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JOURNAL ARTICLES
The teratogenic Veratrum alkaloid cyclopamine inhibits sonic hedgehog signal transduction
J.P. Incardona, W. Gaffield, R.P. Kapur, H. Roelink
Development 1998 125: 3553-3562;
J.P. Incardona
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W. Gaffield
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R.P. Kapur
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H. Roelink
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Summary

The steroidal alkaloid cyclopamine produces cyclopia and holoprosencephaly when administered to gastrulation-stage amniote embryos. Cyclopamine-induced malformations in chick embryos are associated with interruption of Sonic hedgehog (Shh)-mediated dorsoventral patterning of the neural tube and somites. Cell types normally induced in the ventral neural tube by Shh are either absent or appear aberrantly at the ventral midline after cyclopamine treatment, while dorsal cell types normally repressed by Shh appear ventrally. Somites in cyclopamine-treated embryos show Pax7 expression throughout, indicating failure of sclerotome induction. Cyclopamine at concentrations of 20–100 nM blocks the response of neural plate explants to recombinant Shh-N in a dose-dependent manner. Similar concentrations have no effect on the post-translational modification of Shh by cholesterol in transfected COS-1 cells. Comparison of the effects of cyclopamine to those of the holoprosencephaly-inducing cholesterol synthesis inhibitor AY-9944 shows that cyclopamine does not induce malformations by interfering with cholesterol metabolism. Although AY-9944 does not interrupt Shh signaling in ovo, it blocks the response to Shh-N in explants cultured without an exogenous cholesterol source. As predicted by current models of the regulation of cholesterol metabolism, the response to Shh-N in AY-9944-treated explants is restored by providing exogenous cholesterol. However, exogenous cholesterol does not restore Shh signaling in cyclopamine-treated explants. These findings suggest that cyclopamine-induced teratogenesis is due to a more direct antagonism of Shh signal transduction.

REFERENCES

    1. Alberts A. W.,
    2. Chen J.,
    3. Kuron G.,
    4. Hunt V.,
    5. Huff J.,
    6. Hoffman C.,
    7. Rothrock J.,
    8. Lopez M.,
    9. Joshua H.,
    10. Harris E.,
    11. et al.
    (1980) Mevinolin: a highly potent competitive inhibitor of hydroxymethylglutaryl-coenzyme A reductase and a cholesterol-lowering agent. Proc. Natl. Acad. Sci. USA 77, 3957–3961
    OpenUrlAbstract/FREE Full Text
    1. Barth K. A.,
    2. Wilson S. W.
    (1995). Expression of zebrafish nk2.2 is influenced by sonic hedgehog/vertebrate hedgehog-1 and demarcates a zone of neuronal differentiation in the embryonic forebrain. Development 121, 1755–1768
    OpenUrlAbstract
    1. Belknap W. M.,
    2. Dietschy J. M.
    (1988) Sterol synthesis and low density lipoprotein clearance in vivo in the pregnant rat, placenta, and fetus. J. Clin. Invest 82, 2077–2085
    1. Bellairs R.
    (1958) The conversion of yolk into cytoplasm in the chick blastoderm as shown by electron microscopy. J. Embryol. Exp. Morph 6, 149–161
    OpenUrl
    1. Binns W.,
    2. Thacker E. J.,
    3. James L. F.,
    4. Huffman W. T.
    (1959) A congenital cyclopian-type malformation in lambs. J. Amer. Vet. Med. Assoc 134, 180–183
    1. Binns W.,
    2. James L. F.,
    3. Shupe J. L.,
    4. Everett G.
    (1963) A congenital cyclopian-type malformation in lambs induced by maternal ingestion of a range plant, Veratrum californicum. Am. J. Vet. Res 24, 1164–1175
    OpenUrlPubMedWeb of Science
    1. Brown M. S.,
    2. Goldstein J. L.
    (1997) The SREBP pathway: regulation of cholesterol metabolism by proteolysis of a membrane-bound transcription factor. Cell 89, 331–340
    OpenUrlCrossRefPubMedWeb of Science
    1. Carstea E. D.,
    2. Morris J. A.,
    3. Coleman K. G.,
    4. Loftus S. K.,
    5. Zhang D.,
    6. Cummings C.,
    7. Gu J.,
    8. Rosenfeld M. A.,
    9. Pavan W. J.,
    10. Krizman D. B.,
    11. et al.
