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Pitx1 杂合不足导致人类出现马蹄内翻足,以及类似于马蹄内翻足的表型在小鼠中出现。

Pitx1 haploinsufficiency causes clubfoot in humans and a clubfoot-like phenotype in mice.

机构信息

Department of Orthopaedic Surgery, Washington University School of Medicine, St Louis, MO 63110, USA.

出版信息

Hum Mol Genet. 2011 Oct 15;20(20):3943-52. doi: 10.1093/hmg/ddr313. Epub 2011 Jul 20.

DOI:10.1093/hmg/ddr313
PMID:21775501
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3177645/
Abstract

Clubfoot affects 1 in 1000 live births, although little is known about its genetic or developmental basis. We recently identified a missense mutation in the PITX1 bicoid homeodomain transcription factor in a family with a spectrum of lower extremity abnormalities, including clubfoot. Because the E130K mutation reduced PITX1 activity, we hypothesized that PITX1 haploinsufficiency could also cause clubfoot. Using copy number analysis, we identified a 241 kb chromosome 5q31 microdeletion involving PITX1 in a patient with isolated familial clubfoot. The PITX1 deletion segregated with autosomal dominant clubfoot over three generations. To study the role of PITX1 haploinsufficiency in clubfoot pathogenesis, we began to breed Pitx1 knockout mice. Although Pitx1(+/-) mice were previously reported to be normal, clubfoot was observed in 20 of 225 Pitx1(+/-) mice, resulting in an 8.9% penetrance. Clubfoot was unilateral in 16 of the 20 affected Pitx1(+/-) mice, with the right and left limbs equally affected, in contrast to right-sided predominant hindlimb abnormalities previously noted with complete loss of Pitx1. Peroneal artery hypoplasia occurred in the clubfoot limb and corresponded spatially with small lateral muscle compartments. Tibial and fibular bone volumes were also reduced. Skeletal muscle gene expression was significantly reduced in Pitx1(-/-) E12.5 hindlimb buds compared with the wild-type, suggesting that muscle hypoplasia was due to abnormal early muscle development and not disuse atrophy. Our morphological data suggest that PITX1 haploinsufficiency may cause a developmental field defect preferentially affecting the lateral lower leg, a theory that accounts for similar findings in human clubfoot.

摘要

马蹄足畸形影响每 1000 例活产儿中的 1 例,但人们对其遗传或发育基础知之甚少。我们最近在一个下肢异常包括马蹄足的家族中发现了 PITX1 双同源域转录因子的错义突变。由于 E130K 突变降低了 PITX1 的活性,我们假设 PITX1 单倍不足也可能导致马蹄足。使用拷贝数分析,我们在一个孤立性家族性马蹄足患者中鉴定出涉及 PITX1 的 5q31 微缺失,大小为 241 kb。PITX1 缺失与三代常染色体显性遗传的马蹄足共分离。为了研究 PITX1 单倍不足在马蹄足发病机制中的作用,我们开始培育 Pitx1 敲除小鼠。尽管先前报道 Pitx1(+/-) 小鼠是正常的,但在 225 只 Pitx1(+/-) 小鼠中有 20 只出现马蹄足,其外显率为 8.9%。在受影响的 20 只 Pitx1(+/-) 小鼠中有 16 只出现单侧马蹄足,右侧和左侧肢体同样受到影响,与之前完全缺失 Pitx1 时观察到的右侧主要后肢异常相反。在马蹄足肢体中出现腓动脉发育不良,与小的外侧肌间隔空间相对应。胫骨和腓骨体积也减少。与野生型相比,Pitx1(-/-) E12.5 后肢芽中的骨骼肌肉基因表达显著降低,表明肌肉发育不良是由于早期肌肉发育异常,而不是废用性萎缩。我们的形态学数据表明,PITX1 单倍不足可能导致发育性场缺陷,优先影响小腿外侧,这一理论解释了人类马蹄足的类似发现。

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本文引用的文献

1
Vascular abnormalities correlate with decreased soft tissue volumes in idiopathic clubfoot.血管异常与特发性马蹄足的软组织体积减少相关。
Clin Orthop Relat Res. 2011 May;469(5):1442-9. doi: 10.1007/s11999-010-1657-1. Epub 2010 Nov 2.
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Pitx2 defines alternate pathways acting through MyoD during limb and somitic myogenesis.Pitx2 在肢和体节肌发生过程中通过 MyoD 定义了替代途径。
Development. 2010 Nov;137(22):3847-56. doi: 10.1242/dev.053421.
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Familial isolated clubfoot is associated with recurrent chromosome 17q23.1q23.2 microduplications containing TBX4.家族性孤立性马蹄内翻足与包含 TBX4 的 17q23.1q23.2 微重复的染色体重复有关。
Am J Hum Genet. 2010 Jul 9;87(1):154-60. doi: 10.1016/j.ajhg.2010.06.010.
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Micro-magnetic resonance imaging and embryological analysis of wild-type and pma mutant mice with clubfoot.马蹄内翻足野生型和 pma 突变小鼠的微磁共振成像和胚胎学分析。
J Anat. 2010 Jan;216(1):108-20. doi: 10.1111/j.1469-7580.2009.01163.x. Epub 2009 Nov 9.
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Multistate study of the epidemiology of clubfoot.马蹄内翻足流行病学的多州研究。
Birth Defects Res A Clin Mol Teratol. 2009 Nov;85(11):897-904. doi: 10.1002/bdra.20625.
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Leg muscle atrophy in idiopathic congenital clubfoot: is it primitive or acquired?特发性先天性马蹄内翻足的腿部肌肉萎缩:是原发性的还是后天获得性的?
J Child Orthop. 2009 Jun;3(3):171-8. doi: 10.1007/s11832-009-0179-4. