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Thoracic dysplasia

MedGen UID:
853272
Concept ID:
C1406921
Congenital Abnormality
HPO: HP:0006644

Conditions with this feature

Short-rib thoracic dysplasia 6 with or without polydactyly
MedGen UID:
44252
Concept ID:
C0024507
Disease or Syndrome
Short-rib thoracic dysplasia (SRTD) with or without polydactyly refers to a group of autosomal recessive skeletal ciliopathies that are characterized by a constricted thoracic cage, short ribs, shortened tubular bones, and a 'trident' appearance of the acetabular roof. SRTD encompasses Ellis-van Creveld syndrome (EVC) and the disorders previously designated as Jeune syndrome or asphyxiating thoracic dystrophy (ATD), short rib-polydactyly syndrome (SRPS), and Mainzer-Saldino syndrome (MZSDS). Polydactyly is variably present, and there is phenotypic overlap in the various forms of SRTDs, which differ by visceral malformation and metaphyseal appearance. Nonskeletal involvement can include cleft lip/palate as well as anomalies of major organs such as the brain, eye, heart, kidneys, liver, pancreas, intestines, and genitalia. Some forms of SRTD are lethal in the neonatal period due to respiratory insufficiency secondary to a severely restricted thoracic cage, whereas others are compatible with life (summary by Huber and Cormier-Daire, 2012 and Schmidts et al., 2013). There is phenotypic overlap with the cranioectodermal dysplasias (Sensenbrenner syndrome; see CED1, 218330). For a discussion of genetic heterogeneity of short-rib thoracic dysplasia, see SRTD1 (208500).
Type IV short rib polydactyly syndrome
MedGen UID:
96578
Concept ID:
C0432198
Disease or Syndrome
Short-rib thoracic dysplasia (SRTD) with or without polydactyly refers to a group of autosomal recessive skeletal ciliopathies that are characterized by a constricted thoracic cage, short ribs, shortened tubular bones, and a 'trident' appearance of the acetabular roof. SRTD encompasses Ellis-van Creveld syndrome (EVC) and the disorders previously designated as Jeune syndrome or asphyxiating thoracic dystrophy (ATD), short rib-polydactyly syndrome (SRPS), and Mainzer-Saldino syndrome (MZSDS). Polydactyly is variably present, and there is phenotypic overlap in the various forms of SRTDs, which differ by visceral malformation and metaphyseal appearance. Nonskeletal involvement can include cleft lip/palate as well as anomalies of major organs such as the brain, eye, heart, kidneys, liver, pancreas, intestines, and genitalia. Some forms of SRTD are lethal in the neonatal period due to respiratory insufficiency secondary to a severely restricted thoracic cage, whereas others are compatible with life (summary by Huber and Cormier-Daire, 2012 and Schmidts et al., 2013). There is phenotypic overlap with the cranioectodermal dysplasias (Sensenbrenner syndrome; see CED1, 218330). Patients with a clinical diagnosis of Beemer-Langer syndrome have been found to carry mutations in the IFT80 gene (611177); see SRTD2, 611263. For a discussion of genetic heterogeneity of short-rib thoracic dysplasia, see SRTD1 (208500).
Short-rib thoracic dysplasia 7 with or without polydactyly
MedGen UID:
481422
Concept ID:
C3279792
Disease or Syndrome
Short-rib thoracic dysplasia (SRTD) with or without polydactyly refers to a group of autosomal recessive skeletal ciliopathies that are characterized by a constricted thoracic cage, short ribs, shortened tubular bones, and a 'trident' appearance of the acetabular roof. SRTD encompasses Ellis-van Creveld syndrome (EVC) and the disorders previously designated as Jeune syndrome or asphyxiating thoracic dystrophy (ATD), short rib-polydactyly syndrome (SRPS), and Mainzer-Saldino syndrome (MZSDS). Polydactyly is variably present, and there is phenotypic overlap in the various forms of SRTDs, which differ by visceral malformation and metaphyseal appearance. Nonskeletal involvement can include cleft lip/palate as well as anomalies of major organs such as the brain, eye, heart, kidneys, liver, pancreas, intestines, and genitalia. Some forms of SRTD are lethal in the neonatal period due to respiratory insufficiency secondary to a severely restricted thoracic cage, whereas others are compatible with life (summary by Huber and Cormier-Daire, 2012 and Schmidts et al., 2013). There is phenotypic overlap with the cranioectodermal dysplasias (Sensenbrenner syndrome; see CED1, 218330). For a discussion of genetic heterogeneity of short-rib thoracic dysplasia, see SRTD1 (208500).
Asphyxiating thoracic dystrophy 5
MedGen UID:
482228
Concept ID:
C3280598
Disease or Syndrome
Short-rib thoracic dysplasia (SRTD) with or without polydactyly refers to a group of autosomal recessive skeletal ciliopathies that are characterized by a constricted thoracic cage, short ribs, shortened tubular bones, and a 'trident' appearance of the acetabular roof. SRTD encompasses Ellis-van Creveld syndrome (EVC) and the disorders previously designated as Jeune syndrome or asphyxiating thoracic dystrophy (ATD), short rib-polydactyly syndrome (SRPS), and Mainzer-Saldino syndrome (MZSDS). Polydactyly is variably present, and there is phenotypic overlap in the various forms of SRTDs, which differ by visceral malformation and metaphyseal appearance. Nonskeletal involvement can include cleft lip/palate as well as anomalies of major organs such as the brain, eye, heart, kidneys, liver, pancreas, intestines, and genitalia. Some forms of SRTD are lethal in the neonatal period due to respiratory insufficiency secondary to a severely restricted thoracic cage, whereas others are compatible with life (summary by Huber and Cormier-Daire, 2012 and Schmidts et al., 2013). There is phenotypic overlap with the cranioectodermal dysplasias (Sensenbrenner syndrome; see CED1, 218330). For a discussion of genetic heterogeneity of short-rib thoracic dysplasia, see SRTD1 (208500).
Short-rib thoracic dysplasia 8 with or without polydactyly
MedGen UID:
816021
Concept ID:
C3809691
Disease or Syndrome
Short-rib thoracic dysplasia (SRTD) with or without polydactyly refers to a group of autosomal recessive skeletal ciliopathies that are characterized by a constricted thoracic cage, short ribs, shortened tubular bones, and a 'trident' appearance of the acetabular roof. SRTD encompasses Ellis-van Creveld syndrome (EVC) and the disorders previously designated as Jeune syndrome or asphyxiating thoracic dystrophy (ATD), short rib-polydactyly syndrome (SRPS), and Mainzer-Saldino syndrome (MZSDS). Polydactyly is variably present, and there is phenotypic overlap in the various forms of SRTDs, which differ by visceral malformation and metaphyseal appearance. Nonskeletal involvement can include cleft lip/palate as well as anomalies of major organs such as the brain, eye, heart, kidneys, liver, pancreas, intestines, and genitalia. Some forms of SRTD are lethal in the neonatal period due to respiratory insufficiency secondary to a severely restricted thoracic cage, whereas others are compatible with life (summary by Huber and Cormier-Daire, 2012 and Schmidts et al., 2013). There is phenotypic overlap with the cranioectodermal dysplasias (Sensenbrenner syndrome; see CED1, 218330). For a discussion of genetic heterogeneity of short-rib thoracic dysplasia, see SRTD1 (208500).
Short-rib thoracic dysplasia 10 with or without polydactyly
MedGen UID:
816505
Concept ID:
C3810175
Disease or Syndrome
Short-rib thoracic dysplasia (SRTD) with or without polydactyly refers to a group of autosomal recessive skeletal ciliopathies that are characterized by a constricted thoracic cage, short ribs, shortened tubular bones, and a 'trident' appearance of the acetabular roof. SRTD encompasses Ellis-van Creveld syndrome (EVC) and the disorders previously designated as Jeune syndrome or asphyxiating thoracic dystrophy (ATD), short rib-polydactyly syndrome (SRPS), and Mainzer-Saldino syndrome (MZSDS). Polydactyly is variably present, and there is phenotypic overlap in the various forms of SRTDs, which differ by visceral malformation and metaphyseal appearance. Nonskeletal involvement can include cleft lip/palate as well as anomalies of major organs such as the brain, eye, heart, kidneys, liver, pancreas, intestines, and genitalia. Some forms of SRTD are lethal in the neonatal period due to respiratory insufficiency secondary to a severely restricted thoracic cage, whereas others are compatible with life (summary by Huber and Cormier-Daire, 2012 and Schmidts et al., 2013). There is phenotypic overlap with the cranioectodermal dysplasias (Sensenbrenner syndrome; see CED1, 218330). For a discussion of genetic heterogeneity of short-rib thoracic dysplasia, see SRTD1 (208500).
Short-rib thoracic dysplasia 11 with or without polydactyly
MedGen UID:
816530
Concept ID:
C3810200
Disease or Syndrome
Short-rib thoracic dysplasia (SRTD) with or without polydactyly refers to a group of autosomal recessive skeletal ciliopathies that are characterized by a constricted thoracic cage, short ribs, shortened tubular bones, and a 'trident' appearance of the acetabular roof. SRTD encompasses Ellis-van Creveld syndrome (EVC) and the disorders previously designated as Jeune syndrome or asphyxiating thoracic dystrophy (ATD), short rib-polydactyly syndrome (SRPS), and Mainzer-Saldino syndrome (MZSDS). Polydactyly is variably present, and there is phenotypic overlap in the various forms of SRTDs, which differ by visceral malformation and metaphyseal appearance. Nonskeletal involvement can include cleft lip/palate as well as anomalies of major organs such as the brain, eye, heart, kidneys, liver, pancreas, intestines, and genitalia. Some forms of SRTD are lethal in the neonatal period due to respiratory insufficiency secondary to a severely restricted thoracic cage, whereas others are compatible with life (summary by Huber and Cormier-Daire, 2012 and Schmidts et al., 2013). There is phenotypic overlap with the cranioectodermal dysplasias (see CED1, 218330). For a discussion of genetic heterogeneity of short-rib thoracic dysplasia, see SRTD1 (208500).
Asphyxiating thoracic dystrophy 1
MedGen UID:
1648057
Concept ID:
C4551856
Congenital Abnormality
Short-rib thoracic dysplasia (SRTD) with or without polydactyly refers to a group of autosomal recessive skeletal ciliopathies that are characterized by a constricted thoracic cage, short ribs, shortened tubular bones, and a 'trident' appearance of the acetabular roof. SRTD encompasses Ellis-van Creveld syndrome (EVC) and the disorders previously designated as Jeune syndrome or asphyxiating thoracic dystrophy (ATD), short rib-polydactyly syndrome (SRPS), and Mainzer-Saldino syndrome (MZSDS). Polydactyly is variably present, and there is phenotypic overlap in the various forms of SRTDs, which differ by visceral malformation and metaphyseal appearance. Nonskeletal involvement can include cleft lip/palate as well as anomalies of major organs such as the brain, eye, heart, kidneys, liver, pancreas, intestines, and genitalia. Some forms of SRTD are lethal in the neonatal period due to respiratory insufficiency secondary to a severely restricted thoracic cage, whereas others are compatible with life (summary by Huber and Cormier-Daire, 2012 and Schmidts et al., 2013). There is phenotypic overlap with the cranioectodermal dysplasias (Sensenbrenner syndrome; see CED1, 218330). Genetic Heterogeneity of Asphyxiating Thoracic Dysplasia SRTD1 has been mapped to chromosome 15q13. See also SRTD2 (611263), caused by mutation in the IFT80 gene (611177); SRTD3 (613091), caused by mutation in the DYNC2H1 gene (603297); SRTD4 (613819), caused by mutation in the TTC21B gene (612014); SRTD5 (614376), caused by mutation in the WDR19 gene (608151); SRTD6 (263520), caused by mutation in the NEK1 gene (604588); SRTD7 (614091), caused by mutation in the WDR35 gene (613602); SRTD8 (615503), caused by mutation in the WDR60 gene (615462); SRTD9 (266920), caused by mutation in the IFT140 gene (614620); SRTD10 (615630), caused by mutation in the IFT172 gene (607386); SRTD11 (615633), caused by mutation in the WDR34 gene (613363); SRTD13 (616300), caused by mutation in the CEP120 gene (613446); SRTD14 (616546), caused by mutation in the KIAA0586 gene (610178); SRTD15 (617088), caused by mutation in the DYNC2LI1 gene (617083); SRTD16 (617102), caused by mutation in the IFT52 gene (617094); SRTD17 (617405), caused by mutation in the TCTEX1D2 gene (617353); SRTD18 (617866), caused by mutation in the IFT43 gene (614068); SRTD19 (617895), caused by mutation in the IFT81 gene (605489); SRTD20 (617925), caused by mutation in the INTU gene (610621); and SRTD21 (619479), caused by mutation in the KIAA0753 gene (617112). See also SRTD12 (Beemer-Langer syndrome; 269860).

Professional guidelines

PubMed

Fassad MR, Rumman N, Junger K, Patel MP, Thompson J, Goggin P, Ueffing M, Beyer T, Boldt K, Lucas JS, Mitchison HM
Hum Mol Genet 2023 Oct 17;32(21):3090-3104. doi: 10.1093/hmg/ddad132. PMID: 37555648Free PMC Article
Zhao Q, Xu B, Xiang Q, Tan Y, Xie H, Gao Q, Wen L, Wang H, Yang M, Liu S
Mol Genet Genomic Med 2023 Mar;11(3):e2124. Epub 2022 Dec 20 doi: 10.1002/mgg3.2124. PMID: 36538006Free PMC Article
Tang X, Liu C, Liu X, Chen J, Fan X, Liu J, Ma D, Cao G, Chen Z, Xu D, Zhu Y, Jiang X, Cheng L, Wu Y, Hou L, Li Y, Shao X, Zheng S, Zhang A, Zheng B, Jian S, Rong Z, Su Q, Gao X, Rao J, Shen Q, Xu H; Chinese Children Genetic Kidney Disease Database (CCGKDD); “Internet Plus” Nephrology Alliance of the National Center for Children’s Care
J Med Genet 2022 Feb;59(2):147-154. Epub 2020 Dec 15 doi: 10.1136/jmedgenet-2020-107184. PMID: 33323469

Recent clinical studies

Etiology

Senum SR, Li YSM, Benson KA, Joli G, Olinger E, Lavu S, Madsen CD, Gregory AV, Neatu R, Kline TL, Audrézet MP, Outeda P, Nau CB, Meijer E, Ali H, Steinman TI, Mrug M, Phelan PJ, Watnick TJ, Peters DJM, Ong ACM, Conlon PJ, Perrone RD, Cornec-Le Gall E, Hogan MC, Torres VE, Sayer JA; Genomics England Research Consortium, the HALT PKD, CRISP, DIPAK, ADPKD Modifier, and TAME PKD studies, Harris PC
Am J Hum Genet 2022 Jan 6;109(1):136-156. Epub 2021 Dec 9 doi: 10.1016/j.ajhg.2021.11.016. PMID: 34890546Free PMC Article
Simonini C, Floeck A, Strizek B, Mueller A, Gembruch U, Geipel A
Arch Gynecol Obstet 2022 Jul;306(1):71-83. Epub 2021 Oct 1 doi: 10.1007/s00404-021-06265-7. PMID: 34596737Free PMC Article
Handa A, Voss U, Hammarsjö A, Grigelioniene G, Nishimura G
Jpn J Radiol 2020 Mar;38(3):193-206. Epub 2020 Jan 21 doi: 10.1007/s11604-020-00920-w. PMID: 31965514
Čechová A, Baxová A, Zeman J, Lambert L, Honzík T, Leiská A, Čunát V, Tesařová M
Prague Med Rep 2019;120(4):124-130. doi: 10.14712/23362936.2019.17. PMID: 31935347
Baujat G, Huber C, El Hokayem J, Caumes R, Do Ngoc Thanh C, David A, Delezoide AL, Dieux-Coeslier A, Estournet B, Francannet C, Kayirangwa H, Lacaille F, Le Bourgeois M, Martinovic J, Salomon R, Sigaudy S, Malan V, Munnich A, Le Merrer M, Le Quan Sang KH, Cormier-Daire V
J Med Genet 2013 Feb;50(2):91-8. doi: 10.1136/jmedgenet-2012-101282. PMID: 23339108

Diagnosis

Neřoldová M, Ciara E, Slatinská J, Fraňková S, Lišková P, Kotalová R, Globinovská J, Šafaříková M, Pfeiferová L, Zůnová H, Mrázová L, Stránecký V, Vrbacká A, Fabián O, Sticová E, Skanderová D, Šperl J, Kalousová M, Zima T, Macek M, Pawlowska J, Knisely AS, Kmoch S, Jirsa M
PLoS One 2023;18(7):e0288907. Epub 2023 Jul 20 doi: 10.1371/journal.pone.0288907. PMID: 37471416Free PMC Article
Zhao Q, Xu B, Xiang Q, Tan Y, Xie H, Gao Q, Wen L, Wang H, Yang M, Liu S
Mol Genet Genomic Med 2023 Mar;11(3):e2124. Epub 2022 Dec 20 doi: 10.1002/mgg3.2124. PMID: 36538006Free PMC Article
Senum SR, Li YSM, Benson KA, Joli G, Olinger E, Lavu S, Madsen CD, Gregory AV, Neatu R, Kline TL, Audrézet MP, Outeda P, Nau CB, Meijer E, Ali H, Steinman TI, Mrug M, Phelan PJ, Watnick TJ, Peters DJM, Ong ACM, Conlon PJ, Perrone RD, Cornec-Le Gall E, Hogan MC, Torres VE, Sayer JA; Genomics England Research Consortium, the HALT PKD, CRISP, DIPAK, ADPKD Modifier, and TAME PKD studies, Harris PC
Am J Hum Genet 2022 Jan 6;109(1):136-156. Epub 2021 Dec 9 doi: 10.1016/j.ajhg.2021.11.016. PMID: 34890546Free PMC Article
Simonini C, Floeck A, Strizek B, Mueller A, Gembruch U, Geipel A
Arch Gynecol Obstet 2022 Jul;306(1):71-83. Epub 2021 Oct 1 doi: 10.1007/s00404-021-06265-7. PMID: 34596737Free PMC Article
Baujat G, Huber C, El Hokayem J, Caumes R, Do Ngoc Thanh C, David A, Delezoide AL, Dieux-Coeslier A, Estournet B, Francannet C, Kayirangwa H, Lacaille F, Le Bourgeois M, Martinovic J, Salomon R, Sigaudy S, Malan V, Munnich A, Le Merrer M, Le Quan Sang KH, Cormier-Daire V
J Med Genet 2013 Feb;50(2):91-8. doi: 10.1136/jmedgenet-2012-101282. PMID: 23339108

