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1.
Cell Mol Life Sci ; 80(5): 121, 2023 Apr 12.
Artigo em Inglês | MEDLINE | ID: mdl-37043028

RESUMO

Although they are organelles without a limiting membrane, nucleoli have an exclusive structure, built upon the rDNA-rich acrocentric short arms of five human chromosomes (nucleolar organizer regions or NORs). This has raised the question: what are the structural features of a chromosome required for its inclusion in a nucleolus? Previous work has suggested that sequences adjacent to the tandemly repeated rDNA repeat units (DJ, distal junction sequence) may be involved, and we have extended such studies by addressing several issues related to the requirements for the association of NORs with nucleoli. We exploited both a set of somatic cell hybrids containing individual human acrocentric chromosomes and a set of Human Artificial Chromosomes (HACs) carrying different parts of a NOR, including an rDNA unit or DJ or PJ (proximal junction) sequence. Association of NORs with nucleoli was increased when constituent rDNA was transcribed and may be also affected by the status of heterochromatin blocks formed next to the rDNA arrays. Furthermore, our data suggest that a relatively small size DJ region, highly conserved in evolution, is also involved, along with the rDNA repeats, in the localization of p-arms of acrocentric chromosomes in nucleoli. Thus, we infer a cooperative action of rDNA sequence-stimulated by its activity-and sequences distal to rDNA contributing to incorporation into nucleoli. Analysis of NOR sequences also identified LncRNA_038958 in the DJ, a candidate transcript with the region of the suggested promoter that is located close to the DJ/rDNA boundary and contains CTCF binding sites. This LncRNA may affect RNA Polymerase I and/or nucleolar activity. Our findings provide the basis for future studies to determine which RNAs and proteins interact critically with NOR sequences to organize the higher-order structure of nucleoli and their function in normal cells and pathological states.


Assuntos
Região Organizadora do Nucléolo , RNA Longo não Codificante , Humanos , Região Organizadora do Nucléolo/genética , Região Organizadora do Nucléolo/metabolismo , DNA Ribossômico/genética , RNA Longo não Codificante/metabolismo , Nucléolo Celular/genética , Nucléolo Celular/metabolismo , Cromossomos Humanos/metabolismo
2.
Sci Rep ; 11(1): 2997, 2021 02 04.
Artigo em Inglês | MEDLINE | ID: mdl-33542373

RESUMO

The rDNA clusters and flanking sequences on human chromosomes 13, 14, 15, 21 and 22 represent large gaps in the current genomic assembly. The organization and the degree of divergence of the human rDNA units within an individual nucleolar organizer region (NOR) are only partially known. To address this lacuna, we previously applied transformation-associated recombination (TAR) cloning to isolate individual rDNA units from chromosome 21. That approach revealed an unexpectedly high level of heterogeneity in human rDNA, raising the possibility of corresponding variations in ribosome dynamics. We have now applied the same strategy to analyze an entire rDNA array end-to-end from a copy of chromosome 22. Sequencing of TAR isolates provided the entire NOR sequence, including proximal and distal junctions that may be involved in nucleolar function. Comparison of the newly sequenced rDNAs to reference sequence for chromosomes 22 and 21 revealed variants that are shared in human rDNA in individuals from different ethnic groups, many of them at high frequency. Analysis infers comparable intra- and inter-individual divergence of rDNA units on the same and different chromosomes, supporting the concerted evolution of rDNA units. The results provide a route to investigate further the role of rDNA variation in nucleolar formation and in the empirical associations of nucleoli with pathology.


