Bishop Benjamin, Aricescu A Radu, Harlos Karl, O'Callaghan Chris A, Jones E Yvonne, Siebold Christian
Division of Structural Biology, Wellcome Trust Centre for Human Genetics, University of Oxford, Oxford, UK.
Nat Struct Mol Biol. 2009 Jul;16(7):698-703. doi: 10.1038/nsmb.1607. Epub 2009 Jun 28.
Hedgehog (Hh) morphogens have fundamental roles in development, whereas dysregulation of Hh signaling leads to disease. Multiple cell-surface receptors are responsible for transducing and/or regulating Hh signals. Among these, the Hedgehog-interacting protein (Hhip) is a highly conserved, vertebrate-specific inhibitor of Hh signaling. We have solved a series of crystal structures for the human HHIP ectodomain and Desert hedgehog (DHH) in isolation, as well as HHIP in complex with DHH (HHIP-DHH) and Sonic hedgehog (Shh) (HHIP-Shh), with and without Ca2+. The interaction determinants, confirmed by biophysical studies and mutagenesis, reveal previously uncharacterized and distinct functions for the Hh Zn2+ and Ca2+ binding sites--functions that may be common to all vertebrate Hh proteins. Zn2+ makes a key contribution to the Hh-HHIP interface, whereas Ca2+ is likely to prevent electrostatic repulsion between the two proteins, suggesting an important modulatory role. This interplay of several metal binding sites suggests a tuneable mechanism for regulation of Hh signaling.
刺猬索尼克(Hh)形态发生素在发育过程中起重要作用,而Hh信号通路失调会导致疾病。多种细胞表面受体负责转导和/或调节Hh信号。其中,刺猬索尼克相互作用蛋白(Hhip)是一种高度保守的、脊椎动物特有的Hh信号通路抑制剂。我们解析了一系列人HHIP胞外域和单独的沙漠刺猬因子(DHH)的晶体结构,以及与DHH(HHIP-DHH)和音猬因子(Shh)(HHIP-Shh)结合的HHIP的晶体结构,包括有Ca2+和无Ca2+的情况。通过生物物理研究和诱变确定的相互作用决定因素揭示了Hh锌离子(Zn2+)和钙离子(Ca2+)结合位点以前未被表征的独特功能——这些功能可能是所有脊椎动物Hh蛋白共有的。Zn2+对Hh-HHIP界面起关键作用,而Ca2+可能会防止两种蛋白质之间的静电排斥,表明其具有重要的调节作用。几个金属结合位点的这种相互作用表明了一种可调节Hh信号通路的机制。