Therapy

Fette A, Rokitansky A
J Pediatr Surg 2005 Aug;40(8):1345-8. doi: 10.1016/j.jpedsurg.2005.05.033. PMID: 16080946
Rott HD, Krieg P, Rütschle H, Kraus C
Genet Couns 2003;14(3):281-8. PMID: 14577672

Prognosis

Zhao Q, Xu B, Xiang Q, Tan Y, Xie H, Gao Q, Wen L, Wang H, Yang M, Liu S
Mol Genet Genomic Med 2023 Mar;11(3):e2124. Epub 2022 Dec 20 doi: 10.1002/mgg3.2124. PMID: 36538006Free PMC Article
He WB, Xiao WJ, Dai CL, Wang YR, Li XR, Gong F, Meng LL, Tan C, Zeng SC, Lu GX, Lin G, Tan YQ, Hu H, Du J
J Med Genet 2022 Oct;59(10):1010-1016. Epub 2022 Feb 4 doi: 10.1136/jmedgenet-2021-108013. PMID: 35121647
Čechová A, Baxová A, Zeman J, Lambert L, Honzík T, Leiská A, Čunát V, Tesařová M
Prague Med Rep 2019;120(4):124-130. doi: 10.14712/23362936.2019.17. PMID: 31935347
Chowdhury D, Williams KB, Chidekel A, Pizarro C, Preedy C, Young M, Hendrickson C, Robinson DL, Kreiger PA, Puffenberger EG, Strauss KA
J Pediatr 2017 Dec;191:145-151. doi: 10.1016/j.jpeds.2017.08.073. PMID: 29173298
Baujat G, Huber C, El Hokayem J, Caumes R, Do Ngoc Thanh C, David A, Delezoide AL, Dieux-Coeslier A, Estournet B, Francannet C, Kayirangwa H, Lacaille F, Le Bourgeois M, Martinovic J, Salomon R, Sigaudy S, Malan V, Munnich A, Le Merrer M, Le Quan Sang KH, Cormier-Daire V
J Med Genet 2013 Feb;50(2):91-8. doi: 10.1136/jmedgenet-2012-101282. PMID: 23339108

Clinical prediction guides

Zhao Q, Xu B, Xiang Q, Tan Y, Xie H, Gao Q, Wen L, Wang H, Yang M, Liu S
Mol Genet Genomic Med 2023 Mar;11(3):e2124. Epub 2022 Dec 20 doi: 10.1002/mgg3.2124. PMID: 36538006Free PMC Article
Simonini C, Floeck A, Strizek B, Mueller A, Gembruch U, Geipel A
Arch Gynecol Obstet 2022 Jul;306(1):71-83. Epub 2021 Oct 1 doi: 10.1007/s00404-021-06265-7. PMID: 34596737Free PMC Article
Tang X, Liu C, Liu X, Chen J, Fan X, Liu J, Ma D, Cao G, Chen Z, Xu D, Zhu Y, Jiang X, Cheng L, Wu Y, Hou L, Li Y, Shao X, Zheng S, Zhang A, Zheng B, Jian S, Rong Z, Su Q, Gao X, Rao J, Shen Q, Xu H; Chinese Children Genetic Kidney Disease Database (CCGKDD); “Internet Plus” Nephrology Alliance of the National Center for Children’s Care
J Med Genet 2022 Feb;59(2):147-154. Epub 2020 Dec 15 doi: 10.1136/jmedgenet-2020-107184. PMID: 33323469
Torre M, Guerriero V, Ramenghi L, Rizzo F, Gallizia A, Sacco O
J Pediatr Surg 2021 Apr;56(4):700-705. Epub 2020 Jun 13 doi: 10.1016/j.jpedsurg.2020.06.008. PMID: 32653161
Čechová A, Baxová A, Zeman J, Lambert L, Honzík T, Leiská A, Čunát V, Tesařová M
Prague Med Rep 2019;120(4):124-130. doi: 10.14712/23362936.2019.17. PMID: 31935347

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