Skip to main content
Top
Published in: Child's Nervous System 10/2019

01-10-2019 | Syringomyelia | Special Annual Issue

Chiari malformation type I: what information from the genetics?

Authors: Valeria Capra, Michele Iacomino, Andrea Accogli, Marco Pavanello, Federico Zara, Armando Cama, Patrizia De Marco

Published in: Child's Nervous System | Issue 10/2019

Login to get access

Abstract

Purpose

Chiari malformation type I (CMI), a rare disorder of the craniocerebral junction with an estimated incidence of 1 in 1280, is characterized by the downward herniation of the cerebellar tonsils of at least 5 mm through the foramen magnum, resulting in significant neurologic morbidity. Classical CMI is thought to be caused by an underdeveloped occipital bone, resulting in a posterior cranial fossa which is too small to accommodate the normal-sized cerebellum. In this review, we dissect the lines of evidence supporting a genetic contribution for this disorder.

Methods

We present the results of two types of approaches: animal models and human studies encompassing different study designs such as whole genome linkage analysis, case-control association studies, and expression studies. The update of the literature also includes the most recent findings emerged by whole exome sequencing strategy.

Results

Despite evidence for a genetic component, no major genes have been identified and the genetics of CMI is still very much unknown. One major challenge is the variability of clinical presentation within CMI patient population that reflects an underlying genetic heterogeneity.

