4.8 Article

Crystal structure and functional implication of a bacterial cyclic AMP-AMP-GMP synthetase

Journal

NUCLEIC ACIDS RESEARCH
Volume 49, Issue 8, Pages 4725-4737

Publisher

OXFORD UNIV PRESS
DOI: 10.1093/nar/gkab165

Keywords

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Funding

  1. Academia Sinica and the Taiwan Protein Project [AS-KPQ109-TPP2]
  2. Ministry of Science and Technology of Taiwan [108-2311-B241-001, 109-2311-B241-001]
  3. China Medical University in Taiwan [CMU109-MF-18, CMU109S-07]

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The study presents the crystal structures of CD-NTase EcCdnD from Enter-obacter cloacae, showing significant structural variations compared to other CD-NTases. The enzyme is active on ATP or a mixture of ATP and GTP, with Mg2+ as the preferred metal cofactor. Based on structural analysis and comparison with other enzymes, a tentative catalytic pathway for EcCdnD in producing CTN is proposed.
Mammalian cyclic GMP-AMP synthase (cGAS) and its homologue dinucleotide cyclase in Vibrio cholerae (VcDncV) produce cyclic dinucleotides (CDNs) that participate in the defense against viral infection. Recently, scores of new cGAS/DncV-like nucleotidyl-transferases (CD-NTases) were discovered, which produce various CDNs and cyclic trinucleotides (CTNs) as second messengers. Here, we present the crystal structures of EcCdnD, a CD-NTase from Enter-obacter cloacae that produces cyclic AMP-AMP-GMP, in its apo-form and in complex with ATP, ADP and AMPcPP, an ATP analogue. Despite the similar overall architecture, the protein shows significant structural variations from other CD-NTases. Adjacent to the donor substrate, another nucleotide is bound to the acceptor binding site by a non-productive mode. Isothermal titration calorimetry results also suggest the presence of two ATP binding sites. GTP alone does not bind to EcCdnD, which however binds to pppApG, a possible intermediate. The enzyme is active on ATP or a mixture of ATP and GTP, and the best metal cofactor is Mg2+. The conserved residues Asp69 and Asp71 are essential for catalysis, as indicated by the loss of activity in the mutants. Based on structural analysis and comparison with VcDncV and RNA polymerase, a tentative catalytic pathway for the CTN-producing EcCdnD is proposed.

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