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1.
Ten UV-sensitive mutants of T4D with the v phenotype were isolated. Of these ten mutants, two are amber and two opal. In UV curves and in photoreactivation and multiplicity reactivation (MR) experiments the nonsense mutants show the v phenotype in su hosts and almost the T4+ phenotype in su+ hosts. The mutations are located between rI and e and are alleles of v1. In crosses with irradiated and non-irradiated phages the recombinant frequency is not reduced by uvs5.Amber uvs5 propagated in CR63 su+ is with B su just as sensitive to UV as uvs5 propagated in B su, which permits the conclusion that the capsid of T4 phage particles does not contain the v gene product.In addition, four mutants with a relative UV sensitivity equal to that of T4x were isolated. These are discussed in the next paper33.  相似文献   

2.
In several organisms used for recombinant protein production, integration of the expression cassette into the genome depends on site-specific recombination. In general, the yeast Kluyveromyces lactis shows low gene-targeting efficiency. In this work, two K. lactis ku80 ? strains defective in the non-homologous end-joining pathway (NHEJ) were constructed using a split-marker strategy and tested as hosts for heterologous gene expression. The NHEJ pathway mediates random integration of exogenous DNA into the genome, and its function depends on the KU80 gene. KU80-defective mutants were constructed using a split-marker strategy. The vectors pKLAC1/Plg1 and pKLAC1/cStpPlg1 were used to evaluate the recovered mutants as hosts for expression of pectin lyase (PNL) and the fusion protein streptavidin–PNL, respectively. The transformation efficiency of the ku80 ? mutants was higher than the respective parental strains (HP108 and JA6). In addition, PNL secretion was detected by PNL assay in both of the K. lactis ku80 ? strains. In HP108ku80?/cStpPlg1 and JA6ku80?/Plg1 cultures, the PNL extracellular specific activity was 551.48 (±38.66) and 369.04 (±66.33) U/mg protein. This study shows that disruption of the KU80 gene is an effective strategy to increase the efficiency of homologous recombination with pKLAC1 vectors and the production and secretion of recombinant proteins in K. lactis transformants.  相似文献   

3.
Recombination between direct repeats has been studied in Penicillium chrysogenum using strain TD7-88 (lys? pyr+), which contains two inactive copies of the lys2 gene separated by 4.5?kb of DNA (including the pyrG gene) in its genome. Gene conversion leading to products with the lys+ pyr+ phenotype was observed at a frequency of 1 in 3.2?×?103 viable spores. Two types of deletion events giving rise to lys+ pyr? and lys? pyr? phenotypes were obtained with different frequencies. Southern analysis revealed that gene conversion occurs mainly as a result of crossing over events that remove the BamHI frameshift mutation present in one of the repeats. In lys? pyr? recombinants, the deletion events do not affect the frameshift mutation in the BamHI site, while lys+ pyr? recombinants showed repair of the BamHI frameshift mutation and the genotype of the parental non-disrupted strain was restored. In summary, deletion events in P. chrysogenum tend to favor the restoration of the phenotype and genotype characteristic of the parental non-disrupted strain.  相似文献   

4.
The transducing bacteriophage φ80psuIII+ carries one structural Escherichia coli gene specifying tyrosine tRNA.The r strand of bacteriophage φ80psuIII+ was hybridized with E. coli transfer RNA and the hybrid digested with Neurospora crassa endonuclease. The analysis of the products of enzymic digestion demonstrated the release of a cistron-hybrid composed of tyrosine tRNA and its complementary DNA sequence. The cistron-hybrid was purified from unhybridized DNA by cesium sulphate density-gradient centrifugation and gel filtration.The ratio between tyrosine tRNA and its complementary DNA sequence in the final product was 1:1 as demonstrated by radioisotopic analysis. This purification represents a 30,000-fold enrichment of the E. coli genome for a specific DNA sequence.  相似文献   