    (1997) Niemann-Pick C1 disease gene: homology to mediators of cholesterol homeostasis. Science 277, 228–231
    OpenUrlAbstract/FREE Full Text
    1. Chiang C.,
    2. Litingtung Y.,
    3. Lee E.,
    4. Young K. E.,
    5. Corden J. L.,
    6. Westphal H.,
    7. Beachy P. A.
    (1996) Cyclopia and defective axial patterning in mice lacking Sonic hedgehog gene function. Nature 383, 407–413
    OpenUrlCrossRefPubMedWeb of Science
    1. Conner W. E.,
    2. Johnston R.,
    3. Lin D. S.
    (1969) Metabolism of cholesterol in the tissues and blood of the chick embryo. J. Lipid Res 10, 388–394
    OpenUrlAbstract
    1. Corsini A.,
    2. Maggi F. M.,
    3. Catapano A. L.
    (1995) Pharmacology of competitive inhibitors of HMG-CoA reductase. Pharmacol. Res 31, 9–27
    OpenUrlPubMedWeb of Science
    1. Ericson J.,
    2. Thor S.,
    3. Edlund T.,
    4. Jessell T. M.,
    5. Yamada T.
    (1992) Early stages of motor neuron differentiation revealed by expression of homeobox gene Islet-1. Science 256, 1555–1560
    OpenUrlAbstract/FREE Full Text
    1. Ericson J.,
    2. Morton S.,
    3. Kawakami A.,
    4. Roelink H.,
    5. Jessell T. M.
    (1996) Two critical periods of long-range Sonic Hedgehog signaling required for the specification of motor neuron identity. Cell 87, 661–673
    OpenUrlCrossRefPubMedWeb of Science
    1. Ericson J.,
    2. Rashbass P.,
    3. Schedl A.,
    4. Brenner Morton S.,
    5. Kawakami A.,
    6. van Heyningen V.,
    7. Jessell T. M.,
    8. Briscoe J.
    (1997) Pax6 controls progenitor cell identity and neuronal fate in response to graded Shh signaling. Cell 90, 169–180
    OpenUrlCrossRefPubMedWeb of Science
    1. Fan C. M.,
    2. Tessier-Lavigne M.
    (1994) Patterning of mammalian somites by surface ectoderm and notochord: evidence for sclerotome induction by a hedgehog homolog. Cell 79, 1175–1186
    OpenUrlCrossRefPubMedWeb of Science
    1. Fan C. M.,
    2. Porter J. A.,
    3. Chiang C.,
    4. Chang D. T.,
    5. Beachy P. A.,
    6. Tessier-Lavigne M.
    (1995) Long-range sclerotome induction by Sonic hedgehog: direct role of the amino-terminal cleavage product and modulation by the cyclic AMP signaling pathway. Cell 81, 457–465
    OpenUrlCrossRefPubMedWeb of Science
    1. Gaffield W.,
    2. Benson M.,
    3. Lundin R. E.,
    4. Keeler R. F.
    (1986) Carbon-13 and proton nuclear magnetic resonance spectra of Veratrum alkaloids. J. Nat. Products 49, 286–292
    OpenUrlCrossRef
    1. Gaffield W.,
    2. Keeler R. F.
    (1996) Steroidal alkaloid teratogens: molecular probes for investigation of craniofacial malformations. J. Toxicol.: Toxin Rev 15, 303–326
    1. Gil G.,
    2. Faust J. R.,
    3. Chin D. J.,
    4. Goldstein J. L.,
    5. Brown M. S.
    (1985) Membrane-bound domain of HMG CoA reductase is required for sterol-enhanced degradation of the enzyme. Cell 41, 249–258
    OpenUrlCrossRefPubMedWeb of Science
    1. Goldstein J. L.,
    2. Brown M. S.
    (1990) Regulation of the mevalonate pathway. Nature 343, 425–430
    OpenUrlCrossRefPubMedWeb of Science
    1. Hamburger V.,
    2. Hamilton H. L.
    (1951) A series of normal stages in the development of the chick embryo. J. Morph 88, 49–92
