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Construction of a 1-Mb restriction-mapped cosmid contig containing the candidate region for the familial Mediterranean fever locus (MEFV) on chromosome 16p 13.3.

In this paper we describe the assembly and restriction map of a 1.05-Mb cosmid contig spanning the candidate region for familial Mediterranean fever (FMF), a recessively inherited disorder of inflammation localized to 16p13.3. Using a combination of cosmid walking and screening for P1, PAC, BAC, and YAC clones, we have generated a contig of genomic clones spanning approximately 1050 kb that contains the FMF critical region. The map consists of 179 cosmid, 15 P1, 10 PAC, 3 BAC, and 17 YAC clones, anchored by 27 STS markers. Eight additional STSs have been developed from the approximately 700 kb immediately centromeric to this genomic region. Five of the 35 STSs are microsatellites that have not been previously reported. NotI and EcoRI mapping of the overlapping cosmids, hybridization of restriction fragments from cosmids to one another, and STS analyses have been used to validate the assembly of the contig. Our contig totally subsumes the 250-kb interval recently reported, by founder haplotype analysis, to contain the FMF gene. Thus, our high-resolution clone map provides an ideal resource for transcriptional mapping toward the eventual identification of this disease gene.

Base Sequence↗

Restriction map of the antibiotic resistance plasmid R1drd-19 and its derivatives pKN102 (R1drd-19B2) and R1drd-16 for the enzymes BamHI, HindIII, EcoRI and SalI.

The conjugative R plasmid R1drd-19, mediating antibiotic resistance to ampicillin (Ap), chloramphenicol (Cm), kanamycin (Km), streptomycin (Sm) and sulfonamides (Su) was mapped using the restriction endonucleases BamHI, HindIII, EcoRI and SalI. BamHI generates 5 fragments (A-E) with molecular weights between 46 x 10(6) 0.25 x 10(6) dalton, and HindIII 8(A-H) between 42 x 10(6) dalton (representing mainly the RTF) and 0.25 x 10(6) dalton (representing the main part of the RTF) and 0.1 x 10(6) dalton. EcoRI recognises 17 sites and produces fragments (A-Q) with molecular weights between 11.7 and 0.1 x 10(6) dalton. SalI yields 7 fragments (A-G) of 16.5 to 2.0 x 10(6) dalton. A physical map was constructed from fragments obtained by partial digestion of R1drd-19 with one restriction enzyme, by double and triple digestion of the DNA with two or three enzymes with and without isolation of individual bands from preparative gels. In addition the restriction patterns of several mutants of R1drd-19 were compared with it. Evidence is presented which indicates that the derivatives of R1 investigated are generated by extended deletions, namely the copy mutant pKN102 which has lost the Km resistance, R1drd-16, which has lost all resistances other than Km and the Kms derivative of R1drd-16, which represents the pure RTF. The map of R1drd-19 is remarkably different from those of R100 and R6-5. Its molecular weight was estimated to be 62.5 Md. The circular fragment order for BamHI is: A-C-B-D-E, for HindIII: A-D-C-B-F-H-E-G, for EcoRI: A-C-K-B-F-J-O-D-H-L-G-P-Q-N-I-E-M- and for SalI A-B-C-D-G-F-E.

Ampicillin↗

A refined restriction map of YAC clones spanning the entire human dystrophin gene.

The enormous size of the human dystrophin gene (2300 kb) has so far hindered the analysis of its organization and the characterization at the genomic level of the deletion and duplication mutations causing Duchenne or Becker muscular dystrophy. A detailed physical map of the gene locus would considerably simplify these studies. We constructed a refined, long-range restriction map of the entire human dystrophin gene, using 12 overlapping YAC clones as DNA sources. The sites for six rare cutting enzymes (SfiI, NruI, EagI, BssHII, SacII, and NotI) were mapped by partial digest analysis of YACs over a region of 2600 kb, within a level of resolution of about 10 kb. Such a map provides the first detailed representation of the physical structure of the dystrophin gene. It will be useful for mapping unlocalized exons and, eventually, for the characterization of deletions and duplications leading to disease.

Animals↗

Construction of a Not I restriction map of the fission yeast Schizosaccharomyces pombe genome.

Pulsed field gel electrophoresis and large DNA technology were used to construct a Not I restriction map of the entire genome of the fission yeast Schizosaccharomyces pombe. There are 14 detectable Not I sites in S. pombe 972h: 9 sites on chromosome I and 5 sites on chromosome II, while no Not I sites were found on chromosome III. The 17 fragments (including intact chromosome III) generated by Not I digestion were resolved by PFG electrophoresis. These fragments ranged in size from 4.5 kb to approximately 3.5 Mb. Various strategies were applied in determining, efficiently, the order of the fragments on the chromosomes. The genomic size measured by adding all the fragments together is about 14 Mb and the sizes of the three chromosomes are I, 5.7 Mb, II, 4.6 to 4.7 Mb, and III, 3.5 Mb. These are generally somewhat smaller than estimated previously.

Blotting, Southern↗

Assembly of a 1-Mb restriction-mapped cosmid contig spanning the candidate region for Finnish congenital nephrosis (NPHS1) in 19q13.1.