Assuntos
Cromossomos Humanos Par 22/genética , DNA Ribossômico/genética , Genoma Humano/genética , Região Organizadora do Nucléolo/genética , Nucléolo Celular/genética , Clonagem Molecular , Heterogeneidade Genética , Genômica , Humanos , Anotação de Sequência Molecular , Ribossomos/genética
3.
Nat Protoc ; 15(3): 734-749, 2020 03.
Artigo em Inglês | MEDLINE | ID: mdl-32005981

RESUMO

Here, we describe an extension of our original transformation-associated recombination (TAR) cloning protocol, enabling selective isolation of DNA segments from microbial genomes. The technique is based on the previously described TAR cloning procedure developed for isolation of a desirable region from mammalian genomes that are enriched in autonomously replicating sequence (ARS)-like sequences, elements that function as the origin of replication in yeast. Such sequences are not common in microbial genomes. In this Protocol Extension, an ARS is inserted into the TAR vector along with a counter-selectable marker, allowing for selection of cloning events against vector circularization. Pre-treatment of microbial DNA with CRISPR-Cas9 to generate double-stranded breaks near the targeted sequences greatly increases the yield of region-positive colonies. In comparison to other available methods, this Protocol Extension allows selective isolation of any region from microbial genomes as well as from environmental DNA samples. The entire procedure can be completed in 10 d.


Assuntos
Clonagem Molecular/métodos , DNA Fúngico/genética , Genoma Fúngico , Saccharomyces cerevisiae/genética , Sistemas CRISPR-Cas , Replicação do DNA , Vetores Genéticos , Plasmídeos , Origem de Replicação , Transformação Genética
4.
Nucleic Acids Res ; 46(13): 6712-6725, 2018 07 27.
Artigo em Inglês | MEDLINE | ID: mdl-29788454

RESUMO

Despite the key role of the human ribosome in protein biosynthesis, little is known about the extent of sequence variation in ribosomal DNA (rDNA) or its pre-rRNA and rRNA products. We recovered ribosomal DNA segments from a single human chromosome 21 using transformation-associated recombination (TAR) cloning in yeast. Accurate long-read sequencing of 13 isolates covering ∼0.82 Mb of the chromosome 21 rDNA complement revealed substantial variation among tandem repeat rDNA copies, several palindromic structures and potential errors in the previous reference sequence. These clones revealed 101 variant positions in the 45S transcription unit and 235 in the intergenic spacer sequence. Approximately 60% of the 45S variants were confirmed in independent whole-genome or RNA-seq data, with 47 of these further observed in mature 18S/28S rRNA sequences. TAR cloning and long-read sequencing enabled the accurate reconstruction of multiple rDNA units and a new, high-quality 44 838 bp rDNA reference sequence, which we have annotated with variants detected from chromosome 21 of a single individual. The large number of variants observed reveal heterogeneity in human rDNA, opening up the possibility of corresponding variations in ribosome dynamics.


Assuntos
Cromossomos Humanos Par 21 , DNA Ribossômico/química , Genes de RNAr , Variação Genética , Animais , Linhagem Celular , Clonagem Molecular , DNA Ribossômico/isolamento & purificação , DNA Espaçador Ribossômico/química , Humanos , Camundongos , Conformação de Ácido Nucleico , Região Organizadora do Nucléolo/química , RNA Ribossômico/química , RNA Ribossômico/metabolismo , Análise de Sequência de DNA
5.
Oncotarget ; 9(20): 15275-15291, 2018 Mar 16.
Artigo em Inglês | MEDLINE | ID: mdl-29632643

RESUMO

Tandem segmental duplications (SDs) greater than 10 kb are widespread in complex genomes. They provide material for gene divergence and evolutionary adaptation, while formation of specific de novo SDs is a hallmark of cancer and some human diseases. Most SDs map to distinct genomic regions termed 'duplication blocks'. SDs organization within these blocks is often poorly characterized as they are mosaics of ancestral duplicons juxtaposed with younger duplicons arising from more recent duplication events. Structural and functional analysis of SDs is further hampered as long repetitive DNA structures are underrepresented in existing BAC and YAC libraries. We applied Transformation-Associated Recombination (TAR) cloning, a versatile technique for large DNA manipulation, to selectively isolate the coronary artery disease (CAD) interval sequence within the 9p21.3 chromosome locus from a patient with coronary artery disease and normal individuals. Four tandem head-to-tail duplicons, each ∼50 kb long, were recovered in the patient but not in normal individuals. Sequence analysis revealed that the repeats varied by 10-15 SNPs between each other and by 82 SNPs between the human genome sequence (version hg19). SNPs polymorphism within the junctions between repeats allowed two junction types to be distinguished, Type 1 and Type 2, which were found at a 2:1 ratio. The junction sequences contained an Alu element, a sequence previously shown to play a role in duplication. Knowledge of structural variation in the CAD interval from more patients could help link this locus to cardiovascular diseases susceptibility, and maybe relevant to other cases of regional amplification, including cancer.

