNA of the NZB strain of mouse was cloned into lambda Ch 4A DNA. Subsequent characterization of the clone by heteroduplex analysis, restriction-enzyme mapping and DNA sequencing demonstrated that the organization of the J gene segments and the C kappa gene of NZB mouse was similar, if not identical, to that of DNA from the Balb/c strain of mouse. Since the amino acid sequence of the light chain of a plasmacytoma of NZB mouse shows a J region sequence different from that of Balb/c mouse, our results indicate that the new J sequence arose by somatic mutation.

Animals↗

RNA splicing mutation in an aberrantly rearranged immunoglobulin lambda I gene.

The mouse cell line MOPC 315 is an IgA (lambda II)-producing myeloma. We have studied a derivative of MOPC 315 that secretes normal lambda II chains but no heavy chain. This derivative, MOPC 315-26, was found to contain a rearranged lambda I gene in addition to a rearranged lambda II gene. The rearranged lambda I gene was cloned into bacteriophage lambda DNA and its structure was studied. The lambda I gene was found to have arisen by an aberrant recombination event that resulted in a single base insertion at the site of V-J region joining. In addition, the gene contained numerous point mutations in the vicinity of the junction of the V and J regions. Two point mutations occurred in the donor splice sequence normally used for the removal of the intron between the J and C regions, suggesting that the RNA synthesized from the aberrantly rearranged lambda I gene would be unable to undergo proper RNA splicing.

Amino Acid Sequence↗

Identification of a second Escherichia coli groE gene whose product is necessary for bacteriophage morphogenesis.

Previous work has uncovered the existence of an Escherichia coli locus, groE, that is essential for bacterial growth, lambda phage and T4 phage head morphogenesis, and T5 phage tail assembly. Our genetic and biochemical analyses of lambda groE+ transducing phages and their deletion and point mutant derivatives show that the groE locus consists of two closely linked genes. One groE gene, groEL, has been shown to encode the synthesis of a 65,000 Mr polypeptide, whereas the second, groES, codes for the synthesis of a 15,000 Mr polypeptide. About half of the groE- bacterial isolates fall into the groES complementation group. GroE mutations in either gene cause similar phenotypes, with respect to lambda phage head morphogenesis and bacterial growth at nonpermissive temperatures.

Coliphages↗

Studies on Escherichia coli mutants which block bacteriophage morphogenesis.

We have previously reported the isolation of E. coli groE mutants, which block lambda head morphogenesis. Further analysis of these mutants showed that many are temperature-sensitive for bacterial growth or block the growth of the unrelated phages T4 and T5. We have established the existence of a second groE gene, which we call groES, that is different from the previously described groE gene encoding a 65,000-Mr polypeptide (Georgopoulos and Hohn, 1978; Hendrix and Tsui, 1978) and which is renamed groEL. Genetic and biochemical studies of lambda groE+ transducing phages and their mutant derivatives show that these two genes are closely linked and that the groES gene codes for a polypeptide of 15,000-Mr. Bacterial groEL- or groES- mutants exhibit the same growth kinetics and phenotype at high temperature and lambda proheads have the same protein composition in both classes of mutants.

Bacterial Proteins↗

Morphogenetic genes C and Nu3 overlap in bacteriophage lambda.

In bacteriophage lambda, genes C and Nu3, two of the four cistrons which are essential for normal prohead formation, have overlapping nucleotide sequences. These genes are translated in the same reading frame so that the Nu3 protein is identical to the COOH-terminal one-third of the C protein. This structural relationship may provide for the functional interaction of the C and Nu3 proteins through their regions of structural homology during prohead assembly. The in-phase overlapping organisation of genes may constitute a general strategy to facilitate the mutual interaction of a pair of proteins through their common structural domains.

Bacteriophage lambda↗

Assembly of biologically active proheads of bacteriophage lambda in vitro.

Bacteriophage lambda DNA can be packaged in vitro into preformed proheads to generate plaque-forming units. This complex set of reactions is initiated when lambda DNA is mixed with the product of the phage A gene, and proheads. Because proheads are an essential early reactant, the system has potential as an assay for the formation of biologically active proheads. When extracts of cells infected with certain lambda head mutants (for example, B--, C--, Nu3--, and E--) are used as the prohead donor, plaque-forming units are not produced. However, when extracts of E- - and Nu3- - infected cells are first reacted together the combination provides prohead-donor activity to the in vitro packaging system. In vitro assembled, biologically active proheads have the same sedimentation properties and electron micrsocopic appearance as "wild-type" proheads isolated from lambdaA-D- -infected cells. Centrifugation analysis shows that the Nu3- extract contributes gpE, the major capsid protein, to the reaction in the form of monomers or small polymers.

Coliphages↗