Key result
CD-NTase enzymes use specific donor pocket interactions to establish distinct nucleotide selectivity across bacterial clades.
Why the study?
How bacterial CD-NTase enzymes control nucleotide selection to specifically induce CBASS phage defense remained poorly defined.
The study identifies molecular rules controlling CD-NTase specificity, enabling predictions of nucleotide second-messenger signals within diverse antiviral systems.
This is the authors' abstract. We don't add key points for this paper.
cGAS/DncV-like nucleotidyltransferase (CD-NTase) enzymes are signaling proteins that initiate antiviral immunity in animal cells and cyclic-oligonucleotide-based anti-phage signaling system (CBASS) phage defense in bacteria. Upon phage recognition, bacterial CD-NTases catalyze synthesis of cyclic-oligonucleotide signals, which activate downstream effectors and execute cell death. How CD-NTases control nucleotide selection to specifically induce defense remains poorly defined. Here, we combine structural and nucleotide-analog interference-mapping approaches to identify molecular rules controlling CD-NTase specificity. Structures of the cyclic trinucleotide synthase Enterobacter cloacae CdnD reveal coordinating nucleotide interactions and a possible role for inverted nucleobase positioning during product synthesis. We demonstrate that correct nucleotide selection in the CD-NTase donor pocket results in the formation of a thermostable-protein-nucleotide complex, and we extend our analysis to establish specific patterns governing selectivity for each of the major bacterial CD-NTase clades A-H. Our results explain CD-NTase specificity and enable predictions of nucleotide second-messenger signals within diverse antiviral systems.
No immediate clinical implications; leaves open extension of bacterial CD-NTase rules to eukaryotic or therapeutic contexts.
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Govande et al. (2021) studied this question. CD-NTase enzymes utilize specific coordinating interactions in their donor pockets to form thermostable complexes, establishing distinct nucleotide selectivity patterns across bacterial clades A-H.
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