5.
In this work we show that the wild-type (su?7) progenitor of the recessivelethal suppressors of UAG (su+7(UAG)) and of UAA/G (su+7(UAA/G)) is the structural gene for transfer RNATrp, the adaptor for translating the codon UGG. The su+7(UAG) suppressor form of the tRNA has a C for U substitution in the middle base of the anticodon; in the su+7(UAA/G) suppressor tRNA both C residues of the anticodon are replaced by U. Our data establish that the mutational change altering the tRNATrp to a UAG suppressor is accompanied by a loss of tryptophan-accepting specificity and the acquisition of glutamine-acceptor activity.  相似文献   

6.
The number of gene copies for tRNA2Gln in λpsu+2 was determined by genetic and biochemical studies. The transducing phage stimulates the production of the su+2 (amber suppressor) and su°2 glutamine tRNAs and methionine tRNAm. When the su+2 amber suppressor was converted to an ochre suppressor by single-base mutation, the phage stimulated ochre-suppressing tRNA2Gln, instead of the amber-suppressing tRNA2Gln. From the transducing phage carrying the ochre-suppressing allele, strains carrying both ochre and amber suppressors were readily obtainable. These phages stimulated both ochre-suppressing and amber-suppressing tRNA2Gln, but not the non-suppressing form. We conclude that the original transducing phage carries two tRNA2Gln genes, one su+2 and one su°2. The transducing phage carrying two suppressors, ochre and amber, segregates one-gene derivatives that encode only one or the other type of suppressor tRNA. These derivatives apparently arise by unequal recombination involving the two glutamine tRNA genes in the parental phage. This segregation is not accompanied by the loss of the tRNAmMet gene. Based on these results, it is suggested that Escherichia coli normally carries in tandem two identical genes specifying tRNA2Gln at 15 minutes on the bacterial chromosome. su+2 mutants may arise by single-base mutations in the anticodon region of either of these two, leaving the other intact. By double mutations, tRNA2Gln genes could also become ochre suppressors. A tRNAmMet gene is located near, but not between, these two tRNA2Gln genes.  相似文献   

7.
In order to isolate the gene for amber suppressor su+2 (SupE) in Escherichia coli, a non-defective su+2-transducing phage lambda was isolated in three steps: first, deletion derivatives of F′su+2 gal (λ) were selected, linking su+2 to the right-hand prophage attachment site, attλPB′; second, these F′-factors were relysogenized by λ and defective transducing phages, λdsu+2, were produced by induction; and third, non-defective λpsu+2 transducing phages were produced by recombination of λdsu+2 isolates with λ. Upon infection by λpsu+2, the production of transferRNAs accepting glutamine and methionine was markedly stimulated. Fingerprint analysis of these tRNAs revealed that they consisted of normal tRNA2Gln, mutant tRNA2Gln and tRNAmMet. The mutant tRNA2Gln carried a singlebase alteration from G to A at the 3′-end of the anticodon. The production of tRNA1Gln was not stimulated by the infection of λpsu+2. We conclude that the wild-type allele of su+2 (SupE) is the structural gene for tRNA2Gln, and the su+2 amber suppressor was derived by a single base mutation, changing the anticodon from CUG to CUA, in one of the multi-copy genes for tRNA2Gln. The fact that λpsu+2 also induces the production of tRNAmMet suggests that this tRNA is encoded in the same chromosomal region of E. coli as is tRNA2Gln.  相似文献   

8.
The sequences present on the DNA of the transducing phage, φ80d3ilv+su+7 have been mapped by electron microscope heteroduplex methods. In addition to some φ80 sequences, the phage DNA contains sequences from the extreme counterclockwise region and from the extreme clockwise region of the bacterial chromosomal part of F14. The former includes ilv, the latter a 16 S and a 23 S ribosomal RNA gene. These two regions are joined on the transducing phage DNA by the 2.8 to 8.5F sequence.By direct observation of the structure of the rRNA/DNA hybrids, the 16 S and 23 S genes have lengths of 1.38 ± 0.14 and 2.66 ± 0.17 kilobases. They are separated by a spacer of length 0.57 ± 0.13 kilobases.The rRNA genes (rrn) of φ80d3ilv+su+7 are derived from and are identical with the rrnB gene set of F14. In heteroduplexes between the rrnB gene set of φ80d3ilv+su+7, and the rrnA gene set of F14 we observe that there is a region of non-homology of length 0.25 ± 0.06 kilobases within the spacer sequence. This confirms observations in the preceding paper on the structure of out-of-register duplexes of the two rRNA gene sets of F14.A model for the integration and excision events involved in the formation of φ80d3ilv+su+ 7 from φ80dmet(K) is proposed.  相似文献   

