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J Biol Chem
2016 Jan 29;2915:2435-43. doi: 10.1074/jbc.M115.677807.
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Characterization of Tiki, a New Family of Wnt-specific Metalloproteases.
Zhang X, MacDonald BT, Gao H, Shamashkin M, Coyle AJ, Martinez RV, He X.
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The Wnt family of secreted glycolipoproteins plays pivotal roles in development and human diseases. Tiki family proteins were identified as novel Wnt inhibitors that act by cleaving the Wnt amino-terminal region to inactivate specific Wnt ligands. Tiki represents a new metalloprotease family that is dependent on Mn(2+)/Co(2+) but lacks known metalloprotease motifs. The Tiki extracellular domain shares homology with bacterial TraB/PrgY proteins, known for their roles in the inhibition of mating pheromones. The TIKI/TraB fold is predicted to be distantly related to structures of additional bacterial proteins and may use a core β-sheet within an α+β-fold to coordinate conserved residues for catalysis. In this study, using assays for Wnt3a cleavage and signaling inhibition, we performed mutagenesis analyses of human TIKI2 to examine the structural prediction and identify the active site residues. We also established an in vitro assay for TIKI2 protease activity using FRET peptide substrates derived from the cleavage motifs of Wnt3a and Xenopus wnt8 (Xwnt8). We further identified two pairs of potential disulfide bonds that reside outside the β-sheet catalytic core but likely assist the folding of the TIKI domain. Finally, we systematically analyzed TIKI2 cleavage of the 19 human WNT proteins, of which we identified 10 as potential TIKI2 substrates, revealing the hydrophobic nature of Tiki cleavage sites. Our study provides insights into the Tiki family of proteases and its Wnt substrates.
Anastas,
WNT signalling pathways as therapeutic targets in cancer.
2013, Pubmed
Anastas,
WNT signalling pathways as therapeutic targets in cancer.
2013,
Pubmed Bazan,
The TIKI/TraB/PrgY family: a common protease fold for cell signaling from bacteria to metazoa?
2013,
Pubmed Chandler,
Enterococcal peptide sex pheromones: synthesis and control of biological activity.
2004,
Pubmed Chandler,
Specific control of endogenous cCF10 pheromone by a conserved domain of the pCF10-encoded regulatory protein PrgY in Enterococcus faecalis.
2005,
Pubmed Chandler,
Characterization of the sequence specificity determinants required for processing and control of sex pheromone by the intramembrane protease Eep and the plasmid-encoded protein PrgY.
2008,
Pubmed Clevers,
Wnt/β-catenin signaling and disease.
2012,
Pubmed Cruciat,
Secreted and transmembrane wnt inhibitors and activators.
2013,
Pubmed
,
Xenbase Dunny,
Enterococcal sex pheromones: signaling, social behavior, and evolution.
2013,
Pubmed Gomis-Rüth,
Structure and mechanism of metallocarboxypeptidases.
2008,
Pubmed Kakugawa,
Notum deacylates Wnt proteins to suppress signalling activity.
2015,
Pubmed MacDonald,
Wnt/beta-catenin signaling: components, mechanisms, and diseases.
2009,
Pubmed
,
Xenbase MacDonald,
Frizzled and LRP5/6 receptors for Wnt/β-catenin signaling.
2012,
Pubmed MacDonald,
Disulfide bond requirements for active Wnt ligands.
2014,
Pubmed Mao,
Kremen proteins are Dickkopf receptors that regulate Wnt/beta-catenin signalling.
2002,
Pubmed Meyer,
Extra- and intracellular imaging of human matrix metalloprotease 11 (hMMP-11) with a cell-penetrating FRET substrate.
2012,
Pubmed Morar,
Mechanism and diversity of the erythromycin esterase family of enzymes.
2012,
Pubmed Sanchez-Pulido,
Tiki, at the head of a new superfamily of enzymes.
2013,
Pubmed van Amerongen,
Alternative Wnt pathways and receptors.
2012,
Pubmed Willert,
Wnt proteins.
2012,
Pubmed Zhang,
Tiki1 is required for head formation via Wnt cleavage-oxidation and inactivation.
2012,
Pubmed
,
Xenbase Zhang,
Notum is required for neural and head induction via Wnt deacylation, oxidation, and inactivation.
2015,
Pubmed
,
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