We describe the assembly of a 1-Mb cosmid contig and restriction map spanning the candidate region for Finnish congenital nephrosis (NPHS1) in 19q13.1. The map was constructed from 16 smaller contigs assembled by fingerprinting, a BAC and a PAC clone, and 42 previously unmapped cosmids. In most cases, single-step cosmid walks were sufficient to join two previously assembled contigs, and all but one gap was filled from this cosmid contig library. The remaining gap of about 19 kb was spanned with a single BAC and a single PAC clone. EcoRI mapping of a dense set of overlapping clones validated the assembly of the map and indicated a length of 1040 kb for the contig. This high-resolution clone map provides an ideal resource for gene identification through cDNA selection, exon trapping, and DNA sequencing.

Chromosome Mapping↗

[Restriction map of the genetic transfer factor pAP42].

Based on the calculated molecular weights of EcoR1, HindIII, and SalI fragments of the genetic transfer factor pAP42 the restriction map of this plasmid was designed. Sites recognizing restrictases are mostly located in the plasmid fragment with a molecular weight of 5.7 MD.

Attachment Sites, Microbiological↗

Mitochondrial DNA from a spider mite: isolation, restriction map and partial sequence of the cytochrome oxidase subunit I gene.

Mitochondrial (mt) DNA of the phytophagous mite Tetranychus urticae was purified and a restriction map was constructed. The 12.5 kb long genome is the shortest animal mtDNA known. A 564 bp clone comprising part of the gene for cytochrome oxidase subunit I was sequenced. As has been found in insects, the mitochondrial sequences of mites are extremely A+T rich (75% on average, 96.5% at the third codon position).

Animals↗

Restriction map of an agropine-type Ri plasmid and its homologies with Ti plasmids.

The Ri plasmid of an agropine-type Agrobacterium rhizogenes, strain HRI, was cloned in a cosmid and mapped with the restriction endonucleases BamHI, EcoRI, KpnI, SmaI, and XbaI. This plasmid is almost identical to pRi1855 and pRiA4b. A study by Southern hybridizations of the homologies with octopine pTiB6806 and nopaline pTiC58 makes it possible to propose the localization of certain functions on this plasmid, such as virulence, agropine catabolism, agropine synthesis, and the origin of replication.

Base Sequence↗

Rapid restriction map constructions using a modified pWE15 cosmid vector and a robotic workstation.

This paper describes a number of techniques for rapid restriction mapping of cosmid clones. First, we have replaced the cloning site of cosmid vector pWE15 with a polylinker containing 15 infrequently cleaved restriction enzyme sites that are placed asymmetrically on each side of the BamHI cloning site. DNA cloned into this vector can be fully recovered by using several pairs of restriction enzymes. Second, we have designed a simple electrical circuit device that allows the performance of asymmetric voltage gradient field inversion gel electrophoresis (AFIGE) to improve the resolution of DNA molecules in the range of 20-50 kbp. AFIGE can be obtained by simply placing the device in between a commercially available switching unit and the gel box in a standard field inversion system. Finally, the restriction digestion procedure has been automated by using a Beckman Biomek 1000 robotic workstation. Using this automated system, 96 restriction reactions, including gel loading, can be performed in less than two hours. In summary, these methods represent at least a tenfold improvement in the speed and/or mapping data that can be obtained in a single gel.

Animals↗

A restriction map of virulence plasmid pVYE439-80 from a serogroup 9 Yersinia enterocolitica strain.

A restriction map of the virulence plasmid pVYE439-80, isolated from Yersinia enterocolitica 439-80 (serogroup 9) was constructed for EcoRI, BamHI, SstII, and SmaI. The mapping was done after cloning of about two-thirds of the plasmid in Escherichia coli. The restriction pattern was compared to those obtained with plasmids isolated from Y. enterocolitica strains of serogroups 1, 3, and 5b. The restriction sites are particularly conserved in a region of about 25 kb. This region contains fragments that are also conserved in serogroup 8 strains [J. Heeseman, C. Keller, R. Morawa, N. Schmidt, H. J. Siemens, and R. Lauf (1983) J. Infect. Dis. 147, 107-115] and that were shown, in strains from this serogroup, to encode calcium dependency [D. A. Portnoy, H. Wolf-Watz, I. Bolin, A. B. Beeder, and S. Falkow, (1984) Infect. Immun. 43, 108-114].

Base Sequence↗

Estimation of restriction maps with known site order using a generalized linear model.

A generalized linear model with Gamma errors is used to estimate the coordinates of a restriction map when the site order is known. This can be conveniently programmed in a wide range of statistical packages (e.g. Genstat 5, Minitab, SAS), and gives maximum likelihood estimates with their associated optimal properties. Regression diagnostics allow the checking of assumptions and help to identify mis-specified, influential or discordant fragment lengths. A specific diagnostic for identifying fragment lengths causing reversal of restriction site order is derived. Exact 'fragment' lengths from DNA sequencing can be conveniently included in an approximate manner by giving them a larger weight than observed restriction fragment lengths. Two examples and the Genstat 5 codes used in their analysis are presented.