9.
An amber dna mutant of Escherichia coli K12 affecting DNA ligase   总被引:5,自引:0,他引:5  
We have isolated an amber mutant (dnaL321) of Escherichia coli K12, which affects DNA ligase and which is lethal unless it is suppressed. DNA is degraded under the restrictive conditions. The mutation also affects the sensitivity of the cell to ultraviolet light irradiation, and the capacity to support the growth of phage λ that is deficient in general recombination. This pleiotropy is considered to be due to a single mutation, and is suppressed by supD?Isu+ and by supF?suIII+). The mutation is cotransducible with dapE(2%), and with ptsI(85%), by phage Plvir.  相似文献   

10.
Previous work identified the psu+1 amber suppressor gene of bacteriophage T4. Analysis of protein arising from suppression now shows that psu+1 specifies the insertion of serine in response to the amber triplet. The efficiency of suppression is 70%.The psu1+ gene affects a serine transfer RNA coded by bacteriophage T4. Comparative ribonuclease T1 fingerprint analysis of the serine transfer RNAs made by wild type T4 and psu+1 strains shows a specific alteration in the patterns, presumably reflecting a mutational alteration in the anticodon of the transfer RNA. Mutations which result in the loss of suppressor activity define two genes: one is apparently the structural gene for the serine transfer RNA; the function of the second gene, M1, is less clear. Mutational inactivation of either gene prevents the appearance of the serine transfer RNA and a second transfer RNA, which has not yet been associated with its cognate amino acid. M1 mutants are also deficient in the production of several additional transfer RNA species, as well as several larger RNAs. The significance of these results in relation to transfer RNA biosynthesis is discussed.  相似文献   

11.
During vegetative growth φ80)sus2psu3+ and φ80int3sus2psu3+ segregate su3? progeny phages, which have lost suppressor activity, at high frequency, even in the absence of the host Rec system. DNA molecules of the su3? segregants were equivalent to φ80 DNA, as determined by heteroduplex analysis. Loss of suppressor activity is ascribed either to unequal intermolecular crossing-over or to excision by internal recombination between two homologous regions of the phage genome which bracket the bacterial segment containing the su3+ gene. To investigate the recombination system acting on the segregation of su3? phages, a fec?int? deletion derivative of φ80sus2psu3+, φ80Δ4sus2psu3+, has been isolated that is stable even after several cycles of growth in the absence of the host Rec system. However, segregation of su3? phages from φ80Δ4sus2psu3+ was observed when it was complemented in vivo with the hybrid phage λatt80imm80 in the absence of the host Rec system. The Δ4 deletion is 12.4% of the φ80 genome, starting at a distance of 1.6% φ80 unit to the right from the φ80 crossover point, pp′, i.e. located between 54.6% and 67.0% φ80 unit, as measured from the left (0%) termini of the mature φ80 DNA molecules. By locating the regions of homology between the DNAs of λ and φ80 (Fiandt et al., 1971), the region deleted in φ80Δ4sus2psu3+ was assigned to the genes of the phage Red system and a part of the int gene. In the presence of the host Rec system, φ80Δ4-sus2psu3+ segregates both phages, φ80Δ4sus2 and φ80Δ4sus2p(su3+)2, which were excised or duplicated for su3+-transducing fragments. The loss of the duplication in φ80Δ4sus2p(su3+)2 is also promoted by the host Rec system. Either of two generalized recombination systems, viral Red system or host Rec system, can play a role in the production of the excisions and the duplications of transducing fragments.  相似文献   