Conclusions

The identification of the genes that contribute to the etiology of CMI will provide an important step to the understanding of the underlying pathology. The finding of a predisposing gene may lead to the development of simple and accurate diagnostic tests for better prognosis, counseling, and clinical management of patients and their relatives.
Literature
1.
go back to reference Barkovich AJ, Wippold FJ, Sherman JL, Citrin CM (1986) Significance of cerebellar tonsillar position on MR. AJNR Am J Neuroradiol 7:795–799PubMedPubMedCentral Barkovich AJ, Wippold FJ, Sherman JL, Citrin CM (1986) Significance of cerebellar tonsillar position on MR. AJNR Am J Neuroradiol 7:795–799PubMedPubMedCentral
2.
go back to reference Mueller DM, Oro’ JJ (2004) Prospective analysis of presenting symptoms among 265 patients with radiographic evidence of Chiari malformation type I with or without syringomyelia. J Am Acad Nurse Pract 16:134–138CrossRefPubMed Mueller DM, Oro’ JJ (2004) Prospective analysis of presenting symptoms among 265 patients with radiographic evidence of Chiari malformation type I with or without syringomyelia. J Am Acad Nurse Pract 16:134–138CrossRefPubMed
3.
go back to reference Elster AD, Chen MY (1992) Chiari I malformations: clinical and radiologic reappraisal. Radiology 183(2):347–353CrossRefPubMed Elster AD, Chen MY (1992) Chiari I malformations: clinical and radiologic reappraisal. Radiology 183(2):347–353CrossRefPubMed
4.
go back to reference Meadows J, Kraut M, Guarnieri M, Haroun RI, Carson BS (2000) Asymptomatic Chiari type I malformations identified on magnetic resonance imaging. J Neurosurg 92(6):920–926CrossRefPubMed Meadows J, Kraut M, Guarnieri M, Haroun RI, Carson BS (2000) Asymptomatic Chiari type I malformations identified on magnetic resonance imaging. J Neurosurg 92(6):920–926CrossRefPubMed
5.
go back to reference Milhorat TH, Chou MW, Trinidad EM, Kula RW, Mandell M, Wolpert C, Speer MC (1999) Chiari I malformation redefined: clinical and radiographic findings for 364 symptomatic patients. Neurosurgery 44:1005–1017CrossRefPubMed Milhorat TH, Chou MW, Trinidad EM, Kula RW, Mandell M, Wolpert C, Speer MC (1999) Chiari I malformation redefined: clinical and radiographic findings for 364 symptomatic patients. Neurosurgery 44:1005–1017CrossRefPubMed
6.
go back to reference Fernández AA, Guerrero AI, Martínez MI, Vázquez ME, Fernández JB, Chesa i, Octavio E et al (2009) Malformations of the craniocervical junction (Chiari type I and syringomyelia: classification, diagnosis and treatment). BMC Musculoskelet Disord 10(Suppl 1):S1CrossRefPubMed Fernández AA, Guerrero AI, Martínez MI, Vázquez ME, Fernández JB, Chesa i, Octavio E et al (2009) Malformations of the craniocervical junction (Chiari type I and syringomyelia: classification, diagnosis and treatment). BMC Musculoskelet Disord 10(Suppl 1):S1CrossRefPubMed
7.
go back to reference Greenlee JD, Donovan KA, Hasan DM, Menezes AH (2002) Chiari I malformation in the very young child: the spectrum of presentations and experience in 31 children under age 6 years. Pediatrics 110:1212–1219CrossRefPubMed Greenlee JD, Donovan KA, Hasan DM, Menezes AH (2002) Chiari I malformation in the very young child: the spectrum of presentations and experience in 31 children under age 6 years. Pediatrics 110:1212–1219CrossRefPubMed
8.
go back to reference Martinot A, Hue V, Leclerc F, Vallee L, Closset M, Pruvo JP (1993) Sudden death revealing Chiari type 1 malformation in two children. Intensive Care Med 19:73–74CrossRefPubMed Martinot A, Hue V, Leclerc F, Vallee L, Closset M, Pruvo JP (1993) Sudden death revealing Chiari type 1 malformation in two children. Intensive Care Med 19:73–74CrossRefPubMed
9.
