Structural analysis of PLD3 reveals insights into the mechanism of lysosomal 5′ exonuclease-mediated nucleic acid degradation

Author:

Roske Yvette1,Cappel Cedric2,Cremer Nils3,Hoffmann Patrick2,Koudelka Tomas4,Tholey Andreas4,Heinemann Udo15ORCID,Daumke Oliver15,Damme Markus2ORCID

Affiliation:

1. Structural Biology, Max-Delbrück-Center for Molecular Medicine in the Helmholtz Association (MDC) , 13125  Berlin , Germany

2. Biochemical Institute, Kiel University , Kiel , Germany

3. Leibniz-Institut für Molekulare Pharmakologie (FMP) , Robert-Rössle-Straβe 10, 13125  Berlin , Germany

4. Institute of Experimental Medicine, Kiel University , 24188  Kiel , Germany

5. Institute for Chemistry and Biochemistry, Freie Universität Berlin , 14195  Berlin , Germany

Abstract

Abstract The phospholipase D (PLD) family is comprised of enzymes bearing phospholipase activity towards lipids or endo- and exonuclease activity towards nucleic acids. PLD3 is synthesized as a type II transmembrane protein and proteolytically cleaved in lysosomes, yielding a soluble active form. The deficiency of PLD3 leads to the slowed degradation of nucleic acids in lysosomes and chronic activation of nucleic acid-specific intracellular toll-like receptors. While the mechanism of PLD phospholipase activity has been extensively characterized, not much is known about how PLDs bind and hydrolyze nucleic acids. Here, we determined the high-resolution crystal structure of the luminal N-glycosylated domain of human PLD3 in its apo- and single-stranded DNA-bound forms. PLD3 has a typical phospholipase fold and forms homodimers with two independent catalytic centers via a newly identified dimerization interface. The structure of PLD3 in complex with an ssDNA-derived thymidine product in the catalytic center provides insights into the substrate binding mode of nucleic acids in the PLD family. Our structural data suggest a mechanism for substrate binding and nuclease activity in the PLD family and provide the structural basis to design immunomodulatory drugs targeting PLD3.

Funder

Deutsche Forschungsgemeinschaft

Max-Delbrück-Center for Molecular Medicine

Helmholtz Association

Publisher

Oxford University Press (OUP)

Subject

Genetics

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