Low-mutation-rate, reduced-genome Escherichia coli: an improved host for faithful maintenance of engineered genetic constructs

被引:88
作者
Csoergo, Balint [1 ]
Feher, Tamas [1 ]
Timar, Edit [1 ]
Blattner, Frederick R. [2 ,3 ]
Posfai, Gyoergy [1 ]
机构
[1] Hungarian Acad Sci, Biol Res Ctr, Inst Biochem, H-6726 Szeged, Hungary
[2] Scarab Genom LLC, Madison, WI 53713 USA
[3] Univ Wisconsin, Dept Genet, Madison, WI 53706 USA
关键词
Escherichia coli; mutation rate; evolvability; reduced genome; synthetic biology; chassis; RECOMBINANT PROTEIN-PRODUCTION; POLYMERASES POL-II; DNA-POLYMERASES; FLUCTUATION ANALYSIS; SYNTHETIC BIOLOGY; EXPRESSION; MUTANTS; IV; MUTAGENESIS; PURIFICATION;
D O I
10.1186/1475-2859-11-11
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Background: Molecular mechanisms generating genetic variation provide the basis for evolution and long-term survival of a population in a changing environment. In stable, laboratory conditions, the variation-generating mechanisms are dispensable, as there is limited need for the cell to adapt to adverse conditions. In fact, newly emerging, evolved features might be undesirable when working on highly refined, precise molecular and synthetic biological tasks. Results: By constructing low-mutation-rate variants, we reduced the evolutionary capacity of MDS42, a reduced-genome E. coli strain engineered to lack most genes irrelevant for laboratory/industrial applications. Elimination of diversity-generating, error-prone DNA polymerase enzymes involved in induced mutagenesis achieved a significant stabilization of the genome. The resulting strain, while retaining normal growth, showed a significant decrease in overall mutation rates, most notably under various stress conditions. Moreover, the error-prone polymerase-free host allowed relatively stable maintenance of a toxic methyltransferase-expressing clone. In contrast, the parental strain produced mutant clones, unable to produce functional methyltransferase, which quickly overgrew the culture to a high ratio (50% of clones in a 24-h induction period lacked functional methyltransferase activity). The surprisingly large stability-difference observed between the strains was due to the combined effects of high stress-induced mutagenesis in the parental strain, growth inhibition by expression of the toxic protein, and selection/outgrowth of mutants no longer producing an active, toxic enzyme. Conclusions: By eliminating stress-inducible error-prone DNA-polymerases, the genome of the mobile genetic element-free E. coli strain MDS42 was further stabilized. The resulting strain represents an improved host in various synthetic and molecular biological applications, allowing more stable production of growth-inhibiting biomolecules.
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页数:13
相关论文
共 72 条
  • [1] A CLONED IMMUNOGLOBULIN CDNA FRAGMENT ENHANCES TRANSPOSITION OF IS-ELEMENTS INTO RECOMBINANT PLASMIDS
    AMSTER, O
    SALOMON, D
    ZAMIR, A
    [J]. NUCLEIC ACIDS RESEARCH, 1982, 10 (15) : 4525 - 4542
  • [2] Synthetic biology: new engineering rules for an emerging discipline
    Andrianantoandro, Ernesto
    Basu, Subhayu
    Karig, David K.
    Weiss, Ron
    [J]. MOLECULAR SYSTEMS BIOLOGY, 2006, 2 (1) : 2006.0028
  • [3] [Anonymous], 1987, MOL CLONING LAB MANU
  • [4] Prokaryotic expression of antibodies
    Arbabi-Ghahroudi, M
    Tanha, J
    MacKenzie, R
    [J]. CANCER AND METASTASIS REVIEWS, 2005, 24 (04) : 501 - 519
  • [5] Recombinant protein expression in Escherichia coli
    Baneyx, F
    [J]. CURRENT OPINION IN BIOTECHNOLOGY, 1999, 10 (05) : 411 - 421
  • [6] ISOLATION OF MUTANTS OF HUMAN-IMMUNODEFICIENCY-VIRUS PROTEASE BASED ON THE TOXICITY OF THE ENZYME IN ESCHERICHIA-COLI
    BAUM, EZ
    BEBERNITZ, GA
    GLUZMAN, Y
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1990, 87 (14) : 5573 - 5577
  • [7] Error-free recombinational repair predominates over mutagenic translesion replication in E-coli
    Berdichevsky, A
    Izhar, L
    Livneh, Z
    [J]. MOLECULAR CELL, 2002, 10 (04) : 917 - 924
  • [8] The complete genome sequence of Escherichia coli K-12
    Blattner, FR
    Plunkett, G
    Bloch, CA
    Perna, NT
    Burland, V
    Riley, M
    ColladoVides, J
    Glasner, JD
    Rode, CK
    Mayhew, GF
    Gregor, J
    Davis, NW
    Kirkpatrick, HA
    Goeden, MA
    Rose, DJ
    Mau, B
    Shao, Y
    [J]. SCIENCE, 1997, 277 (5331) : 1453 - +
  • [9] BLUMENTHAL RM, 1988, GENE, V74, P271
  • [10] BONNER CA, 1988, J BIOL CHEM, V263, P18946