Algorithms↗

Molecular cloning, correlation of genetic and restriction maps, and determination of the direction of transcription of gnd of Escherichia coli.

Expression of the gene gnd of Escherichia coli, which encodes 6-phosphogluconate dehydrogenase, is regulated by growth rate. Using deoxyribonucleic acid from the specialized transducing phage lambda h80 dgnd his as the source of gnd, we cloned restriction fragments carrying the complete gene and portions of it on the plasmid vector pBR322. A hybrid plasmid carrying a 3.7-megadalton HindIII restriction fragment from the phage was prepared and found to be gnd+. Through restriction mapping of this fragment and subcloning segments of it, we prepared a gnd+ hybrid plasmid which carried only 1.85 megadaltons of E. coli deoxyribonucleic acid. A cleavage site for the restriction endonuclease PstI was located on the genetic map of gnd by cloning adjacent EcoRI-PstI restriction fragments and crossing the resulting hybrid plasmids with previously mapped gnd deletion and bacteriophage Mu insertion mutants. A maxicell experiment was used to determine the direction of transcription of gnd, to identify which EcoRI-PstI fragment contains the gnd promote, and to localize th beginning of the structural gene to a region about 850 +/- 150 base pairs from the PstI cleavage site. A fine-structure restriction map surrounding the PstI cleavage site was prepared for endonucleases KpnI, HincII, HaeIII, HpaII, and TaqI.

Chromosome Mapping↗

Restriction-map variation in natural populations of Drosophila melanogaster: white-locus region.

Restriction-map variation among 38 chromosomes collected from natural populations from around the world was surveyed using probes for a 45-kb region containing and surrounding the white locus. Insertion and deletion variation was more common in the regions flanking the white transcriptional unit, and restriction-site polymorphism appears to be most common 5' of the white locus. The frequencies of individual large insertions (suspected transposable elements) were low, although 37% of the chromosomes had at least one insertion in the white-locus region. The estimated level of nucleotide heterozygosity over the whole region was 0.012. There was little linkage disequilibrium among the polymorphic sites. In contrast to earlier reports of the variation in other regions of the Drosophila melanogaster genome, there seemed to be less linkage disequilibrium and perhaps more nucleotide polymorphism.

Animals↗

Serotype-converting bacteriophage D3 of Pseudomonas aeruginosa: vegetative and prophage restriction maps.

D3 is a temperate serotype-converting bacteriophage of Pseudomonas aeruginosa. A restriction map, based upon BamHI, PstI, PvuI, HindIII and SmaI sites, indicates that the phage genome is 56.4 kb long, and that it possesses cohesive ends. The prophage map suggests a unique insertion site in the strain AK1380 genome. Phage DNA integration occurs upon the circularization of D3 genome with the integration point approximately equidistant from the two ends.

Bacteriophages↗

Two human papillomavirus DNAs molecularly cloned from a patient with epidermodysplasia verruciformis: restriction maps.

Two distinct human papillomavirus (HPV) DNAs (MY-1 and MY-2) were molecularly cloned from the benign skin lesions of a patient with epidermodysplasia verruciformis. The restriction map of MY-1 was the same as that of HPV 3a. The map of MY-2 appeared to be different from those of any HPVs reported in the literature. MY-2 did not cross-hybridize with MY-1 or the DNAs of HPV types 1, 2 and 4 under stringent conditions.

DNA, Viral↗

A long range restriction map spanning the myxoid liposarcoma breakpoint in the q13-14 region of human chromosome 12.

We have used pulsed-field gel electrophoresis to construct a long range restriction map of the myxoid liposarcoma (MLS) breakpoint region in 12q13-14. The CHOP/GADD153 gene, consistently translocated in myxoid liposarcomas, is located less than 55 kb from the putative oncogene GLI. We have used fluorescent in situ hybridization to orient the map with respect to the chromosome, and to show that GLI (and thus A2MR) is located proximal to the MLS breakpoint.

CCAAT-Enhancer-Binding Proteins↗

Long-range restriction mapping of megabase-sized chromosomes that may be homologs in Trypanosoma brucei.

Trypanosoma brucei is a blood-borne pathogen that changes its variant surface glycoprotein coat, thus evading immune destruction. Restriction digestion, combined with probe hybridization studies, was used to construct long-range restriction maps of the 1.4 (M4) and 1.5 megabase (M3) chromosomes from the IsTaR1 serodeme of T. b. brucei. Comparison of the two chromosomes suggests that they are a homologous pair. Hybridization with a repetitive sequence probe also identifies several copies on the M4 chromosome and a relative paucity of cross-hybridizing repetitive sequence on the larger M3 chromosome.

Animals↗

A partial restriction map of the proA-purE region of the Escherichia coli K12 chromosome.

EcoRI restriction mapping data for fragments larger than 0.7 kb and contained in a 350-kb region of the Escherichia coli K-12 chromosome are presented. 75% of these fragments have been located relative to proA, B, argF, lac, proC, purE, and various insertion sequence elements normally present in this region. BglII and BamHI maps for the regions near argF and purE are also provided.

Bacterial Proteins↗