go back to reference Milhorat TH, Nishikawa M, Kula RW et al (2010) Mechanisms of cerebellar tonsil herniation in patients with Chiari malformations as guide to clinical management (1010). Acta Neurochir 152:1117–1127CrossRefPubMed Milhorat TH, Nishikawa M, Kula RW et al (2010) Mechanisms of cerebellar tonsil herniation in patients with Chiari malformations as guide to clinical management (1010). Acta Neurochir 152:1117–1127CrossRefPubMed
10.
go back to reference Tubbs RS, Beckman J, Naftel RP, Chern JJ, Wellons JC, Rozzelle CJ, Blount JP, Oakes WJ (2011) Institutional experience with 500 cases of surgically treated pediatric Chiari malformation type I. J Neurosurg Pediatr 7:248–256CrossRefPubMed Tubbs RS, Beckman J, Naftel RP, Chern JJ, Wellons JC, Rozzelle CJ, Blount JP, Oakes WJ (2011) Institutional experience with 500 cases of surgically treated pediatric Chiari malformation type I. J Neurosurg Pediatr 7:248–256CrossRefPubMed
11.
go back to reference Small JA, Sheridan PH (1996) Research priorities for syringomyelia: a National Institute of Neurological Disorders and Stroke workshop summary. Neurology 46:577–582CrossRefPubMed Small JA, Sheridan PH (1996) Research priorities for syringomyelia: a National Institute of Neurological Disorders and Stroke workshop summary. Neurology 46:577–582CrossRefPubMed
12.
go back to reference Speer MC, Enterline DS, Mehltretter L, Hammock P, Joseph J, Dickerson M et al (2003) Chiari type I malformation with or without syringomyelia: prevalence and genetics. J Genet Couns 12:297–311CrossRefPubMed Speer MC, Enterline DS, Mehltretter L, Hammock P, Joseph J, Dickerson M et al (2003) Chiari type I malformation with or without syringomyelia: prevalence and genetics. J Genet Couns 12:297–311CrossRefPubMed
13.
go back to reference Stovner LJ, Cappelen J, Nilsen G, Sjaastad O (1992) The Chiari type I malformation in two monozygotic twins and first-degree relatives. Ann Neurol 31:220–222CrossRefPubMed Stovner LJ, Cappelen J, Nilsen G, Sjaastad O (1992) The Chiari type I malformation in two monozygotic twins and first-degree relatives. Ann Neurol 31:220–222CrossRefPubMed
14.
go back to reference Cavender RK, Schmidt JH (1995) Tonsillar ectopia and Chiari malformations: monozygotic triplets. Case report. J Neurosurg 82:497–500CrossRefPubMed Cavender RK, Schmidt JH (1995) Tonsillar ectopia and Chiari malformations: monozygotic triplets. Case report. J Neurosurg 82:497–500CrossRefPubMed
15.
go back to reference Turgut M (2001) Chiari type I malformation in two monozygotic twins. Brit J Neurosurg 15:279–280CrossRef Turgut M (2001) Chiari type I malformation in two monozygotic twins. Brit J Neurosurg 15:279–280CrossRef
16.
go back to reference Speer MC, George TM, Enterline DS, Franklin A, Wolpert CM, Milhorat TH (2000) A genetic hypothesis for Chiari I malformation with or without syringomyelia. Neurosurg Focus 8:E12CrossRefPubMed Speer MC, George TM, Enterline DS, Franklin A, Wolpert CM, Milhorat TH (2000) A genetic hypothesis for Chiari I malformation with or without syringomyelia. Neurosurg Focus 8:E12CrossRefPubMed
17.
go back to reference Afifi AK, Dolan KD, Van Gilder JC, Fincham RW (1988) Ventriculomegaly in neurofibromatosis-1. Association with Chiari type I malformation. Neurofibromatosis 1:299–305PubMed Afifi AK, Dolan KD, Van Gilder JC, Fincham RW (1988) Ventriculomegaly in neurofibromatosis-1. Association with Chiari type I malformation. Neurofibromatosis 1:299–305PubMed
18.
go back to reference Cohen MM Jr, Kreiborg S (1992) Birth prevalence studies of the Crouzon syndrome comparison of direct and indirect methods. Clin Genet 41:12–15CrossRefPubMed Cohen MM Jr, Kreiborg S (1992) Birth prevalence studies of the Crouzon syndrome comparison of direct and indirect methods. Clin Genet 41:12–15CrossRefPubMed
19.
go back to reference Dooley J, Vaughan D, Riding M, Camfield P (1993) The association of Chiari type I malformation and neurofibromatosis type I. Clin Pediatr (Phila) 32:189–190CrossRef Dooley J, Vaughan D, Riding M, Camfield P (1993) The association of Chiari type I malformation and neurofibromatosis type I. Clin Pediatr (Phila) 32:189–190CrossRef
20.
