The Role of Drosophila Heparan Sulfate 6-O-Endosulfatase in Sulfation Compensation

The biosynthesis of heparan sulfate proteoglycans is tightly regulated by multiple feedback mechanisms, which support robust developmental systems. One of the regulatory network systems controlling heparan sulfate (HS) biosynthesis is sulfation compensation. A previous study using Drosophila HS 2-O-...

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Veröffentlicht in:The Journal of biological chemistry 2013-03, Vol.288 (9), p.6574-6582
Hauptverfasser: Dejima, Katsufumi, Kleinschmit, Adam, Takemura, Masahiko, Choi, Pui Yee, Kinoshita-Toyoda, Akiko, Toyoda, Hidenao, Nakato, Hiroshi
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Sprache:eng
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Zusammenfassung:The biosynthesis of heparan sulfate proteoglycans is tightly regulated by multiple feedback mechanisms, which support robust developmental systems. One of the regulatory network systems controlling heparan sulfate (HS) biosynthesis is sulfation compensation. A previous study using Drosophila HS 2-O- and 6-O-sulfotransferase (Hs2st and Hs6st) mutants showed that loss of sulfation at one position is compensated by increased sulfation at other positions, supporting normal FGF signaling. Here, we show that HS sulfation compensation rescues both Decapentaplegic and Wingless signaling, suggesting a universal role of this regulatory system in multiple pathways in Drosophila. Furthermore, we identified Sulf1, extracellular HS 6-O-endosulfatase, as a novel component of HS sulfation compensation. Simultaneous loss of Hs2st and Sulf1 led to 6-O-oversulfation, leading to patterning defects, overgrowth, and lethality. These phenotypes are caused at least partly by abnormal up-regulation of Hedgehog signaling. Thus, sulfation compensation depends on the coordinated activities of Hs2st, Hs6st, and Sulf1. Background: HS sulfation compensation provides robustness to cellular signaling and animal development, but its mechanism is unknown. Results: Sulf1 is required for sulfation compensation in Hs2st mutants. Conclusion: Sulfation compensation depends on the coordinated activities of Hs2st, Hs6st, and Sulf1. Significance: The finding that Sulf1 is a novel component of HS sulfation compensation machinery provides novel mechanistic insight into this poorly understood phenomenon.
ISSN:0021-9258
1083-351X
DOI:10.1074/jbc.M112.404830