6.
Proc Natl Acad Sci U S A ; 114(42): E8885-E8894, 2017 10 17.
Artigo em Inglês | MEDLINE | ID: mdl-28928148

RESUMO

Here, we present a transformational approach to genome engineering of herpes simplex virus type 1 (HSV-1), which has a large DNA genome, using synthetic genomics tools. We believe this method will enable more rapid and complex modifications of HSV-1 and other large DNA viruses than previous technologies, facilitating many useful applications. Yeast transformation-associated recombination was used to clone 11 fragments comprising the HSV-1 strain KOS 152 kb genome. Using overlapping sequences between the adjacent pieces, we assembled the fragments into a complete virus genome in yeast, transferred it into an Escherichia coli host, and reconstituted infectious virus following transfection into mammalian cells. The virus derived from this yeast-assembled genome, KOSYA, replicated with kinetics similar to wild-type virus. We demonstrated the utility of this modular assembly technology by making numerous modifications to a single gene, making changes to two genes at the same time and, finally, generating individual and combinatorial deletions to a set of five conserved genes that encode virion structural proteins. While the ability to perform genome-wide editing through assembly methods in large DNA virus genomes raises dual-use concerns, we believe the incremental risks are outweighed by potential benefits. These include enhanced functional studies, generation of oncolytic virus vectors, development of delivery platforms of genes for vaccines or therapy, as well as more rapid development of countermeasures against potential biothreats.


Assuntos
Genômica/métodos , Herpesvirus Humano 1/genética , Herpesvirus Humano 1/patogenicidade , Animais , Proteínas de Bactérias/genética , Chlorocebus aethiops , Cromossomos Artificiais Bacterianos , Escherichia coli/genética , Genoma Viral , Proteínas Luminescentes/genética , Proteínas Recombinantes de Fusão/genética , Recombinação Genética , Saccharomyces cerevisiae/genética , Células Vero , Montagem de Vírus/genética
7.
Sci Rep ; 6: 30714, 2016 08 04.
Artigo em Inglês | MEDLINE | ID: mdl-27489041

RESUMO

Bacteria are indispensable for the study of fundamental molecular biology processes due to their relatively simple gene and genome architecture. The ability to engineer bacterial chromosomes is quintessential for understanding gene functions. Here we demonstrate the engineering of the small-ribosomal subunit (16S) RNA of Mycoplasma mycoides, by combining the CRISPR/Cas9 system and the yeast recombination machinery. We cloned the entire genome of M. mycoides in yeast and used constitutively expressed Cas9 together with in vitro transcribed guide-RNAs to introduce engineered 16S rRNA genes. By testing the function of the engineered 16S rRNA genes through genome transplantation, we observed surprising resilience of this gene to addition of genetic elements or helix substitutions with phylogenetically-distant bacteria. While this system could be further used to study the function of the 16S rRNA, one could envision the "simple" M. mycoides genome being used in this setting to study other genetic structures and functions to answer fundamental questions of life.


