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Constructing chromosome- and region-specific cosmid maps of the human genome.

A chromosome-specific ordered set of cosmids would be a significant contribution toward understanding human chromosome structure and function. We are developing two parallel approaches for creating an ordered cosmid library of human chromosome 19 and other selected subregions of the human genome. The "bottom up" approach is used to establish sets of overlapping cosmids as islands or "contigs" along the chromosome, while the "top down" approach, using pulsed-field gel electrophoresis and yeast cloning, will establish a large-fragment map and close the inevitable gaps remaining from the "bottom up" approach. Source DNA consists of a single homolog of chromosome 19 from a hamster--human hybrid cell and human fragments cloned in yeast artificial chromosomes. We have constructed cosmid libraries in a vector that facilitates cloning small amounts of DNA, allows transcription of the insert termini, and contains unique sites for partial-digest mapping. Computer simulations of cosmid contig building suggest that near-optimal efficiency can be achieved with high-density restriction fragment digest schemes that can detect 20-30% overlap between cosmids. We developed the chemistry and data analysis tools to compare the ordering efficiencies of several cosmid restriction digest fingerprinting strategies. Restriction fragments from a four-cutter digest are labeled with a fluorochrome, separated by polyacrylamide gel electrophoresis, and detected after laser excitation as they traverse a fixed point in the gel. We have also developed the software to rapidly process the output signal to define and analyze the fragment peaks. Up to three cosmids (or three different digests of the same cosmid) plus a size standard are analyzed simultaneously in a single gel lane.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Isolation of genes (nif/hup cosmids) involved in hydrogenase and nitrogenase activities in Rhizobium japonicum.

Recombinant cosmids containing a Rhizobium japonicum gene involved in both hydrogenase (Hup) and nitrogenase (Nif) activities were isolated. An R. japonicum gene bank utilizing broad-host-range cosmid pLAFR1 was conjugated into Hup- Nif- R. japonicum strain SR139. Transconjugants containing the nif/hup cosmid were identified by their resistance to tetracycline (Tcr) and ability to grow chemoautotrophically (Aut+) with hydrogen. All Tcr Aut+ transconjugants possessed high levels of H2 uptake activity, as determined amperometrically. Moreover, all Hup+ transconjugants tested possessed the ability to reduce acetylene (Nif+) in soybean nodules. Cosmid DNAs from 19 Hup+ transconjugants were transferred to Escherichia coli by transformation. When the cosmids were restricted with EcoRI, 15 of the 19 cosmids had a restriction pattern with 13.2-, 4.0-, 3.0-, and 2.5-kilobase DNA fragments. Six E. coli transformants containing the nif/hup cosmids were conjugated with strain SR139. All strain SR139 transconjugants were Hup+ Nif+. Moreover, one nif/hup cosmid was transferred to 15 other R. japonicum Hup- mutants. Hup+ transconjugants of six of the Hup- mutants appeared at a frequency of 1.0, whereas the transconjugants of the other nine mutants remained Hup-. These results indicate that the nif/hup gene cosmids contain a gene involved in both nitrogenase and hydrogenase activities and at least one and perhaps other hup genes which are exclusively involved in H2 uptake activity.

DNA, Bacterial↗

Organization of the multiple polymorphic sites of the D19S11 locus within a 650-kb cosmid contig.

The D19S11 locus has been previously described as consisting of a complex set of six nonallelic polymorphic sites detected with a combination of four restriction enzymes and three probes that were subcloned from a single cosmid. These probes also hybridized to additional nonvariant fragments on Southern blots of human genomic DNA. In the course of establishing a contig map of human chromosome 19, a set of cosmids that were positive for at least one of the probes defining this locus was identified. These cosmids, along with additional cosmids, were assembled using a combination of strategies, including fluorescence in situ hybridization studies using G1 interphase nuclei and sperm pronuclei as chromatin targets, into a single overlapping set of cosmids that spans approximately 650 kb. Cosmids that are positive for the MEL gene probe are localized at the centromeric end of the spanning path, with some cosmids being positive for both the MEL gene probe and one of the D19S11 probes. The EcoRI fragments with homology to the various probes have been identified; some cosmids have homology to all three D19S11 probes. The positions for five of the six polymorphic sites were localized within a 40-kb region, with four sites within 15 kb.

Blotting, Southern↗

A cosmid-based system for constructing mutants of herpes simplex virus type 1.

