Literature DB >> 28840320

Cre/lox-based multiple markerless gene disruption in the genome of the extreme thermophile Thermus thermophilus.

Yoichiro Togawa1, Tatsuo Nunoshiba2, Keiichiro Hiratsu3.   

Abstract

Markerless gene-disruption technology is particularly useful for effective genetic analyses of Thermus thermophilus (T. thermophilus), which have a limited number of selectable markers. In an attempt to develop a novel system for the markerless disruption of genes in T. thermophilus, we applied a Cre/lox system to construct a triple gene disruptant. To achieve this, we constructed two genetic tools, a loxP-htk-loxP cassette and cre-expressing plasmid, pSH-Cre, for gene disruption and removal of the selectable marker by Cre-mediated recombination. We found that the Cre/lox system was compatible with the proliferation of the T. thermophilus HB27 strain at the lowest growth temperature (50 °C), and thus succeeded in establishing a triple gene disruptant, the (∆TTC1454::loxP, ∆TTC1535KpnI::loxP, ∆TTC1576::loxP) strain, without leaving behind a selectable marker. During the process of the sequential disruption of multiple genes, we observed the undesired deletion and inversion of the chromosomal region between multiple loxP sites that were induced by Cre-mediated recombination. Therefore, we examined the effects of a lox66-htk-lox71 cassette by exploiting the mutant lox sites, lox66 and lox71, instead of native loxP sites. We successfully constructed a (∆TTC1535::lox72, ∆TTC1537::lox72) double gene disruptant without inducing the undesired deletion of the 0.7-kbp region between the two directly oriented lox72 sites created by the Cre-mediated recombination of the lox66-htk-lox71 cassette. This is the first demonstration of a Cre/lox system being applicable to extreme thermophiles in a genetic manipulation. Our results indicate that this system is a powerful tool for multiple markerless gene disruption in T. thermophilus.

Entities:  

Keywords:  Cre/lox; Markerless gene disruption; Mutant lox; Thermus thermophilus; Triple gene disruption

Mesh:

Substances:

Year:  2017        PMID: 28840320     DOI: 10.1007/s00438-017-1361-x

Source DB:  PubMed          Journal:  Mol Genet Genomics        ISSN: 1617-4623            Impact factor:   3.291


  35 in total

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3.  Construction of a supF-based system for detection of mutations in the chromosomal DNA of Arabidopsis.

Authors:  Keiichiro Hiratsu; Shiori Shiotani; Kozo Makino; Tatsuo Nunoshiba
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4.  Directed evolution of thermostable kanamycin-resistance gene: a convenient selection marker for Thermus thermophilus.

Authors:  J Hoseki; T Yano; Y Koyama; S Kuramitsu; H Kagamiyama
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5.  Mechanism of strand cleavage and exchange in the Cre-lox site-specific recombination system.

Authors:  R H Hoess; K Abremski
Journal:  J Mol Biol       Date:  1985-02-05       Impact factor: 5.469

6.  Markerless Gene Deletion with Cytosine Deaminase in Thermus thermophilus Strain HB27.

Authors:  Lei Wang; Jana Hoffmann; Hildegard Watzlawick; Josef Altenbuchner
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7.  A reporter gene system for the precise measurement of promoter activity in Thermus thermophilus HB27.

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8.  Genetic analysis of lipolytic activities in Thermus thermophilus HB27.

Authors:  Benedikt Leis; Angel Angelov; Haijuan Li; Wolfgang Liebl
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9.  The genome sequence of the extreme thermophile Thermus thermophilus.

Authors:  Anke Henne; Holger Brüggemann; Carsten Raasch; Arnim Wiezer; Thomas Hartsch; Heiko Liesegang; Andre Johann; Tanja Lienard; Olivia Gohl; Rosa Martinez-Arias; Carsten Jacobi; Vytaute Starkuviene; Silke Schlenczeck; Silke Dencker; Robert Huber; Hans-Peter Klenk; Wilfried Kramer; Rainer Merkl; Gerhard Gottschalk; Hans-Joachim Fritz
Journal:  Nat Biotechnol       Date:  2004-04-04       Impact factor: 54.908

10.  Genetic transformation of the extreme thermophile Thermus thermophilus and of other Thermus spp.

Authors:  Y Koyama; T Hoshino; N Tomizuka; K Furukawa
Journal:  J Bacteriol       Date:  1986-04       Impact factor: 3.490

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  7 in total

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Journal:  3 Biotech       Date:  2019-03-23       Impact factor: 2.406

2.  Efficient genome editing of an extreme thermophile, Thermus thermophilus, using a thermostable Cas9 variant.

Authors:  Bjorn Thor Adalsteinsson; Thordis Kristjansdottir; William Merre; Alexandra Helleux; Julia Dusaucy; Mathilde Tourigny; Olafur Fridjonsson; Gudmundur Oli Hreggvidsson
Journal:  Sci Rep       Date:  2021-05-05       Impact factor: 4.379

3.  Lox'd in translation: contradictions in the nomenclature surrounding common lox-site mutants and their implications in experiments.

Authors:  Daniel Shaw; Luis Serrano; Maria Lluch-Senar
Journal:  Microbiology (Reading)       Date:  2020-12-07       Impact factor: 2.777

4.  A Modular Vector Toolkit with a Tailored Set of Thermosensors To Regulate Gene Expression in Thermus thermophilus.

Authors:  Carlos Verdú; Esther Sanchez; Carmen Ortega; Aurelio Hidalgo; José Berenguer; Mario Mencía
Journal:  ACS Omega       Date:  2019-08-27

5.  A thermostable DNA primase-polymerase from a mobile genetic element involved in defence against environmental DNA.

Authors:  Nieves García-Quintans; Ignacio Baquedano; Alba Blesa; Carlos Verdú; José Berenguer; Mario Mencía
Journal:  Environ Microbiol       Date:  2020-09-03       Impact factor: 5.491

Review 6.  Nitrate Respiration in Thermus thermophilus NAR1: from Horizontal Gene Transfer to Internal Evolution.

Authors:  Mercedes Sánchez-Costa; Alba Blesa; José Berenguer
Journal:  Genes (Basel)       Date:  2020-11-04       Impact factor: 4.096

Review 7.  Extremophiles, a Nifty Tool to Face Environmental Pollution: From Exploitation of Metabolism to Genome Engineering.

Authors:  Giovanni Gallo; Rosanna Puopolo; Miriam Carbonaro; Emanuela Maresca; Gabriella Fiorentino
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  7 in total

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