go back to reference Pober BR, Filiano JJ (1995) Association of Chiari I malformation and Williams syndrome. Pediatr Neurol 12:84–88CrossRefPubMed Pober BR, Filiano JJ (1995) Association of Chiari I malformation and Williams syndrome. Pediatr Neurol 12:84–88CrossRefPubMed
21.
go back to reference Fujisawa H, Hasegawa M, Kida S, Yamashita J (2002) A novel fibroblast growth factor receptor 2 mutation in Crouzon syndrome associated with Chiari type I malformation and syringomyelia. J Neurosurg 97:396–400CrossRefPubMed Fujisawa H, Hasegawa M, Kida S, Yamashita J (2002) A novel fibroblast growth factor receptor 2 mutation in Crouzon syndrome associated with Chiari type I malformation and syringomyelia. J Neurosurg 97:396–400CrossRefPubMed
22.
go back to reference Caldemeyer KS, Boaz JC, Wappner RS, Moran CC, Smith RR, Quets JP (1995) Chiari 1 malformation: association with hypophosphatemic rickets and MR imaging appearance. Radiology 195:733–738CrossRefPubMed Caldemeyer KS, Boaz JC, Wappner RS, Moran CC, Smith RR, Quets JP (1995) Chiari 1 malformation: association with hypophosphatemic rickets and MR imaging appearance. Radiology 195:733–738CrossRefPubMed
23.
go back to reference Dietz HC, Cutting GR, Pyeritz RE, Maslen CL, Sakai LY, Corson GM, Puffenberger EG, Hamosh A, Nanthakumar EJ, Curristin SM, Stetten G, Meyers DA, Francomano CA (1991) Marfan syndrome caused by a recurrent de novo missense mutation in the fibrillin gene. Nature 352:337–339CrossRefPubMed Dietz HC, Cutting GR, Pyeritz RE, Maslen CL, Sakai LY, Corson GM, Puffenberger EG, Hamosh A, Nanthakumar EJ, Curristin SM, Stetten G, Meyers DA, Francomano CA (1991) Marfan syndrome caused by a recurrent de novo missense mutation in the fibrillin gene. Nature 352:337–339CrossRefPubMed
24.
go back to reference Dietz HC, Sood S, Mcintosh J (1995) The phenotypic continuum associated with Fbn1 mutations includes the Shprintzen-Goldberg syndrome. Am J Hum Genet 57:1214 Dietz HC, Sood S, Mcintosh J (1995) The phenotypic continuum associated with Fbn1 mutations includes the Shprintzen-Goldberg syndrome. Am J Hum Genet 57:1214
25.
go back to reference Iglesias-Osma C, Gomez Sanchez JC, Suquia MB, Querol PR, de Portugal AJ (1997) Paget’s disease of bone and basilar impression associated with an Arnold-Chiari type-1 malformation. An Med Interna 14:519–522PubMed Iglesias-Osma C, Gomez Sanchez JC, Suquia MB, Querol PR, de Portugal AJ (1997) Paget’s disease of bone and basilar impression associated with an Arnold-Chiari type-1 malformation. An Med Interna 14:519–522PubMed
26.
go back to reference Milhorat TH, Bolognese PA, Nishikawa M, McDonnell NB, Francomano CA (2007) Syndrome of occipitoatlantoaxial hypermobility, cranial settling, and chiari malformation type I in patients with hereditary disorders of connective tissue. J Neurosurg Spine 7(6):601–609CrossRefPubMed Milhorat TH, Bolognese PA, Nishikawa M, McDonnell NB, Francomano CA (2007) Syndrome of occipitoatlantoaxial hypermobility, cranial settling, and chiari malformation type I in patients with hereditary disorders of connective tissue. J Neurosurg Spine 7(6):601–609CrossRefPubMed
27.
go back to reference Hamilton J, Blaser S, Daneman D (1998) MR imaging in idiopathic growth hormone deficiency. AJNR Am J Neuroradiol 19:1609–1615PubMedPubMedCentral Hamilton J, Blaser S, Daneman D (1998) MR imaging in idiopathic growth hormone deficiency. AJNR Am J Neuroradiol 19:1609–1615PubMedPubMedCentral
28.
go back to reference Lindsay R, Feldkamp M, Harris D, Robertson J, Rallison M (1994) Utah Growth Study: growth standards and the prevalence of growth hormone deficiency. J Pediatr 125:29–35CrossRefPubMed Lindsay R, Feldkamp M, Harris D, Robertson J, Rallison M (1994) Utah Growth Study: growth standards and the prevalence of growth hormone deficiency. J Pediatr 125:29–35CrossRefPubMed
29.