Cosmids containing large fragments of herpes simplex virus type 1 DNA were prepared using a vector that allows intact inserts to be excised using the restriction endonuclease PacI. Two independent sets (A and B) of five cosmids were identified whose inserts overlap and represent the entire viral genome, and set C was obtained by replacing two cosmids in set B. Each set gave rise to viral plaques when digested with PacI and transfected into cells in culture. Two cosmids common to sets B and C ostensibly contain one of the origins of viral DNA replication (oriL) in a region of overlap between inserts, but both actually consist of a minority of apparently intact (ori+L) forms and a majority of deleted (ori-L) forms. These sets yielded exclusively ori+L viral progeny. When either of these cosmids was replaced by a derivative comprising only ori-L forms, ori+L and ori-L progeny were obtained, and only ori-L progeny were produced when both were replaced. One cosmid in set A contains the oriL locus in a nonoverlapping region and lacks ori+L forms. This set generated only ori-L virus. Viral mutants with lesions in either or both of genes UL2 and UL44, which are not essential for growth in cell culture, were constructed using cosmids containing specifically introduced frameshift mutations. A mutant with a frameshift mutation in an essential gene (UL33) was isolated by transfecting a complementing cell line. These results indicate that a cosmid-based system will facilitate isolation of large numbers of defined viral mutants.

Animals↗

Four restriction fragment length polymorphisms revealed by probes from a single cosmid map to human chromosome 12q.

Human gene mapping would be greatly facilitated if marker loci with sufficient polymorphism information content were generally available. As a source of such markers, we have used cosmids from a human genomic library. We have used a rapid method for screening random cosmids to identify those homologous to genomic regions especially rich in restriction fragment length polymorphisms (Litt and White 1985). This method allows whole cosmids to be used as probes against Southern transfers of genomic DNA; regions of cosmid probes homologous to repeated genomic sequences are rendered unable to anneal with Southern transfers by prehybridization of the probes with a vast excess of non-radioactive genomic DNA. From one cosmid (C1-11) identified by this procedure, we have isolated four single-copy probes, each of which identifies a polymorphic locus. Despite the existence of some linkage disequilibrium in this system, the polymorphism information content was computed as 0.73. Using a somatic cell hybrid mapping panel, we have mapped probes from cosmid 1-11 to human chromosome 12q. Additionally, in situ hybridization of the whole cosmid to metaphase spreads allowed more precise assignment of the locus to the region 12cen----q13. The locus revealed by probes from cosmid 1-11 has been designated D12S6.

Animals↗

Rapid mapping of cosmid clones on pig chromosomes by fluorescence in situ hybridization.

Nineteen cosmids have been mapped to pig chromosomes by fluorescence in situ hybridization. Two kinds of cosmid clones were isolated as potential physical and genetic markers for the pig genome. Anonymous cosmids were obtained by screening a commercial cosmid library and were localized to Chromosomes (Chrs) 1, 2, 6, 7, 8, 10, 11, 12, 13, and 14. Some of these cosmids were found to reveal RFLP type DNA polymorphism. Microsatellite-containing cosmid clones were isolated by screening a pig cosmid library with a (CA)10 probe and were regionally mapped to Chrs 2, 6, 7, 13, and 14. Ten of the 19 chromosomes in the pig were labeled with these probes. Two-color fluorescence in situ hybridization was used to increase the efficiency of the cosmid localizations.

Animals↗

Radiation hybrids for the proximal long arm of the X chromosome and their use in the derivation of an ordered set of cosmid markers from a defined subregion in proximal Xq13.1.

We have defined a radiation hybrid panel for Xq11-q22 characterized with 20 DNA markers and shown how the panel can be used in conjunction with Alu-PCR and a gridded X-specific cosmid library to isolate cosmids from a preselected subregion. We used Alu-PCR products derived from two radiation hybrids, IHB2-B30 and IHB1-A12, sharing a segment in proximal Xq13.1, containing DXS453 to CCG1, as the only human component in common. Used as probes, these Alu-PCR products identified 39 cosmids on the gridded X-cosmid libraries that were positive for both probes. The target specificity of the derived cosmids was very high, 11 of 13 cosmids tested mapped to the region of fragment overlap in the hybrids, as was determined by two translocation breakpoints bordering most of the target interval. Accounting for a redundancy of four in the libraries, the isolated 39 cosmids should correspond to about 10 independent loci derived from the region of fragment overlap defined by these radiation hybrids. In addition, a subset of five radiation hybrids having breakpoints in the target region could be used to further subdivide the 11 cosmids into an ordered set of five submapping intervals of Xq13.1.

Animals↗

Studies on locus expansion, library representation, and chromosome walking using an efficient method to screen cosmid libraries.

