4.7 Article

Structural and functional characterization of deep-sea thermophilic bacteriophage GVE2 HNH endonuclease

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SCIENTIFIC REPORTS
卷 7, 期 -, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/srep42542

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资金

  1. National Natural Science Foundation of China [41306131, 31270791, U1432241]
  2. Natural Science Foundation Grant for College and University of Jiangsu Province, China [13KJB180029]
  3. Provincial Natural Science Foundation Grant of Jiangsu Province, China [BK20130440]
  4. State Key Laboratory of Microbial Technology Open Projects Fund [M2016-09]
  5. Open Research Fund Program of the State Key Laboratory of Virology of China [2016KF006]
  6. Postgraduate Research Innovation Grant of Jiangsu Province, China [KYLX16_1400]
  7. Yangzhou University College Student Science and Technology Innovation Grant

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HNH endonucleases in bacteriophages play a variety of roles in the phage lifecycle as key components of phage DNA packaging machines. The deep-sea thermophilic bacteriophage Geobacillus virus E2 (GVE2) encodes an HNH endonuclease (GVE2 HNHE). Here, the crystal structure of GVE2 HNHE is reported. This is the first structural study of a thermostable HNH endonuclease from a thermophilic bacteriophage. Structural comparison reveals that GVE2 HNHE possesses a typical beta beta alpha-metal fold and Zn-finger motif similar to those of HNH endonucleases from other bacteriophages, apart from containing an extra a-helix, suggesting conservation of these enzymes among bacteriophages. Biochemical analysis suggests that the alanine substitutions of the conserved residues (H93, N109 and H118) in the HNH motif of GVE2 HNHE abolished 94%, 60% and 83% of nicking activity, respectively. Compared to the wild type enzyme, the H93A mutant displayed almost the same conformation while the N108A and H118A mutants had different conformations. In addition, the wild type enzyme was more thermostable than the mutants. In the presence of Mn2+ or Zn2+, the wild type enzyme displayed distinct DNA nicking patterns. However, high Mn2+ concentrations were needed for the N109A and H118A mutants to nick DNA while Zn2+ inactivated their nicking activity.

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