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PMID: 18974222 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Crystal structure of I-DmoI in complex with its target DNA provides new insights into meganuclease engineering.

Marcaida MJ, Prieto J, Redondo P, Nadra AD, Alibés A, Serrano L, Grizot S, Duchateau P, Pâques F, Blanco FJ, Montoya G

Abstract

Homing endonucleases, also known as meganucleases, are sequence-specific enzymes with large DNA recognition sites. These enzymes can be used to induce efficient homologous gene targeting in cells and plants, opening perspectives for genome engineering with applications in a wide series of fields, ranging from biotechnology to gene therapy. Here, we report the crystal structures at 2.0 and 2.1 A resolution of the I-DmoI meganuclease in complex with its substrate DNA before and after cleavage, providing snapshots of the catalytic process. Our study suggests that I-DmoI requires only 2 cations instead of 3 for DNA cleavage. The structure sheds light onto the basis of DNA binding, indicating key residues responsible for nonpalindromic target DNA recognition. In silico and in vivo analysis of the I-DmoI DNA cleavage specificity suggests that despite the relatively few protein-base contacts, I-DmoI is highly specific when compared with other meganucleases. Our data open the door toward the generation of custom endonucleases for targeted genome engineering using the monomeric I-DmoI scaffold.

MeSH Terms
Base Sequence Binding Sites Crystallography, X-Ray DNA/chemistry,metabolism DNA Cleavage Deoxyribonucleases, Type I Site-Specific/chemistry,metabolism Dimerization Models, Molecular Molecular Sequence Data Nucleic Acid Conformation Protein Conformation Protein Engineering/methods Substrate Specificity
Chemicals
DNA endodeoxyribonuclease I-Dmo I Deoxyribonucleases, Type I Site-Specific
Authors & Affiliations
11 authors, click to expand affiliations / ORCID
Marcaida María José
Macromolecular Crystallography and Nuclear Magnetic Resonance Groups, Structural Biology and Biocomputing Programme, Spanish National Cancer Research Centre, c/Melchor Fdez. Almagro 3, 28029 Madrid, Spain.
Prieto Jesús
Redondo Pilar
Nadra Alejandro D
Alibés Andreu
Serrano Luis
Grizot Sylvestre
Duchateau Philippe
Pâques Frédéric
Blanco Francisco J
Montoya Guillermo
References (39)
39 references, click to expand
  1. LMO2-associated clonal T cell proliferation in two patients after gene therapy for SCID-X1.
    Science. 2003 Oct 17;302(5644):415-9 PMID: 14564000
  2. Flexible DNA target site recognition by divergent homing endonuclease isoschizomers I-CreI and I-MsoI.
    J Mol Biol. 2003 May 30;329(2):253-69 PMID: 12758074
  3. Structural and biochemical analyses of DNA and RNA binding by a bifunctional homing endonuclease and group I intron splicing factor.
    Genes Dev. 2003 Dec 1;17(23):2875-88 PMID: 14633971
  4. How enzymes work: analysis by modern rate theory and computer simulations.
    Science. 2004 Jan 9;303(5655):186-95 PMID: 14716003
  5. Mechanistic insights from the structures of HincII bound to cognate DNA cleaved from addition of Mg2+ and Mn2+.
    J Mol Biol. 2004 Oct 29;343(4):833-49 PMID: 15476804
  6. An intron-encoded protein is active in a gene conversion process that spreads an intron into a mitochondrial gene.
    Cell. 1985 Jun;41(2):383-94 PMID: 3886163
  7. Nested chromosomal fragmentation in yeast using the meganuclease I-Sce I: a new method for physical mapping of eukaryotic genomes.
    Nucleic Acids Res. 1992 Nov 11;20(21):5625-31 PMID: 1333585
  8. A site-specific endonuclease encoded by a typical archaeal intron.
    Proc Natl Acad Sci U S A. 1993 Jun 15;90(12):5414-7 PMID: 8390663
  9. Asymmetrical recognition and activity of the I-SceI endonuclease on its site and on intron-exon junctions.
    EMBO J. 1993 Jul;12(7):2939-47 PMID: 8335007
  10. Purification and characterization of two forms of I-DmoI, a thermophilic site-specific endonuclease encoded by an archaeal intron.
    J Biol Chem. 1994 Nov 18;269(46):28885-92 PMID: 7961849
  11. Induction of homologous recombination in mammalian chromosomes by using the I-SceI system of Saccharomyces cerevisiae.
    Mol Cell Biol. 1995 Apr;15(4):1968-73 PMID: 7891691
  12. Profile of the DNA recognition site of the archaeal homing endonuclease I-DmoI.
    Nucleic Acids Res. 1997 Apr 15;25(8):1523-30 PMID: 9092657
  13. Mapping metal ions at the catalytic centres of two intron-encoded endonucleases.