We have developed an efficient screening method to search for clones in cosmid libraries prepared from human genomic DNA. Genomic, cDNA, and cosmid probes have been used to isolate homologous cosmids from human chromosomes 7, 10, 16, 17 and X as part of a search for polymorphic nucleotide sequences. This method has been successfully applied to chromosome walking experiments at the interstitial retinol-binding protein locus on chromosome 10, and may be a useful tool for investigating representation of cloned sequences in cosmid libraries. Our library was prepared in the vector c2RB (Bates and Swift, 1983), but the method is applicable to any cosmid cloning system in which the inserted DNA can be separated from the vector by restriction enzyme digestion. A cosmid library containing five human genome equivalents can be rapidly screened using three to four Southern hybridization filters. This results in substantial labor saving, particularly when screening genomes of high complexity with many different probes. Another advantage of the system is that it allows for the long-term storage of the cosmids so that they can be screened whenever necessary. As a consequence, cosmid screening can be made a routine laboratory procedure.

Blotting, Southern↗

Region-specific cosmids and STRPs identified by chromosome microdissection and FISH.

A strategy for identifying short tandem repeat (STR)-containing cosmid clones from a specific chromosomal region is described. The approach is based on the use of uncloned, PCR-amplified DNA derived from chromosome microdissection and pooled groups of STR sequences as hybridization probes to screen a cosmid library. Cosmid clones that display a positive signal common to both hybridizations are then characterized for repeat length polymorphisms. This method has been applied to chromosome bands 17q12-q21, a region that includes a gene (BRCA1) involved in early onset familial breast and ovarian cancer. Of 1536 chromosome 17-specific cosmid clones tested, 38 were identified by the dual screening procedure. Fluorescence in situ hybridization revealed that 19 cosmids originated from the microdissected target region. Thirteen of the 19 cosmids were mapped between markers flanking the BRCA1 region and selected for further characterization. Tetranucleotide repeats were identified in 10 of these 13 cosmids. Primers designed for each marker were tested on a panel of 80 CEPH parents for allele sizes, frequencies, and observed heterozygosities. From these studies six polymorphic and one nonpolymorphic STRs were identified. A similar approach should be applicable for screening whole genomic or chromosome-specific cosmid libraries in efforts to isolate new polymorphic markers from any chromosomal region of interest.

Base Sequence↗

Physical mapping of complex genomes by cosmid multiplex analysis.

A rapid and powerful approach for linking individual clones of a cosmid library and the assembly of a large physical map is presented, which depends on the simultaneous analysis of many cosmid clones for overlapping regions. This method uses cosmid vectors that contain endogenous bacteriophage T3 and T7 promoters to allow for the identification of overlapping clones through the synthesis of end-specific RNA probes. A genomic library is constructed and organized as an ordered matrix such that each clone is assigned an identifying coordinate. DNA from mixtures of cosmid clones is pooled such that each pool contains only one common member with any other pool, RNA probes are prepared from mixtures of cosmid clones, and groups of clones overlapping with the constituents of the mixtures are determined by hybridization. Pooled probes are most simply prepared by grouping clones according to the rows and columns of the library matrix. The pairwise comparison of data generated by the hybridization of mixed probes can be decoded by using simple algorithms that predict the order and linkage of all clones in the collection and organize them into predicted contigs. To demonstrate the feasibility of multiplexed analysis of cosmids, a genomic library was prepared from a mouse-human somatic cell hybrid that contains a portion of the long arm of human chromosome 11. Preparation, arrangement on a matrix, and analysis of pooled cosmid clones from this collection resulted in the detection of 1099 linked pairs of cosmids, which could be assembled into 315 contigs. Thus, with a minimal amount of effort, a substantial portion of this genomic region has been linked in multiple overlapping contigs. This method may have practical applications in the large-scale mapping and sequencing of mammalian genomes.

Animals↗

Chromosomal structure of Rhodobacter capsulatus strain SB1003: cosmid encyclopedia and high-resolution physical and genetic map.

A combination of cosmid genome walking and pulsed-field gel electrophoresis was used to construct a high-resolution physical and genetic map of the 3.8-megabase (Mb) genome of Rhodobacter capsulatus SB1003. The mapping was done by hybridization of pulsed-field gel blots and by grouping and further mapping of the cosmids and bacteriophages from genomic libraries. Cosmid clones formed two uninterrupted and ordered groups, one corresponding to the chromosome of R. capsulatus, the other to its 134-kb plasmid. Cos site end-labeling and partial EcoRV digestion of cosmids were used to construct a high-resolution EcoRV map of the genome. Overlapping of the cosmids was confirmed by the resemblance of the cosmid restriction maps and by direct end-to-end hybridization with SP6- and T7-specific transcripts. Twenty-three previously cloned genes and eight groups of repeated sequences, revealed in this work, were located in the ordered gene library and mapped with an accuracy of 1-10 kb. Blots of a minimal set of 192 cosmids, covering the chromosome and the plasmid with the known map position of each cosmid, give to R. capsulatus the same advantages that the Kohara phage panel gives to E. coli.