go back to reference Kuether TA, Piatt JH (1998) Chiari malformation associated with vitamin D resistant rickets case report. Neurosurgery 42:1168–1171CrossRefPubMed Kuether TA, Piatt JH (1998) Chiari malformation associated with vitamin D resistant rickets case report. Neurosurgery 42:1168–1171CrossRefPubMed
30.
go back to reference Marin-Padilla M, Marin-Padilla TM (1981) Morphogenesis of experimentally induced Arnold–Chiari malformation. J Neurol Sci 50:29–55CrossRefPubMed Marin-Padilla M, Marin-Padilla TM (1981) Morphogenesis of experimentally induced Arnold–Chiari malformation. J Neurol Sci 50:29–55CrossRefPubMed
31.
go back to reference Noudel R, Jovenin N, Eap C, Scherpereel B, Pierot L, Rousseaux P (2009) Incidence of basioccipital hypoplasia in Chiari malformation type I: comparative morphometric study of the posterior cranial fossa. Clinical article. J Neurosurg 111(5):1046–1052CrossRefPubMed Noudel R, Jovenin N, Eap C, Scherpereel B, Pierot L, Rousseaux P (2009) Incidence of basioccipital hypoplasia in Chiari malformation type I: comparative morphometric study of the posterior cranial fossa. Clinical article. J Neurosurg 111(5):1046–1052CrossRefPubMed
32.
go back to reference Bernard S, Loukas M, Rizk E, Oskouian RJ, Delashaw J, Tubbs RS (2015) The human occipital bone: review and update on its embryology and molecular development. Childs Nerv Syst 31(12):2217–2223CrossRefPubMed Bernard S, Loukas M, Rizk E, Oskouian RJ, Delashaw J, Tubbs RS (2015) The human occipital bone: review and update on its embryology and molecular development. Childs Nerv Syst 31(12):2217–2223CrossRefPubMed
33.
35.
go back to reference Pownall ME, Isaacs HV (2010) FGF signalling in vertebrate development. Morgan & Claypool Life Sciences, San RafaelCrossRef Pownall ME, Isaacs HV (2010) FGF signalling in vertebrate development. Morgan & Claypool Life Sciences, San RafaelCrossRef
37.
go back to reference Nie X, Luukko K, Kettunen P (2006) FGF signalling in craniofacial development and developmental disorders. Oral Dis 12:102–111CrossRefPubMed Nie X, Luukko K, Kettunen P (2006) FGF signalling in craniofacial development and developmental disorders. Oral Dis 12:102–111CrossRefPubMed
38.
go back to reference Liu C-F, Samsa WE, Zhou G, Lefebvre V (2017) Transcriptional control of chondrocyte specification and differentiation. Semin Cell Dev Biol 62:34–49CrossRefPubMed Liu C-F, Samsa WE, Zhou G, Lefebvre V (2017) Transcriptional control of chondrocyte specification and differentiation. Semin Cell Dev Biol 62:34–49CrossRefPubMed
39.
go back to reference Ziros PG, Basdra EK, Papavassiliou AG (2008) Runx2: of bone and stretch. Int J Biochem Cell Biol 40(9):1659–16663CrossRefPubMed Ziros PG, Basdra EK, Papavassiliou AG (2008) Runx2: of bone and stretch. Int J Biochem Cell Biol 40(9):1659–16663CrossRefPubMed
40.
go back to reference Rusbridge C, Knowler SP (2003) Hereditary aspects of occipital bone hypoplasia and syringomyelia (Chiari type I malformation) in cavalier King Charles spaniels. Vet Record 153:107–112CrossRefPubMed Rusbridge C, Knowler SP (2003) Hereditary aspects of occipital bone hypoplasia and syringomyelia (Chiari type I malformation) in cavalier King Charles spaniels. Vet Record 153:107–112CrossRefPubMed
41.
go back to reference Rusbridge C, Knowler SP (2004) Inheritance of occipital bone hypoplasia (Chiari type I malformation) in Cavalier King Charles spaniels. J Vet Int Med 18:673–678CrossRef Rusbridge C, Knowler SP (2004) Inheritance of occipital bone hypoplasia (Chiari type I malformation) in Cavalier King Charles spaniels. J Vet Int Med 18:673–678CrossRef
42.
go back to reference Lemay P, Knowler SP, Bouasker S, Nédélec Y, Platt S, Freeman C, Child G, Barreiro LB, Rouleau GA, Rusbridge C, Kibar Z (2014) Quantitative trait loci (QTL) study identifies novel genomic regions associated to Chiari-like malformation in Griffon Bruxellois dogs. PLoS One 9(4):e89816CrossRefPubMedPubMedCentral Lemay P, Knowler SP, Bouasker S, Nédélec Y, Platt S, Freeman C, Child G, Barreiro LB, Rouleau GA, Rusbridge C, Kibar Z (2014) Quantitative trait loci (QTL) study identifies novel genomic regions associated to Chiari-like malformation in Griffon Bruxellois dogs. PLoS One 9(4):e89816CrossRefPubMedPubMedCentral