    EMBO J. 1997 Jun 2;16(11):3272-81 PMID: 9214642
  14. DNA recognition and cleavage by the LAGLIDADG homing endonuclease I-CreI.
    Mol Cell. 1998 Oct;2(4):469-76 PMID: 9809068
  15. Crystal structure of the thermostable archaeal intron-encoded endonuclease I-DmoI.
    J Mol Biol. 1999 Mar 5;286(4):1123-36 PMID: 10047486
  16. Metal-dependent DNA cleavage mechanism of the I-CreI LAGLIDADG homing endonuclease.
    Biochemistry. 2004 Nov 9;43(44):14015-26 PMID: 15518550
  17. The FoldX web server: an online force field.
    Nucleic Acids Res. 2005 Jul 1;33(Web Server issue):W382-8 PMID: 15980494
  18. Engineering of large numbers of highly specific homing endonucleases that induce recombination on novel DNA targets.
    J Mol Biol. 2006 Jan 20;355(3):443-58 PMID: 16310802
  19. Homing endonuclease structure and function.
    Q Rev Biophys. 2005 Feb;38(1):49-95 PMID: 16336743
  20. Efficient gene targeting in Drosophila with zinc-finger nucleases.
    Genetics. 2006 Apr;172(4):2391-403 PMID: 16452139
  21. Efficient in toto targeted recombination in mouse liver by meganuclease-induced double-strand break.
    J Gene Med. 2006 May;8(5):616-22 PMID: 16475243
  22. The structure of I-CeuI homing endonuclease: Evolving asymmetric DNA recognition from a symmetric protein scaffold.
    Structure. 2006 May;14(5):869-80 PMID: 16698548
  23. From monomeric to homodimeric endonucleases and back: engineering novel specificity of LAGLIDADG enzymes.
    J Mol Biol. 2006 Aug 25;361(4):744-54 PMID: 16872628
  24. A combinatorial approach to create artificial homing endonucleases cleaving chosen sequences.
    Nucleic Acids Res. 2006;34(22):e149 PMID: 17130168
  25. An improved zinc-finger nuclease architecture for highly specific genome editing.
    Nat Biotechnol. 2007 Jul;25(7):778-85 PMID: 17603475
  26. Structure-based redesign of the dimerization interface reduces the toxicity of zinc-finger nucleases.
    Nat Biotechnol. 2007 Jul;25(7):786-93 PMID: 17603476
  27. Engineered I-CreI derivatives cleaving sequences from the human XPC gene can induce highly efficient gene correction in mammalian cells.
    J Mol Biol. 2007 Aug 3;371(1):49-65 PMID: 17561112
  28. Crystallization and preliminary X-ray diffraction analysis on the homing endonuclease I-Dmo-I in complex with its target DNA.
    Acta Crystallogr Sect F Struct Biol Cryst Commun. 2007 Dec 1;63(Pt 12):1017-20 PMID: 18084082
  29. Generation and analysis of mesophilic variants of the thermostable archaeal I-DmoI homing endonuclease.
    J Biol Chem. 2008 Feb 15;283(7):4364-74 PMID: 17999959
  30. Computer design of obligate heterodimer meganucleases allows efficient cutting of custom DNA sequences.
    Nucleic Acids Res. 2008 Apr;36(7):2163-73 PMID: 18276641
  31. Crystal structures of I-SceI complexed to nicked DNA substrates: snapshots of intermediates along the DNA cleavage reaction pathway.
    Nucleic Acids Res. 2008 Jun;36(10):3287-96 PMID: 18424798
  32. Molecular basis of xeroderma pigmentosum group C DNA recognition by engineered meganucleases.
    Nature. 2008 Nov 6;456(7218):107-11 PMID: 18987743
  33. Meganucleases and DNA double-strand break-induced recombination: perspectives for gene therapy.
    Curr Gene Ther. 2007 Feb;7(1):49-66 PMID: 17305528
  34. The homing endonuclease I-CreI uses three metals, one of which is shared between the two active sites.
    Nat Struct Biol. 2001 Apr;8(4):312-6 PMID: 11276249
  35. Homing endonucleases: structural and functional insight into the catalysts of intron/intein mobility.
    Nucleic Acids Res. 2001 Sep 15;29(18):3757-74 PMID: 11557808
  36. Crystal structure of the intein homing endonuclease PI-SceI bound to its recognition sequence.
    Nat Struct Biol. 2002 Oct;9(10):764-70 PMID: 12219083
  37. Design, activity, and structure of a highly specific artificial endonuclease.
    Mol Cell. 2002 Oct;10(4):895-905 PMID: 12419232
  38. Enhancing gene targeting with designed zinc finger nucleases.
    Science. 2003 May 2;300(5620):764 PMID: 12730594
  39. The crystal structure of the gene targeting homing endonuclease I-SceI reveals the origins of its target site specificity.
    J Mol Biol. 2003 Dec 5;334(4):685-95 PMID: 14636596
Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
1091-6490
Published
2008-11-04
Epub
2008-00-30
Pages
16888-93
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC2579348
Subset
IM
Databases
PDB
Analysis Services
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