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020 _a9781592595419
024 7 _a10.1385/0896033139
_2doi
040 _aES-MaUEC
_bspa
_cES-MaUEC
_dES-MaUEC
050 4 _aQH442.2
_b1996 EB
100 1 _aMarkie, David
_eautor
_4aut
_4http://id.loc.gov/vocabulary/relators/aut
_9689798
245 1 0 _aYAC Protocols
_cby David Markie
250 _a1st edition 1996
264 1 _aTotowa, NJ
_bHumana Press
_c1996
300 _a1 recurso en línea (XVIII, 372 páginas)
336 _atexto
_btxt
_2rdacontent
337 _aelectrónico
_bc
_2rdamedia
338 _arecurso electrónico
_bcr
_2rdacarrier
347 _aarchivo de texto
_bPDF
490 0 _aMethods in Molecular Biology
_x1940-6029
_v54
505 0 _aGeneration of Large Insert YAC Libraries -- YAC Library Storage and Transport -- YAC Library Screening I -- YAC Library Screening II -- Cloning of Human Telomeres in Saccharomyces cerevisiae -- Purification of YAC-Containing Total Yeast DNA -- Restriction Analysis of YACs -- RARE-Cleavage Analysis of YACs -- YAC Localization by Fluorescence In Situ Hybridization -- Alu-PCR Fingerprinting of YACs -- Detection of Chimerism in YAC Clones -- Amplification with Arbitrary Primers -- End Rescue from YACs Using the Vectorette -- Isolation of YAC Ends by Plasmid Rescue -- End-Rescue of YAC Clone Inserts by Inverse PCR -- Covering YAC-Cloned DNA with Phages and Cosmids -- Fragmentation and Integrative Modification of YACs -- Targeting Mutations to YACs by Homologous Recombination -- Reconstruction of Large Genomic Segments of DNA by Meiotic Recombination Between YACs -- Genomic Reconstruction by Mitotic Recombination of YACs -- Amplification of the Copy Number of YACs -- Transfer of YAC Clones to New Yeast Hosts -- Use of ACEDB as a Database for YAC Library Data Management -- YAC Transfer into Mammalian Cells by Cell Fusion -- YAC Transfer by Microinjection -- Transfection of Mammalian Cells via Lipofection -- The Isolation of cDNAs by Hybridization of YACs to cDNA Libraries -- cDNA Selection with YACs -- Markers, Selection, and Media in YAC Cloning.
520 _aYeast artificial chromosomes (YACs) have their origins in the molecular genetic analysis of the yeast Saccharomyces cerevisiae. The construction of self-maintaining genetic elements from isolated frag­ ments of the yeast genome defined DNA sequences necessary for chro­ mosome function has provided telomeres, centromeres, and autonomous replicating sequences. In 1987 a reversal of the strategy put these short functional DNA sequences to work in cloning vectors, producing "yeast" chromosomes largely composed of foreign DNA. Initially the insert size of clones averaged several hundred kilobasepairs, a remarkable achieve­ ment. Rapid progress with cloning technology has since enabled the construction of YAC libraries with average insert sizes of around 1 Mb, with many clones exceeding that size, and YACs remain the largest capacity microbiological cloning system available. They effectively bridge the size gap between bacterial cloning (plasmids, cosmids, PI, and bacterial artificial chromosomes) and what could be considered mammalian cloning systems (somatic cell hybrids and irradiati- fusion gene transfer hybrids). YACs also brought with them a conceptual revolution in the man­ agement of clone libraries. The large carrying capacity of YACs, with subsequent reduction in the total number required, meant that it was conceivable to store clones individually rather than as pools that require constant re-plating. Each clone in the library has a unique address and, with successive screenings, information accumulates about individual clones.
988 _aSpringer_Protocols_1996
650 7 _2embne
_9159969
_aClonación molecular
776 0 8 _iPrinted edition:
_z9780896033139
776 0 8 _iPrinted edition:
_z9781489940469
856 4 0 _uhttps://go.openathens.net/redirector/universidadeuropea.es?url=https://doi.org/10.1385/0896033139
_zAcceso a este recurso digital (usuarios Universidad Europea de Madrid)
942 _2lcc
_cLE
998 _b01/2024
_dz
_eb
_zSI