43.
go back to reference Ancot F, Lemay P, Knowler SP, Kennedy K, Griffiths S, Cherubini GB, Sykes J, Mandigers PJJ, Rouleau GA, Rusbridge C, Kibar Z (2018) A genome-wide association study identifies candidate loci associated to syringomyelia secondary to Chiari-like malformation in Cavalier King Charles Spaniels. BMC Genet 19(1):16CrossRefPubMedPubMedCentral Ancot F, Lemay P, Knowler SP, Kennedy K, Griffiths S, Cherubini GB, Sykes J, Mandigers PJJ, Rouleau GA, Rusbridge C, Kibar Z (2018) A genome-wide association study identifies candidate loci associated to syringomyelia secondary to Chiari-like malformation in Cavalier King Charles Spaniels. BMC Genet 19(1):16CrossRefPubMedPubMedCentral
44.
go back to reference Solis-Moruno M, de Manuel M, Hernandez-Rodriguez J, Fontsere C, Gomara-Castaño A, Valsera-Naranjo C, Crailsheim D, Navarro A (2017) Potential damaging mutation in LRP5 from genome sequencing of the first reported chimpanzee with the Chiari malformation. Sci Rep 7(1):15224CrossRefPubMedPubMedCentral Solis-Moruno M, de Manuel M, Hernandez-Rodriguez J, Fontsere C, Gomara-Castaño A, Valsera-Naranjo C, Crailsheim D, Navarro A (2017) Potential damaging mutation in LRP5 from genome sequencing of the first reported chimpanzee with the Chiari malformation. Sci Rep 7(1):15224CrossRefPubMedPubMedCentral
45.
go back to reference Markunas CA, Soldano K, Dunlap K, Cope H, Assimwe E, Stajich J, Enterline D, Grant G, Fuchs H, Gregory SG, Ashley-Koch AE (2013) Stratified whole genome linkage analysis of Chiari type I malformation implicates known Klippel-Feil syndrome genes as putative disease candidates. PLoS One 8:e615CrossRef Markunas CA, Soldano K, Dunlap K, Cope H, Assimwe E, Stajich J, Enterline D, Grant G, Fuchs H, Gregory SG, Ashley-Koch AE (2013) Stratified whole genome linkage analysis of Chiari type I malformation implicates known Klippel-Feil syndrome genes as putative disease candidates. PLoS One 8:e615CrossRef
46.
go back to reference Boyles AL, Enterline DS, Hammock PH, Siegel DG, Slifer SH, Mehltretter L et al (2006) Phenotypic definition of Chiari type I malformation coupled with high-density SNP genome screen shows significant evidence for linkage to regions on chromosomes 9 and 15. Am J Med Genet A 140:2776–2785CrossRefPubMed Boyles AL, Enterline DS, Hammock PH, Siegel DG, Slifer SH, Mehltretter L et al (2006) Phenotypic definition of Chiari type I malformation coupled with high-density SNP genome screen shows significant evidence for linkage to regions on chromosomes 9 and 15. Am J Med Genet A 140:2776–2785CrossRefPubMed
47.
go back to reference Urbizu A, Toma C, Poca MA, Sahuquillo J, Cuenca-Leo E, Cormand B, Macaya A (2013) Chiari malformation type I: a case-control association study of 58 developmental genes. PLoS One 8(2):e5724CrossRef Urbizu A, Toma C, Poca MA, Sahuquillo J, Cuenca-Leo E, Cormand B, Macaya A (2013) Chiari malformation type I: a case-control association study of 58 developmental genes. PLoS One 8(2):e5724CrossRef
48.
go back to reference Markunas CA, Enterline DS, Dunlap K, Soldano K, Cope H, Stajich J, Grant G, Fuchs H, Gregory SG, Ashley-Koch AE (2014) Genetic evaluation and application of posterior cranial fossa traits as endophenotypes for Chiari type I malformation. Ann Hum Genet 78(1):1–12CrossRefPubMed Markunas CA, Enterline DS, Dunlap K, Soldano K, Cope H, Stajich J, Grant G, Fuchs H, Gregory SG, Ashley-Koch AE (2014) Genetic evaluation and application of posterior cranial fossa traits as endophenotypes for Chiari type I malformation. Ann Hum Genet 78(1):1–12CrossRefPubMed
49.