Assuntos
Engenharia Genética/métodos , Mycoplasma mycoides/genética , RNA Ribossômico 16S/genética , Sistemas CRISPR-Cas , Clonagem Molecular , Genoma Bacteriano , Filogenia , RNA Bacteriano/genética , Saccharomyces cerevisiae/genética
8.
Science ; 351(6280): aad6253, 2016 Mar 25.
Artigo em Inglês | MEDLINE | ID: mdl-27013737

RESUMO

We used whole-genome design and complete chemical synthesis to minimize the 1079-kilobase pair synthetic genome of Mycoplasma mycoides JCVI-syn1.0. An initial design, based on collective knowledge of molecular biology combined with limited transposon mutagenesis data, failed to produce a viable cell. Improved transposon mutagenesis methods revealed a class of quasi-essential genes that are needed for robust growth, explaining the failure of our initial design. Three cycles of design, synthesis, and testing, with retention of quasi-essential genes, produced JCVI-syn3.0 (531 kilobase pairs, 473 genes), which has a genome smaller than that of any autonomously replicating cell found in nature. JCVI-syn3.0 retains almost all genes involved in the synthesis and processing of macromolecules. Unexpectedly, it also contains 149 genes with unknown biological functions. JCVI-syn3.0 is a versatile platform for investigating the core functions of life and for exploring whole-genome design.


Assuntos
DNA Bacteriano/síntese química , Genes Sintéticos/fisiologia , Genoma Bacteriano , Mycoplasma mycoides/genética , Células Artificiais , Códon/genética , Elementos de DNA Transponíveis , DNA Bacteriano/genética , Genes Essenciais , Genes Sintéticos/genética , Mutagênese , Proteínas/genética , RNA/genética , Biologia Sintética
9.
Biol Proced Online ; 17: 6, 2015.
Artigo em Inglês | MEDLINE | ID: mdl-25774095

RESUMO

BACKGROUND: We have previously established technologies enabling us to engineer the Mycoplasma mycoides genome while cloned in the yeast Saccharomyces cerevisiae, followed by genome transplantation into Mycoplasma capricolum recipient cells to produce M. mycoides with an altered genome. To expand the toolbox for genomic modifications, we designed a strategy based on the Cre/loxP-based Recombinase-Mediated Cassette Exchange (RMCE) system for functional genomics analyses. RESULTS: In this paper, we demonstrated replacement of an approximately 100 kb DNA segment of the M. mycoides genome with a synthetic DNA counterpart in two orientations. The function of the altered genomes was then validated by genome transplantation and phenotypic characterization of the transplanted cells. CONCLUSION: This method offers an easy and efficient way to manipulate the M. mycoides genome and will be a valuable tool for functional genomic studies, such as genome organization and minimization.

10.
Genome Res ; 25(3): 435-44, 2015 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-25654978

RESUMO

The availability of genetically tractable organisms with simple genomes is critical for the rapid, systems-level understanding of basic biological processes. Mycoplasma bacteria, with the smallest known genomes among free-living cellular organisms, are ideal models for this purpose, but the natural versions of these cells have genome complexities still too great to offer a comprehensive view of a fundamental life form. Here we describe an efficient method for reducing genomes from these organisms by identifying individually deletable regions using transposon mutagenesis and progressively clustering deleted genomic segments using meiotic recombination between the bacterial genomes harbored in yeast. Mycoplasmal genomes subjected to this process and transplanted into recipient cells yielded two mycoplasma strains. The first simultaneously lacked eight singly deletable regions of the genome, representing a total of 91 genes and ∼ 10% of the original genome. The second strain lacked seven of the eight regions, representing 84 genes. Growth assay data revealed an absence of genetic interactions among the 91 genes under tested conditions. Despite predicted effects of the deletions on sugar metabolism and the proteome, growth rates were unaffected by the gene deletions in the seven-deletion strain. These results support the feasibility of using single-gene disruption data to design and construct viable genomes lacking multiple genes, paving the way toward genome minimization. The progressive clustering method is expected to be effective for the reorganization of any mega-sized DNA molecules cloned in yeast, facilitating the construction of designer genomes in microbes as well as genomic fragments for genetic engineering of higher eukaryotes.


