PubMed Health⌕ Search

PubMed · 1141237

The specificity of lambda exonuclease. Interactions with single-stranded DNA.

Abstract

The lambda exonuclease, an enzyme that has been implicated in genetic recombination, rapidly and processively degrades native DNA, starting at the 5' terminus. The enzyme will also degrade the 5'-terminated strand at a single-stranded branch. The experiments reported here reveal various interactions of the enzyme with single-stranded DNA. The rate of digestion is related inversely to the length of single strands. Chains of 100 nucleotides are digested at about 10% the rate of digestion of native DNA. Digestion of the single-stranded ends of lambda DNA does not appear to occur processively. The enzyme binds to circular as well as linear single strands and the affinity for single strands is also related inversely to the chain length. In an equimolar mixture of single- and double-stranded DNA the action of lambda exonuclease on the latteris about half-inhibited. At 20 degrees the initiation of digestion at the 5' terminus of duplex DNA is blocked sterically when such DNA has 3'-terminal single strands that are longer than 100 nucleotides. Information about these properties is important for the practical use of lambda exonuclease as well as for reflections on the role of the enzyme in genetic recombination.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

K S Sriprakash, N Lundh, Huh MM-O, C M Radding. 1975-07-25. The specificity of lambda exonuclease. Interactions with single-stranded DNA.. https://pubmed.ncbi.nlm.nih.gov/1141237/

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Characterization and depletion of leukocytes from cells isolated from the pre-ovulatory ovarian follicle.

BACKGROUND: Cells isolated from the periovulatory ovarian follicle are often used as a model of ovarian steroidogenesis and corpus luteum formation. The follicular fluid-derived cell (FFDC) population is, however, heterogeneous and in addition to granulosa-lutein cells, non-steroidogenic cells are also present. These non-steroidogenic cells, especially the immune cells, may have important biological functions in this model. Here, we describe a method to isolate FFDC, characterize the phenotype of the immune cells and deplete immune cells from FFDC. METHODS AND RESULTS: Follicular fluid aspirated transvaginally during IVF was clarified by centrifugation and enzymatic dispersion, labelled for leukocyte-specific markers and analysed by flow cytometry. Leukocytes constituted 22% of FFDC and expressed macrophage/dendritic cell, monocyte and lymphocyte markers. Leukocytes were depleted with anti-CD45-conjugated immunobeads, resulting in an FFDC population with <1.9% leukocytes. Leukocyte-containing FFDC secreted more interleukin-8 in culture than leukocyte-depleted FFDC. CONCLUSION: Leukocyte-depleted FFDC may serve as a useful model to study the interaction of immune cells and luteinizing cells during corpus luteum formation.

Centrifugation, Density Gradient↗

Isolation and characterization of a novel mycovirus, PeSV, in Pleurotus eryngii and the development of a diagnostic system for it.

A novel mycovirus was isolated from a cultivated edible mushroom, Pleurotus eryngii, with severe epidemic symptoms. Purification of the virus was carried out by a sequential procedure of polyethylene glycol precipitation, differential centrifugation, and equilibrium centrifugation in a CsCl gradient. Nuclease digestion assay and protein analysis revealed that the virus consisted of a single-stranded RNA (ssRNA) genome of 7.8 kbp which was encapsulated by a coat protein of 22 kDa. Transmission electron microscope showed that it was spherical with a diameter of 31 nm. Since there was neither a previous report on discovery of a virus in P. eryngii, nor known mushroom viruses with similar characteristics, we concluded that this is a novel virus and thus have named it as P. e ryngii Spherical Virus (PeSV). Because of a diagnostic test would be helpful in preventing the PeSV-related disease outbreaks, we developed a triple antibody sandwich-ELISA (TAS-ELISA) system using anti-PeSV mouse monoclonal and anti-PeSV rabbit polyclonal antibodies. The TAS-ELISA system successfully detected less than 0.5 microg of the virus particles in 1 g diseased mushroom tissue collected from various commercial farms.

Centrifugation, Density Gradient↗

Biosynthesis and native granule characteristics of poly(3-hydroxybutyrate-co-3-hydroxyvalerate) in Delftia acidovorans.

The ability of Delftia acidovorans to incorporate a broad range of 3-hydroxyvalerate (3HV) monomers into polyhydroxyalkanoate (PHA) copolymers was evaluated in this study. Poly(3-hydroxybutyrate-co-3-hydroxyvalerate) [P(3HB-co-3HV)] containing 0-90 mol% of 3HV was obtained when a mixture of sodium 3-hydroxybutyrate and sodium valerate was used as the carbon sources. Transmission electron microscopy analysis revealed an interesting aspect of the P(3HB-co-3HV) granules containing high molar ratios of 3HV whereby, the copolymer granules were generally larger than those of poly(3-hydroxybutyrate) [P(3HB)] granules, despite having almost the same cellular PHA contents. The large number of P(3HB-co-3HV) granules occupying almost the entire cell volume did not correspond to a higher amount of polymer by weight. This indicated that the granules of P(3HB-co-3HV) contain polymer chains that are loosely packed and therefore have lower density than P(3HB) granules. It was also interesting to note that a decrease in the length of the side chain from 3HV to 4-hydroxybutyrate (4HB) corresponded to an increase in the density of the respective PHA granules. The presence of longer side chain monomers (3HV) in the PHA structure seem to exhibit steric effects that prevent the polymer chains in the granules from being closely packed. The results reported here have important implications on the maximum ability of bacterial cells to accumulate PHA containing monomers with longer side chain length.

Centrifugation, Density Gradient↗