go back to reference Lock EF, Soldano KL, Garrett ME, Cope H, Markunas CA, Fuchs H, Grant G, Dunson DB, Gregory SG, Ashley-Koch AE (2015) Joint eQTL assessment of whole blood and dura mater tissue from individuals with Chiari type I malformation. BMC Genomics 16:11CrossRefPubMedPubMedCentral Lock EF, Soldano KL, Garrett ME, Cope H, Markunas CA, Fuchs H, Grant G, Dunson DB, Gregory SG, Ashley-Koch AE (2015) Joint eQTL assessment of whole blood and dura mater tissue from individuals with Chiari type I malformation. BMC Genomics 16:11CrossRefPubMedPubMedCentral
50.
go back to reference Merello E., Tattini L, Magi A, Accogli A, Piatelli GL, Pavanello M, Tortora D, Cama A, Kibar Z, Capra V, De Marco P (2017) Exome sequencing of two Italian pedigrees with non-isolated Chiari malformation type I reveals candidate genes for cranio-facial development. Eur J Hum Genet 25:952–958 Merello E., Tattini L, Magi A, Accogli A, Piatelli GL, Pavanello M, Tortora D, Cama A, Kibar Z, Capra V, De Marco P (2017) Exome sequencing of two Italian pedigrees with non-isolated Chiari malformation type I reveals candidate genes for cranio-facial development. Eur J Hum Genet 25:952–958
51.
go back to reference Bamshad MJ, Ng SB, Shendure J (2011) Exome sequencing as a tool for Mendeleian disease gene discovery. Nature Review Genetics 12:745–755 Bamshad MJ, Ng SB, Shendure J (2011) Exome sequencing as a tool for Mendeleian disease gene discovery. Nature Review Genetics 12:745–755
52.
go back to reference Ng SB, Turner EH, Robertson PD, Flygare SD, Bigham AW, Lee C, Shaffer T, Wong M, Bhattacharjee A, Elcher EE, Bamshad M, Nickerson DA, Shendure J (2009) Targeted capture and massively parallel sequencing of 12 human exomes. Nature 461:272–276 Ng SB, Turner EH, Robertson PD, Flygare SD, Bigham AW, Lee C, Shaffer T, Wong M, Bhattacharjee A, Elcher EE, Bamshad M, Nickerson DA, Shendure J (2009) Targeted capture and massively parallel sequencing of 12 human exomes. Nature 461:272–276
53.
go back to reference Nilda A, Hiroko T, Kasai M, Furukawa Y, Nakamura Y, Suzuki Y, Sugano S, Akiyama (2004) DKK1, a negative regulator of Wnt signaling, is a target of the beta-catenin/TCF pathway. Oncogene 23:8520–8526 Nilda A, Hiroko T, Kasai M, Furukawa Y, Nakamura Y, Suzuki Y, Sugano S, Akiyama (2004) DKK1, a negative regulator of Wnt signaling, is a target of the beta-catenin/TCF pathway. Oncogene 23:8520–8526
54.
go back to reference Mukhopadhyay M, Shtrom S, Rodriguez-Esteban C, Chen L, Tsukui T, Gomer L, et al (2001) Dickkopf1 is required for embryonic head induction and limb morphogenesis in the mouse. Developmental Cell 1:423–434 Mukhopadhyay M, Shtrom S, Rodriguez-Esteban C, Chen L, Tsukui T, Gomer L, et al (2001) Dickkopf1 is required for embryonic head induction and limb morphogenesis in the mouse. Developmental Cell 1:423–434
55.
go back to reference Choi HY, Dieckmann M, Herz J, Niemeier A (2009) Lrp4, a novel receptor for Dickkopf 1 and Sclerostin, is expressed by osteoblasts and regulates bone growth and turnover in vivo. Plos ONE 4(11):e7930 Choi HY, Dieckmann M, Herz J, Niemeier A (2009) Lrp4, a novel receptor for Dickkopf 1 and Sclerostin, is expressed by osteoblasts and regulates bone growth and turnover in vivo. Plos ONE 4(11):e7930
56.
go back to reference Johnson EB, Hammer RE, Herz J (2005) Abnornal development of the apical ectodermal ridge and polysyndactyly in Megf7-deficient mice. Hum Mol Genet 14:3523–3538 Johnson EB, Hammer RE, Herz J (2005) Abnornal development of the apical ectodermal ridge and polysyndactyly in Megf7-deficient mice. Hum Mol Genet 14:3523–3538
Metadata
Title
Chiari malformation type I: what information from the genetics?
Authors
Valeria Capra
Michele Iacomino
Andrea Accogli
Marco Pavanello
Federico Zara
Armando Cama
Patrizia De Marco
Publication date
01-10-2019
Publisher
Springer Berlin Heidelberg
Published in
Child's Nervous System / Issue 10/2019
Print ISSN: 0256-7040
Electronic ISSN: 1433-0350
DOI
https://doi.org/10.1007/s00381-019-04322-w

Other articles of this Issue 10/2019

Child's Nervous System 10/2019 Go to the issue