Chromosome Mapping↗

Constructing adenoviral vectors by using the circular form of the adenoviral genome cloned in a cosmid and the Cre-loxP recombination system.

Recombinant adenoviral vectors have been generated either by the in vivo homologous recombination method or by the in vitro direct ligation method. However, the efficiency of adenoviral vector construction by these methods is low, because of the large size of the recombinant vectors. To improve the ease of constructing adenoviral vectors, we used the circular form of adenoviral DNA, which can generate infectious viruses with an efficiency comparable to that of virion DNA, after transfection into 293 cells constitutively producing adenovirus E1 protein. We replaced the E1 region of the circular form of adenoviral DNA with a cosmid vector flanked by loxP sites, resulting in a 41-kb cosmid, designated pALC. An expression cassette that bicistronically expresses IL-5 and green fluorescent protein (GFP) was readily inserted between the loxP-flanked cosmid backbone and the adenoviral genome of pALC, using the cosmid vector cloning system. Transfection of the resulting cosmid into 293 cells did not produce any infectious adenoviruses because its size (46 kb) was larger than the packing capacity of the adenoviral particles. However, cotransfection of a Cre-expression plasmid with this cosmid into 293 cells efficiently excised the loxP-flanked cosmid vector backbone, and produced the adenoviral vector expressing IL-5 and GFP. To simplify our method further, we have produced a 293 cell line constitutively expressing Cre recombinase. Transfection of pALC cosmid alone into this cell line efficiently generated adenoviral vector. The adenoviral vector construction method presented here is simple and efficient and should further facilitate the application of recombinant adenoviral vectors for in vivo and in vitro gene transfer.

Adenoviridae↗

Isolation of cosmids and fetal brain cDNAs from the proximal long arm of human chromosome 22.

The proximal portion of human chromosome 22q appears to carry genes implicated in the pathogenesis of various developmental disorders, including the cat eye syndrome (CES) and the DiGeorge syndrome (DGS). A cosmid library was prepared from a radiation hybrid selected for its content in chromosome 22 fragments. A large fraction of cosmids containing human DNA were found to derive from the juxtacentromeric region of chromosome 22, as shown by fluorescence in situ hybridization (FISH) performed using individual cosmids or cosmid pools as probes. Finer mapping was obtained for individual cosmids by hybridization to a somatic cell hybrid mapping panel which splits the long arm of the chromosome into 14 bins numbered 1 to 14 from the centromere to the telomere. Of the 10 cosmids mapped, eight belonged to group 1, the other two to group 14, in agreement with FISH data. Rare endonuclease sites and fragments conserved between species were searched in single cosmids, resulting in the selection of seven cosmid fragments which were used to screen a human fetal brain cDNA library. Three cDNAs were identified, encoded from two chromosome 22 genes which appeared to be novel, as determined from partial end sequence and comparison with the database entries. Fine localization of the 30.9 cDNA indicated that the corresponding gene was located in a segment of proximal 22q overlapping with the critical DGS region.

Animals↗

Isolation of large numbers of chromosome 3-specific cosmids containing clusters of rare restriction-endonuclease sites.

We tested 519 chromosome 3-specific cosmids for the presence of rare restriction-endonuclease sites in a search for cosmids containing HTF islands. We have identified 49 cosmids (9% of those tested) that contain multiple rare restriction-endonuclease sites. The cosmids were digested with several common cutting restriction endonucleases to liberate small fragments which were tested as unique-sequence chromosome 3-specific hybridization probes and for evolutionary sequence conservation. Unique-sequence hybridization probes isolated from the cosmids were hybridized to a somatic cell hybrid deletion mapping panel to subchromosomally localize the cosmids. Fragments from many of these cosmids demonstrated conservation of sequence through evolution, and these fragments hybridize to distinct transcripts. These cosmids should therefore prove a useful resource for the identification of many chromosome 3-specific genes, in addition to having potential use as linking clones for pulsed-field gel mapping studies.

Biological Evolution↗

Double cos site vectors: simplified cosmid cloning.