Assuntos
Bactérias/genética , Transferência Genética Horizontal , Genoma Bacteriano , Família Multigênica , Deleção de Sequência , Leveduras/genética , Elementos de DNA Transponíveis
11.
BMC Genomics ; 15: 1180, 2014 Dec 24.
Artigo em Inglês | MEDLINE | ID: mdl-25539750

RESUMO

BACKGROUND: With the development of several new technologies using synthetic biology, it is possible to engineer genetically intractable organisms including Mycoplasma mycoides subspecies capri (Mmc), by cloning the intact bacterial genome in yeast, using the host yeast's genetic tools to modify the cloned genome, and subsequently transplanting the modified genome into a recipient cell to obtain mutant cells encoded by the modified genome. The recently described tandem repeat coupled with endonuclease cleavage (TREC) method has been successfully used to generate seamless deletions and point mutations in the mycoplasma genome using the yeast DNA repair machinery. But, attempts to knock-in genes in some cases have encountered a high background of transformation due to maintenance of unwanted circularization of the transforming DNA, which contains possible autonomously replicating sequence (ARS) activity. To overcome this issue, we incorporated a split marker system into the TREC method, enabling seamless gene knock-in with high efficiency. The modified method is called TREC-assisted gene knock-in (TREC-IN). Since a gene to be knocked-in is delivered by a truncated non-functional marker, the background caused by an incomplete integration is essentially eliminated. RESULTS: In this paper, we demonstrate applications of the TREC-IN method in gene complementation and genome minimization studies in Mmc. In the first example, the Mmc dnaA gene was seamlessly replaced by an orthologous gene, which shares a high degree of identity at the nucleotide level with the original Mmc gene, with high efficiency and low background. In the minimization example, we replaced an essential gene back into the genome that was present in the middle of a cluster of non-essential genes, while deleting the non-essential gene cluster, again with low backgrounds of transformation and high efficiency. CONCLUSION: Although we have demonstrated the feasibility of TREC-IN in gene complementation and genome minimization studies in Mmc, the applicability of TREC-IN ranges widely. This method proves to be a valuable genetic tool that can be extended for genomic engineering in other genetically intractable organisms, where it may be implemented in elucidating specific metabolic pathways and in rationale vaccine design.


Assuntos
Clonagem Molecular , Técnicas de Introdução de Genes , Genoma Fúngico , Genômica , Leveduras/genética , Clonagem Molecular/métodos , Ordem dos Genes , Genes Fúngicos , Vetores Genéticos/genética , Genômica/métodos , Mycoplasma mycoides/genética , Saccharomyces cerevisiae/genética
12.
J Biol Eng ; 7(1): 30, 2013 Dec 10.
Artigo em Inglês | MEDLINE | ID: mdl-24325901

RESUMO

BACKGROUND: Synthetic genomic approaches offer unique opportunities to use powerful yeast and Escherichia coli genetic systems to assemble and modify chromosome-sized molecules before returning the modified DNA to the target host. For example, the entire 1 Mb Mycoplasma mycoides chromosome can be stably maintained and manipulated in yeast before being transplanted back into recipient cells. We have previously demonstrated that cloning in yeast of large (> ~ 150 kb), high G + C (55%) prokaryotic DNA fragments was improved by addition of yeast replication origins every ~100 kb. Conversely, low G + C DNA is stable (up to at least 1.8 Mb) without adding supplemental yeast origins. It has not been previously tested whether addition of yeast replication origins similarly improves the yeast-based cloning of large (>150 kb) eukaryotic DNA with moderate G + C content. The model diatom Phaeodactylum tricornutum has an average G + C content of 48% and a 27.4 Mb genome sequence that has been assembled into chromosome-sized scaffolds making it an ideal test case for assembly and maintenance of eukaryotic chromosomes in yeast. RESULTS: We present a modified chromosome assembly technique in which eukaryotic chromosomes as large as ~500 kb can be assembled from cloned ~100 kb fragments. We used this technique to clone fragments spanning P. tricornutum chromosomes 25 and 26 and to assemble these fragments into single, chromosome-sized molecules. We found that addition of yeast replication origins improved the cloning, assembly, and maintenance of the large chromosomes in yeast. Furthermore, purification of the fragments to be assembled by electroelution greatly increased assembly efficiency. CONCLUSIONS: Entire eukaryotic chromosomes can be successfully cloned, maintained, and manipulated in yeast. These results highlight the improvement in assembly and maintenance afforded by including yeast replication origins in eukaryotic DNA with moderate G + C content (48%). They also highlight the increased efficiency of assembly that can be achieved by purifying fragments before assembly.