12.
The suppressor gene,su(s)2, inDrosophila melanogaster restores the production of red and brown eye pigments for some purple and vermilion mutant alleles, respectively. We showed previously that the product of thesu(s)+ allele caused inhibition of the sepiapterin synthase A produced by the purple mutant but did not affect the wild-type enzyme. Suppression was accomplished by removingsu(s)+ from the genome. We now report that the tryptophan oxygenase, produced by suppressible vermilion alleles, is also inhibited by extracts fromsu(s)+ flies. The inhibition of the vermilion enzyme can be reduced or eliminated, respectively, by prior storage of the extract at 4 or –20°C or by boiling, whereas the wild-type enzyme is not affected by extracts ofsu(s)+ flies. Also, when the suppressible vermilion strain is raised on certain diets, brown eye pigment production occurs. This epigenetic suppression was reduced by the presence of an extra copy ofsu(s)+ in the genome. These data support a posttranslational mechanism for regulation of enzyme activity in which the activity of the mutant enzyme is reduced by the product of thesu(s)+ allele. How thesu(s)+ gene product can distinguish between the normal and the mutant forms of these two enzymes is discussed, along with other mechanisms for suppression that are currently under investigation.This work was supported in part by a grant from the KOSEF, Korea Science and Engineering Foundation, and the National Science Foundation under the U.S.-East Asia Cooperative Science Program as well as the Office of Health and Environmental Research, U.S. Department of Energy, under Contract DE-AC05-840R21400 with the Martin Marietta Energy Systems, Inc.  相似文献   

13.
The recessive lethal amber suppressor su+7(UAG-1) in Escherichia coli inserts glutamine in response to the UAG codon. The genetic analysis presented in this paper shows that the su?7 precursor allele can give rise to suppressors of the UGA codon as well as of the UAG codon. This observation suggests that the su?7 gene normally codes for transfer RNATrp, a tRNA whose anticodon can be modified by single base changes to forms that can translate either UAG or UGA. The chemical findings presented in the accompanying paper (Yaniv et al., 1974) are wholly in accord with this interpretation. Thus, a single base substitution in the anticodon sequence of a tRNA can affect both the coding specificity of the molecule and also the amino acid acceptor specificity.  相似文献   

14.
T7 bacteriophage infects with equal efficiency restriction-proficient Escherichia coli K12 cells and the restriction-deficient mutants. To the contrary, the purified phage DNA transfects wild-type cells at a very low efficiency (10?9 plaques/genome equivalent). Mutations in the recB recC (exonuclease V) and sbcB (exonuclease I) loci increase the transfecting efficiency tenfold. A 1000-fold increase is obtained with cells deficient in restriction. No further increase is observed in hosts carrying both sets of mutations. The transfecting activity of the DNA on restriction-deficient hosts increases another 20-fold (up to 4 × 10?5 plaques/genome equivalent) by complete erosion of the redundant regions of DNA with λ exonuclease, both in rec+ and recB recC sbcB genotypes. Circles and linear oligomers arising from the annealing of eroded DNA show the same transfecting activity as the unannealed monomers. The terminal redundancy of the genome, as measured by the onset of annealability of eroded molecules, was found to comprise 50 to 100 base-pairs.  相似文献   

15.
Wild-type bacteriophage T4 and DNA-delay am mutants defective in genes 39, 52, 60 and 58–61 were tested for intracellular sensitivity to the antibiotics coumermycin and novobiocin, drugs which inhibit the DNA gyrase of Escherichia coli. Treatment with these antibiotics drastically reduced the characteristic growth of gene 39, 52 and 60 DNA-delay am mutants in E. coli lacking an amber suppressor (su?). Wild-type phage-infected cells were unaffected by the drugs while the burst size of a gene 58–61 mutant was affected to an intermediate extent. A su?E. coli strain which is resistant to coumermycin due to an altered gyrase permitted growth of the DNA-delay am mutants in the presence of the drug. Thus, the characteristic growth of the DNA-delay am mutants in an su? host apparently depends on the host gyrase. An E. coli himB mutant is defective in the coumermycin-sensitive subunit of gyrase (H. I. Miller, personal communication). Growth of the gene 39, 52 and 60 am mutants was inhibited in the himB mutant while the gene 58–61 mutant and wild-type T4 showed small reductions in burst size in this host. Experiments with nalidixic acid-sensitive and resistant strains of E. coli show that wild-type phage T4 requires a functional nalA protein for growth.Novobiocin and coumermycin inhibit phage DNA synthesis in DNA-delay mutant-infected su?E. coli if added during the early logarithmic phase of phage DNA synthesis. The gene 58–61 mutant showed the smallest inhibition of DNA synthesis in the presence of the drugs. Addition of the drugs during the late linear phase of phage DNA synthesis had no effect on further synthesis in DNA-delay mutant-infected cells. Coumermycin and novobiocin had no effect on DNA synthesis in wild-type-infected cells regardless of the time of addition of the antibiotics. Models are considered in which the DNA-delay gene products either form an autonomous phage gyrase or interact with the host gyrase and adapt it for proper initiation of phage DNA replication.  相似文献   