    OpenUrlCrossRefPubMedWeb of Science
    1. Havel R. J.,
    2. Eder H. A.,
    3. Bragdon J. H.
    (1955) The distribution and chemical composition of ultracentifugally separated lipoproteins in human serum. J. Clin. Invest 34, 1345–1353
    1. Heisenberg C. P.,
    2. Nusslein-Volhard C.
    (1997) The function of silberblick in the positioning of the eye anlage in the zebrafish embryo. Dev. Biol 184, 85–94
    OpenUrlCrossRefPubMed
    1. Hua X.,
    2. Nohturfft A.,
    3. Goldstein J. L.,
    4. Brown M. S.
    (1996) Sterol resistance in CHO cells traced to point mutation in SREBP cleavage-activating protein. Cell 87, 415–426
    OpenUrlCrossRefPubMedWeb of Science
    1. Kawakami A.,
    2. Kimura-Kawakami M.,
    3. Nomura T.,
    4. Fujisawa H.
    (1997) Distributions of PAX6 and PAX7 proteins suggest their involvement in both early and late phases of chick brain development. Mech. Dev 66, 119–130
    OpenUrlCrossRefPubMedWeb of Science
    1. Keeler R. F.,
    2. Binns W.
    (1968) Teratogenic compounds of Veratrum californicum (Durand). V. Comparison of cyclopian effects of steroidal alkaloids from the plant and structurally related compounds from other sources. Teratology 1, 5–10
    OpenUrlCrossRefPubMedWeb of Science
    1. Keeler R. F.
    (1969) Teratogenic compounds of Veratrum californicum (Durand). VI. The structure of cyclopamine. Phytochemistry 8, 223–225
    OpenUrlCrossRefWeb of Science
    1. Keeler R. F.
    (1978) Cyclopamine and related steroidal alkaloid teratogens: Their occurrence, structural relationship, and biologic effects. Lipids 13, 708–715
    OpenUrlCrossRefPubMedWeb of Science
    1. Kelley R. L.,
    2. Roessler E.,
    3. Hennekam R. C.,
    4. Feldman G. L.,
    5. Kosaki K.,
    6. Jones M. C.,
    7. Palumbos J. C.,
    8. Muenke M.
    (1996) Holoprosencephaly in RSH/Smith-Lemli-Opitz syndrome: does abnormal cholesterol metabolism affect the function of Sonic Hedgehog?. Am. J. Med. Genet 66, 478–484
    OpenUrlCrossRefPubMedWeb of Science
    1. Kumagai H.,
    2. Chun K. T.,
    3. Simoni R. D.
    (1995) Molecular dissection of the role of the membrane domain in the regulated degradation of 3-hydroxy-3-methylglutaryl coenzyme A reductase. J. Biol. Chem 270, 19107–19113
    OpenUrlAbstract/FREE Full Text
    1. Liem K. F., Jr.,
    2. Tremml G.,
    3. Roelink H.,
    4. Jessell T. M.
    (1995) Dorsal differentiation of neural plate cells induced by BMP-mediated signals from epidermal ectoderm. Cell 82, 969–979
    OpenUrlCrossRefPubMedWeb of Science
    1. Lisanti M. P.,
    2. Scherer P. E.,
    3. Vidugiriene J.,
    4. Tang Z.,
    5. Hermanowski-Vosatka A.,
    6. Tu Y. H.,
    7. Cook R. F.,
    8. Sargiacomo M.
    (1994) Characterization of caveolin-rich membrane domains isolated from an endothelial-rich source: implications for human disease. J. Cell Biol 126, 111–126
    OpenUrlAbstract/FREE Full Text
    1. Llirbat B.,
    2. Wolf C.,
    3. Chevy F.,
    4. Citadelle D.,
    5. Bereziat G.,
    6. Roux C.
    (1997) Normal and inhibited cholesterol synthesis in the cultured rat embryo. J. Lipid Res 38, 22–34
    OpenUrlAbstract
    1. Loftus S. K.,
    2. Morris J. A.,
    3. Carstea E. D.,
    4. Gu J. Z.,
    5. Cummings C.,
    6. Brown A.,
    7. Ellison J.,
    8. Ohno K.,
    9. Rosenfeld M. A.,
    10. Tagle D. A.,
    11. et al.