13.
PLoS Genet ; 9(9): e1003736, 2013.
Artigo em Inglês | MEDLINE | ID: mdl-24039593

RESUMO

Genetic information should be accurately transmitted from cell to cell; conversely, the adaptation in evolution and disease is fueled by mutations. In the case of cancer development, multiple genetic changes happen in somatic diploid cells. Most classic studies of the molecular mechanisms of mutagenesis have been performed in haploids. We demonstrate that the parameters of the mutation process are different in diploid cell populations. The genomes of drug-resistant mutants induced in yeast diploids by base analog 6-hydroxylaminopurine (HAP) or AID/APOBEC cytosine deaminase PmCDA1 from lamprey carried a stunning load of thousands of unselected mutations. Haploid mutants contained almost an order of magnitude fewer mutations. To explain this, we propose that the distribution of induced mutation rates in the cell population is uneven. The mutants in diploids with coincidental mutations in the two copies of the reporter gene arise from a fraction of cells that are transiently hypersensitive to the mutagenic action of a given mutagen. The progeny of such cells were never recovered in haploids due to the lethality caused by the inactivation of single-copy essential genes in cells with too many induced mutations. In diploid cells, the progeny of hypersensitive cells survived, but their genomes were saturated by heterozygous mutations. The reason for the hypermutability of cells could be transient faults of the mutation prevention pathways, like sanitization of nucleotide pools for HAP or an elevated expression of the PmCDA1 gene or the temporary inability of the destruction of the deaminase. The hypothesis on spikes of mutability may explain the sudden acquisition of multiple mutational changes during evolution and carcinogenesis.


Assuntos
Citosina Desaminase/genética , Diploide , Haploidia , Taxa de Mutação , Desaminase APOBEC-1 , Adenina/análogos & derivados , Adenina/farmacologia , Animais , Citidina Desaminase/genética , Citidina Desaminase/metabolismo , Genoma Fúngico/efeitos dos fármacos , Humanos , Lampreias/metabolismo , Mutagênese/efeitos dos fármacos , Mutação/genética , Saccharomyces cerevisiae/efeitos dos fármacos
14.
EMBO J ; 31(10): 2391-402, 2012 May 16.
Artigo em Inglês | MEDLINE | ID: mdl-22473132

RESUMO

The kinetochore is responsible for accurate chromosome segregation. However, the mechanism by which kinetochores assemble and are maintained remains unclear. Here we report that de novo CENP-A assembly and kinetochore formation on human centromeric alphoid DNA arrays is regulated by a histone H3K9 acetyl/methyl balance. Tethering of histone acetyltransferases (HATs) to alphoid DNA arrays breaks a cell type-specific barrier for de novo stable CENP-A assembly and induces assembly of other kinetochore proteins at the ectopic alphoid site. Similar results are obtained following tethering of CENP-A deposition factors hMis18α or HJURP. HAT tethering bypasses the need for hMis18α, but HJURP is still required for de novo kinetochore assembly. In contrast, H3K9 methylation following tethering of H3K9 tri-methylase (Suv39h1) to the array prevents de novo CENP-A assembly and kinetochore formation. CENP-A arrays assembled de novo by this mechanism can form human artificial chromosomes (HACs) that are propagated indefinitely in human cells.