A new vector for construction of cosmid libraries is described. Cosmid c2XB contains restriction sites for use in the insertion of foreign DNA and two lambda cos sites separated by a blunt-end restriction site. The presence of two cos sites on a single plasmid eliminates the need to prepare two separate cosmid arms, and the internal blunt-end restriction site prevents cosmid concatemerization. Thus, a double restriction-enzyme digestion is sufficient to prepare the vector for subsequent ligation with DNA fragments which are dephosphorylated to prevent their self-ligation. The use of this vector system allows efficient cosmid cloning (1 X 10(5) colonies per micrograms insert DNA) and eliminates background due to vector self-ligation. Furthermore, the procedure is so rapid as to eliminate the need to amplify cosmid libraries for storage and reuse. Also described is a cosmid vector for use in construction of cosmid libraries which are to be introduced into cultured eukaryotic cells. This vector contains the Herpes simplex virus thymidine kinase (HSV tk) gene as a selectable marker and a retroviral long terminal repeat (LTR) region as an enhancer sequence.

Cloning, Molecular↗

Versatile cosmid vectors for the isolation, expression, and rescue of gene sequences: studies with the human alpha-globin gene cluster.

We have developed a series of cosmids that can be used as vectors for genomic recombinant DNA library preparations, as expression vectors in mammalian cells for both transient and stable transformations, and as shuttle vectors between bacteria and mammalian cells. These cosmids were constructed by inserting one of the SV2-derived selectable gene markers--SV2-gpt, SV2-DHFR, and SV2-neo--in cosmid pJB8. High efficiency of genomic cloning was obtained with these cosmids and the size of the inserts was 30-42 kilobases. We isolated recombinant cosmids containing the human alpha-globin gene cluster from these genomic libraries. The simian virus 40 DNA in these selectable gene markers provides the origin of replication and enhancer sequences necessary for replication in permissive cells such as COS 7 cells and thereby allows transient expression of alpha-globin genes in these cells. These cosmids and their recombinants could also be stably transformed into mammalian cells by using the respective selection systems. Both of the adult alpha-globin genes were more actively expressed than the embryonic zeta-globin genes in these transformed cell lines. Because of the presence of the cohesive ends of the Charon 4A phage in the cosmids, the transforming DNA sequences could readily be rescued from these stably transformed cells into bacteria by in vitro packaging of total cellular DNA. Thus, these cosmid vectors are potentially useful for direct isolation of structural genes.

Base Sequence↗

Vertical integration of cosmid and YAC resources for interval mapping on the X-chromosome.

The vertical integration of cosmid and yeast artificial chromosome (YAC) resources is of particular importance in the development of high-resolution maps of selected regions of the human genome. A resource of approximately 95,000 cosmids constructed using DNA from primary fibroblasts of karyotype 49,XXXXX was validated by detailed characterization of a 200-kb cosmid contig spanning exons 8-20 of the dystrophin gene. This resource was used to construct contigs in 0.65 Mb of Xq26 by hybridization of gel-purified YAC DNA to high-density gridded arrays of the cosmid library; positive cosmids were overlapped by finger-printing. Contigs were oriented and ordered relative to existing YACs in the region using cross-hybridization. The overlaps between a representative set of cosmids define 54 intervals of 5-20 kb and were used to construct a high-resolution cosmid interval map of the region, locating markers, dinucleotide repeats, and candidate CpG islands. This approach can be applied rapidly to large regions of the genome and without recourse to subcloning of individual YACs.

Aneuploidy↗

High-resolution YAC-cosmid-STS map of human chromosome 13.

We have assembled a high-resolution physical map of human chromosome 13 DNA (approximately 114 Mb) from hybridization, PCR, and FISH mapping data using a specifically designed set of computer programs. Although the mapping of 13p is limited, 13q (approximately 98 Mb) is covered by an almost continuous contig of 736 YACs aligned to 597 contigs of cosmids. Of a total of 10,789 cosmids initially selected from a chromosome 13-specific cosmid library (16,896 colonies) using inter-Alu PCR probes from the YACs and probes for markers mapped to chromosome 13, 511 were assembled in contigs that were established from cross-hybridization relationships between the cosmids. The 13q YAC-cosmid map was annotated with 655 sequence tagged sites (STSs) with an average spacing of 1 STS per 150 kb. This set of STSs, each identified by a D number and cytogenetic location, includes database markers (198), expressed sequence tags (93), and STSs generated by sequencing of the ends of cosmid inserts (364). Additional annotation has been provided by positioning 197 cosmids mapped by FISH on 13q. The final (comprehensive) map, a list of STS primers, and raw data used in map assembly are available at our Web site (genome1.ccc.columbia.edu/ approximately genome/) and can serve as a resource to facilitate accurate localization of additional markers, provide substrates for sequencing, and assist in the discovery of chromosome 13 genes associated with hereditary diseases.

Animals↗