    (1997) Murine model of Niemann-Pick C disease: mutation in a cholesterol homeostasis gene. Science 277, 232–235
    OpenUrlAbstract/FREE Full Text
    1. Macdonald R.,
    2. Barth K. A.,
    3. Xu Q.,
    4. Holder N.,
    5. Mikkola I.,
    6. Wilson S. W.
    (1995) Midline signalling is required for Pax gene regulation and patterning of the eyes. Development 121, 3267–3278
    OpenUrlAbstract
    1. Marigo V.,
    2. Davey R. A.,
    3. Zuo Y.,
    4. Cunningham J. M.,
    5. Tabin C. J.
    (1996) Biochemical evidence that patched is the Hedgehog receptor. Nature 384, 176–179
    OpenUrlCrossRefPubMed
    1. Marti E.,
    2. Bumcrot D. A.,
    3. Takada R.,
    4. McMahon A. P.
    (1995) Requirement of 19K form of Sonic hedgehog for induction of distinct ventral cell types. Nature 375, 322–325
    OpenUrlCrossRefPubMed
    1. Metherall J. E.,
    2. Waugh K.,
    3. Li H.
    (1996) Progesterone inhibits cholesterol biosynthesis in cultured cells. Accumulation of cholesterol precursors. J. Biol. Chem 271, 2627–2633
    OpenUrlAbstract/FREE Full Text
    1. Pera E. M.,
    2. Kessel M.
    (1997) Patterning of the chick forebrain anlage by the prechordal plate. Development 124, 4153–4162
    OpenUrlAbstract
    1. Porter J. A.,
    2. von Kessler D. P.,
    3. Ekker S. C.,
    4. Young K. E.,
    5. Lee J. J.,
    6. Moses K.,
    7. Beachy P. A.
    (1995) The product of hedgehog autoproteolytic cleavage active in local and long-range signalling. Nature 374, 363–366
    OpenUrlCrossRefPubMedWeb of Science
    1. Porter J. A.,
    2. Young K. E.,
    3. Beachy P. A.
    (1996) Cholesterol modification of hedgehog signaling proteins in animal development. Science 274, 255–259
    OpenUrlAbstract/FREE Full Text
    1. Rampini C.,
    2. Adriambinintsoa C.,
    3. Barbu V.,
    4. Maziere J. C.,
    5. Maziere C.,
    6. Roux C.
    (1989) Combined effects of AY9944 and plasma LDL (or whole plasma) on lymphocyte blastic transformation. Biochem. Pharmacol 38, 3887–3891
    OpenUrlCrossRefPubMed
    1. Roelink H.,
    2. Augsburger A.,
    3. Heemskerk J.,
    4. Korzh V.,
    5. Norlin S.,
    6. Ruiz i Altaba A.,
    7. Tanabe Y.,
    8. Placzek M.,
    9. Edlund T.,
    10. Jessell T. M.,
    11. Dodd J.
    (1994) Floor plate and motor neuron induction by vhh-1, a vertebrate homolog of hedgehog expressed by the notochord. Cell 76, 761–775
    OpenUrlCrossRefPubMedWeb of Science
    1. Roelink H.,
    2. Porter J. A.,
    3. Chiang C.,
    4. Tanabe Y.,
    5. Chang D. T.,
    6. Beachy P. A.,
    7. Jessell T. M.
    (1995) Floor plate and motor neuron induction bydifferent concentrations of the amino-terminal cleavage product of sonic hedgehog autoproteolysis. Cell 81, 445–455
    OpenUrlCrossRefPubMedWeb of Science
    1. Roessler E.,
    2. Belloni E.,
    3. Gaudenz K.,
    4. Jay P.,
    5. Berta P.,
    6. Scherer S. W.,
    7. Tsui L. C.,
    8. Muenke M.
    (1996) Mutations in the human Sonic Hedgehog gene cause holoprosencephaly. Nat. Genet 14, 357–360
    OpenUrlCrossRefPubMedWeb of Science
    1. Roux C.,
    2. Aubry M.
    (1966) Action teratogene chez le rat d'un inhibiteur de la synthese du cholesterol, le AY 9944. C. R. Seances Soc. Biol. Fil 160, 1353–1357
    OpenUrlPubMedWeb of Science
    1. Ruiz i Altaba A.,
    2. Placzek M.,
    3. Baldassare M.,
    4. Dodd J.,
    5. Jessell T. M.
    (1995) Early stages of notochord and floor plate development in the chick embryo defined by normal and induced expression of HNF-3 beta. Dev. Biol 170, 299–313