16.
The Exo5 family consists of bi-directional, single-stranded DNA-specific exonucleases that contain an iron-sulfur cluster as a structural motif and have multiple roles in DNA metabolism. S. cerevisiae Exo5 is essential for mitochondrial genome maintenance, while the human ortholog is important for nuclear genome stability and DNA repair. Here, we identify the Exo5 ortholog in Schizosaccharomyes pombe (spExo5). The activity of spExo5 is highly similar to that of the human enzyme. When the single-stranded DNA is coated with single-stranded DNA binding protein RPA, spExo5 become a 5′-specific exonuclease. Exo5Δ mutants are sensitive to various DNA damaging agents, particularly interstrand crosslinking agents. An epistasis analysis places exo5+ in the Fanconi pathway for interstrand crosslink repair. Exo5+ is in a redundant pathway with rad2+, which encodes the flap endonuclease FEN1, for mitochondrial genome maintenance. Deletion of both genes lead to severe depletion of the mitochondrial genome, and defects in respiration, indicating that either spExo5 or spFEN1 is necessary for mitochondrial DNA metabolism.  相似文献   

17.
Escherichia coli DNA and fragmented rRNA were used as a model system to study the effect of RNA fragment size in hybridization-competition experiments. Though no difference in hybridization rates was observed, the relative stabilities of the RNA/DNA hybrids were found to be largely affected by the fragment size of the RNA molecule. Intact rRNA was shown to replace shorter homologous rRNA sequences in their hybrids, the rate of the displacement being dependent on the molecular size of the RNA fragments. Hybridization-competition experiments between molecules of different lengths are expected to be complicated by the displacement reaction. The synthesis of tRNATyr-like sequences transcribed in vitro on φ80psu3+ bacteriophage DNA was measured by hybridization competition assays. Indirect competition with labelled E. coli tRNATyr hybridization revealed that the in vitro-synthesized RNA contained significant amounts of tRNATyr; these sequences could not, however, be detected by the direct competition method in which labelled in vitro-synthesized RNA competes with E. coli tRNATyr for hybridization to φ80psu3+ DNA. These contradictory results can be traced to the differences in size of the competing molecules in the hybridization-competition reaction. Indeed, in vitro-transcribed tRNATyr-like sequences, longer than mature tRNA, were found to displace efficiently E. coli tRNATyr from its hybrids with φ80psu3+ DNA. These findings explain why such sequences could not be detected by direct competition with E. coli tRNATyr.  相似文献   

18.
Dna2 is a dual polarity exo/endonuclease, and 5′ to 3′ DNA helicase involved in Okazaki Fragment Processing (OFP) and Double-Strand Break (DSB) Repair. In yeast, DNA2 is an essential gene, as expected for a DNA replication protein. Suppression of the lethality of dna2Δ mutants has been found to occur by two mechanisms: overexpression of RAD27scFEN1, encoding a 5′ to 3′ exo/endo nuclease that processes Okazaki fragments (OFs) for ligation, or deletion of PIF1, a 5′ to 3′ helicase involved in mitochondrial recombination, telomerase inhibition and OFP. Mapping of a novel, spontaneously arising suppressor of dna2Δ now reveals that mutation of rad9 and double mutation of rad9 mrc1 can also suppress the lethality of dna2Δ mutants. Interaction of dna2Δ and DNA damage checkpoint mutations provides insight as to why dna2Δ is lethal but rad27Δ is not, even though evidence shows that Rad27ScFEN1 processes most of the Okazaki fragments, while Dna2 processes only a subset.Key words: yeast, RAD27, RAD9, RAD53, Okazaki fragment processing, DNA replication, exo1  相似文献   