Assuntos
Autoantígenos/metabolismo , Proteínas Cromossômicas não Histona/metabolismo , Histonas/metabolismo , Multimerização Proteica , Processamento de Proteína Pós-Traducional , Acetilação , Proteína Centromérica A , DNA/metabolismo , Humanos , Cinetocoros/metabolismo , Metilação
15.
ACS Synth Biol ; 1(7): 267-73, 2012 Jul 20.
Artigo em Inglês | MEDLINE | ID: mdl-23651249

RESUMO

The ability to assemble large pieces of prokaryotic DNA by yeast recombination has great application in synthetic biology, but cloning large pieces of high G+C prokaryotic DNA in yeast can be challenging. Additional considerations in cloning large pieces of high G+C DNA in yeast may be related to toxic genes, to the size of the DNA, or to the absence of yeast origins of replication within the sequence. As an example of our ability to clone high G+C DNA in yeast, we chose to work with Synechococcus elongatus PCC 7942, which has an average G+C content of 55%. We determined that no regions of the chromosome are toxic to yeast and that S. elongatus DNA fragments over ~200 kb are not stably maintained. DNA constructs with a total size under 200 kb could be readily assembled, even with 62 kb of overlapping sequence between pieces. Addition of yeast origins of replication throughout allowed us to increase the total size of DNA that could be assembled to at least 454 kb. Thus, cloning strategies utilizing yeast recombination with large, high G+C prokaryotic sequences should include yeast origins of replication as a part of the design process.


Assuntos
DNA Bacteriano/química , DNA Bacteriano/genética , Composição de Bases , Cromossomos Artificiais de Levedura/química , Cromossomos Artificiais de Levedura/genética , Clonagem Molecular , DNA Recombinante/química , DNA Recombinante/genética , Saccharomyces cerevisiae/genética , Saccharomyces cerevisiae/metabolismo , Synechococcus/genética , Synechococcus/metabolismo , Biologia Sintética
16.
Biol Proced Online ; 13(1): 8, 2011 Oct 07.
Artigo em Inglês | MEDLINE | ID: mdl-21982381

RESUMO

We describe here a method to rapidly convert any desirable DNA fragment, as small as 100 bp, into long tandem DNA arrays up to 140 kb in size that are inserted into a microbe vector. This method includes rolling-circle phi29 amplification (RCA) of the sequence in vitro and assembly of the RCA products in vivo by homologous recombination in the yeast Saccharomyces cerevisiae. The method was successfully used for a functional analysis of centromeric and pericentromeric repeats and construction of new vehicles for gene delivery to mammalian cells. The method may have general application in elucidating the role of tandem repeats in chromosome organization and dynamics. Each cycle of the protocol takes ~ two weeks to complete.

17.
Nat Protoc ; 6(1): 89-96, 2011 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-21212778

RESUMO

Circular yeast artificial chromosomes (YACs) provide significant advantages for cloning and manipulating large segments of genomic DNA in Saccharomyces cerevisiae. However, it has been difficult to exploit these advantages, because circular YACs are difficult to isolate and purify. Here we describe a method for purification of large circular YACs that is more reliable compared with previously described protocols. This method has been used to purify YACs up to 600 kb in size. The purified YAC DNA is suitable for restriction enzyme digestion, DNA sequencing and functional studies. For example, YACs carrying full-size genes can be purified from yeast and used for transfection into mammalian cells or for the construction of a synthetic genome that can be used to produce a synthetic cell. This method for isolating high-quality YAC DNA in microgram quantities should be valuable for functional and synthetic genomic studies. The entire protocol takes ∼3 d to complete.


Assuntos
Cromossomos Artificiais de Levedura/química , Genômica/métodos , Saccharomyces cerevisiae/genética , Técnicas de Cultura de Células , Clonagem Molecular/métodos , DNA Fúngico/isolamento & purificação
18.
Science ; 329(5987): 52-6, 2010 Jul 02.
Artigo em Inglês | MEDLINE | ID: mdl-20488990

RESUMO

We report the design, synthesis, and assembly of the 1.08-mega-base pair Mycoplasma mycoides JCVI-syn1.0 genome starting from digitized genome sequence information and its transplantation into a M. capricolum recipient cell to create new M. mycoides cells that are controlled only by the synthetic chromosome. The only DNA in the cells is the designed synthetic DNA sequence, including "watermark" sequences and other designed gene deletions and polymorphisms, and mutations acquired during the building process. The new cells have expected phenotypic properties and are capable of continuous self-replication.