    OpenUrlCrossRefPubMedWeb of Science
    1. Stefanova I.,
    2. Horejsi V.,
    3. Ansotegui I. J.,
    4. Knapp W.,
    5. Stockinger H.
    (1991) GPI-anchored cell-surface molecules complexed to protein tyrosine kinases. Science 254, 1016–1019
    OpenUrlAbstract/FREE Full Text
    1. Stone D. M.,
    2. Hynes M.,
    3. Armanini M.,
    4. Swanson T. A.,
    5. Gu Q.,
    6. Johnson R. L.,
    7. Scott M. P.,
    8. Pennica D.,
    9. Goddard A.,
    10. Phillips H.,
    11. Noll M.,
    12. Hooper J. E.,
    13. de Sauvage F.,
    14. Rosenthal A.
    (1996) The tumour-suppressor gene patched encodes a candidate receptor for Sonic hedgehog. Nature 384, 129–134
    OpenUrlCrossRefPubMedWeb of Science
    1. Tabata T.,
    2. Kornberg T. B.
    (1994) Hedgehog is a signaling protein with a key role in patterning Drosophila imaginal discs. Cell 76, 89–102
    OpenUrlCrossRefPubMedWeb of Science
    1. Tanabe Y.,
    2. Roelink H.,
    3. Jessell T. M.
    (1995) Induction of motor neurons by Sonic hedgehog is independent of floor plate differentiation. Curr. Biol 5, 651–658
    OpenUrlCrossRefPubMedWeb of Science
    1. Tanabe Y.,
    2. Jessell T. M.
    (1996) Diversity and pattern in the developing spinal cord. Science 274, 1115–1123
    OpenUrlAbstract/FREE Full Text
    1. Tint G. S.,
    2. Irons M.,
    3. Elias E. R.,
    4. Batta A. K.,
    5. Frieden R.,
    6. Chen T. S.,
    7. Salen G.
    (1994) Defective cholesterol biosynthesis associated with the Smith-Lemli-Opitz syndrome. N. Engl. J. Med 330, 107–113
    OpenUrlCrossRefPubMedWeb of Science
    1. Tsuchida T.,
    2. Ensini M.,
    3. Morton S. B.,
    4. Baldassare M.,
    5. Edlund T.,
    6. Jessell T. M.,
    7. Pfaff S. L.
    (1994) Topographic organization of embryonic motor neurons defined by expression of LIM homeobox genes. Cell 79, 957–970
    OpenUrlCrossRefPubMedWeb of Science
    1. van den Heuvel M.,
    2. Ingham P. W.
    (1996) Smoothened encodes a receptor-like serpentine protein required for hedgehog signalling. Nature 382, 547–551
    OpenUrlCrossRefPubMedWeb of Science
    1. Willnow T. E.,
    2. Hilpert J.,
    3. Armstrong S. A.,
    4. Rohlmann A.,
    5. Hammer R. E.,
    6. Burns D. E.,
    7. Herz J.
    (1996) Defective forebrain development in mice lacking gp330/megalin. Proc. Natl. Acad. Sci. USA 93, 8460–8464
    OpenUrlAbstract/FREE Full Text
    1. Wolf C.,
    2. Chevy F.,
    3. Pham J.,
    4. Kolf Clauw M.,
    5. Citadelle D.,
    6. Mulliez N.,
    7. Roux C.
    (1996) Changes in serum sterols of rats treated with 7-dehydrocholesterol-delta 7-reductase inhibitors: comparison to levels in humans with Smith-Lemli-Opitz syndrome. J. Lipid Res 37, 1325–1333
    OpenUrlAbstract
    1. Yamada T.,
    2. Pfaff S. L.,
    3. Edlund T.,
    4. Jessell T. M.
    (1993) Control of cell pattern in the neural tube: motor neuron induction by diffusible factors from notochord and floor plate. Cell 73, 673–686
    OpenUrlCrossRefPubMedWeb of Science
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JOURNAL ARTICLES
The teratogenic Veratrum alkaloid cyclopamine inhibits sonic hedgehog signal transduction
J.P. Incardona, W. Gaffield, R.P. Kapur, H. Roelink
Development 1998 125: 3553-3562;
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JOURNAL ARTICLES
The teratogenic Veratrum alkaloid cyclopamine inhibits sonic hedgehog signal transduction
J.P. Incardona, W. Gaffield, R.P. Kapur, H. Roelink
Development 1998 125: 3553-3562;

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