19.
The nature of nucleolytic activity regulated by genes 46 and 47 of bacteriophage T4 was studied by examining the metabolism of parental DNA of phages carrying a mutation in polynucleotide ligase gene (lig) and an additional mutation in one of the following D0 genes (D0 genes are necessary for T4 DNA synthesis): 32, 43 (DNA polymerase  pol), 44 and 45. Polynucleotide ligase and DNA polymerase were used to distinguish nicks (phosphodiester bond interruptions on duplex DNA) from gaps (interruptions with missing nucleotides). In non-permissive hosts, parental DNA of double mutants (lig, D0) accumulated both single- and double-strand breaks. Up to 30% of this DNA eventually became acid-soluble. An additional mutation in gene 46 (or 47) did not prevent accumulation of double- and single-strand breaks but did prevent degradation to the acid-soluble state. The majority of the single-strand breaks on (lig, D0)-DNA were presumed to be gaps since, after extraction from infected host cells, they were repaired by ligase plus DNA polymerase but not by ligase alone. In contrast, the majority of the single-strand breaks on parental DNA of (lig, D0, 46) or (lig, pol, 47) were repaired by ligase alone, suggesting nicks, rather than gaps. These observations suggest that (i) genes 46 and 47 regulate, either directly or indirectly, an exonuelease activity which can attack T4 DNA at nicks to create gaps, and (ii) T4 DNA polymerase, and the products of genes 32, 44 and 45 are necessary to prevent nicks from becoming gaps in vivo. Possible roles for genes 46 and 47 in T4 DNA replication and in recombination are discussed.  相似文献   

20.
A method for mapping transfer RNA genes on single strands of DNA is described. tRNA is covalently coupled to the electron-opaque label, ferritin. The ferritinlabeled tRNA, Fer-tRNA, is hybridized to a single strand of DNA, or to a single- strand region of a DNA in a heteroduplex. The sites where the Fer-RNA binds to the complementary sequence on the DNA are then mapped by electron microscopy. Several alternative coupling procedures are described (see Fig. 1). In HzI a — COCH2Br group is attached to ferritin by acylation. 3'-Oxidized tRNA is joined to HSRCONHNH2 by hydrazone formation. Ferritin is then coupled to tRNA by reaction of the CBr and SH bonds. In the BI procedure a lysine amino group of ferritin is coupled by Schiff base formation with 3'-oxidized RNA. The conjugate is stabilized by borohydride reduction. In the BII procedure, a —COCH2Br group is attached to ferritin. (H2NCH2CH2S—)2 is coupled to oxidized tRNA by Schiff base formation and borohydride reduction. An SH group is exposed by reduction. This HS-tRNA is coupled to a —COCH2Br group attached to ferritin. All the procedures work but BII is recommended. Methods for purifying the Fer-tRNA and the Fer-tRNA-DNA hybrid are described. For the transducing phages, φ80hpsu+,?III and φ80hpsu?III, the DNA molecules each carry a piece of bacterial DNA of length 0·066±0·007 λ unit (3100 nucleotide pairs; we find the length of λ is 8·99 φX174 units) replacing a piece of phage DNA of φ80h of length 0·045±0·005 λ unit. The left junction of this bacterial DNA with phage DNA (referred to as P-B′) is at or close to the att site. The two tandem tyrosine genes of φ80hpsu+,?III and the single tRNA gene of φ80hpsu?III have been mapped at a position 1100 nucleotides to the right of the left (P·B′) junction of phage DNA and bacterial DNA, by hybridizing Escherichia coli Fer-tRNA to φ80hpsuIII/φ80h heteroduplexes. The separation of the two ferritin labels in φ80hpsu+,?III hybrids gives 140±20 nucleotides as the size of a single tyrosine tRNA gene.  相似文献   

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