Assuntos
Bioengenharia , Engenharia Genética , Genoma Bacteriano , Mycoplasma capricolum/genética , Mycoplasma mycoides/genética , Proteínas de Bactérias/análise , Sequência de Bases , Clonagem Molecular , DNA Bacteriano/síntese química , DNA Bacteriano/genética , Escherichia coli/genética , Deleção de Genes , Genes Bacterianos , Dados de Sequência Molecular , Mycoplasma mycoides/crescimento & desenvolvimento , Mycoplasma mycoides/fisiologia , Mycoplasma mycoides/ultraestrutura , Fenótipo , Plasmídeos , Reação em Cadeia da Polimerase , Polimorfismo Genético , Saccharomyces cerevisiae/genética , Transformação Bacteriana
19.
Nucleic Acids Res ; 38(8): 2570-6, 2010 May.
Artigo em Inglês | MEDLINE | ID: mdl-20228123

RESUMO

The complete synthetic Mycoplasma genitalium genome ( approximately 583 kb) has been assembled and cloned as a circular plasmid in the yeast Saccharomyces cerevisiae. Attempts to engineer the cloned genome by standard genetic methods involving the URA3/5-fluoroorotic acid (5-FOA) counter-selection have shown a high background of 5-FOA resistant clones derived from spontaneous deletions of the bacterial genome maintained in yeast. Here, we report a method that can seamlessly modify the bacterial genome in yeast with high efficiency. This method requires two sequential homologous recombination events. First, the target region is replaced with a mutagenesis cassette that consists of a knock-out CORE (an18-bp I-SceI recognition site, the SCEI gene under the control of the GAL1 promoter, and the URA3 marker) and a DNA fragment homologous to the sequence upstream of the target site. The replacement generates tandem repeat sequences flanking the CORE. Second, galactose induces the expression of I-SceI, which generates a double-strand break (DSB) at the recognition site. This DSB promotes intra-molecular homologous recombination between the repeat sequences, and leads to an excision of the CORE. As a result, a seamless modification is generated. This method can be adapted for a variety of genomic modifications and may provide an important tool to modify and design natural or synthetic genomes propagated in yeast.


Assuntos
Engenharia Genética/métodos , Genoma Bacteriano , Mycoplasma genitalium/genética , Saccharomyces cerevisiae/genética , Sequências de Repetição em Tandem , Clonagem Molecular , Desoxirribonucleases de Sítio Específico do Tipo II , Recombinação Genética , Proteínas de Saccharomyces cerevisiae , Deleção de Sequência
20.
Nucleic Acids Res ; 38(8): 2558-69, 2010 May.
Artigo em Inglês | MEDLINE | ID: mdl-20211840

RESUMO

Most microbes have not been cultured, and many of those that are cultivatable are difficult, dangerous or expensive to propagate or are genetically intractable. Routine cloning of large genome fractions or whole genomes from these organisms would significantly enhance their discovery and genetic and functional characterization. Here we report the cloning of whole bacterial genomes in the yeast Saccharomyces cerevisiae as single-DNA molecules. We cloned the genomes of Mycoplasma genitalium (0.6 Mb), M. pneumoniae (0.8 Mb) and M. mycoides subspecies capri (1.1 Mb) as yeast circular centromeric plasmids. These genomes appear to be stably maintained in a host that has efficient, well-established methods for DNA manipulation.


Assuntos
Clonagem Molecular/métodos , Genoma Bacteriano , Mycoplasma/genética , Saccharomyces cerevisiae/genética , Sequência de Bases , Diploide , Vetores Genéticos/química , Dados de Sequência Molecular , Mycoplasma genitalium/genética , Mycoplasma mycoides/genética , Mycoplasma pneumoniae/genética , Recombinação Genética
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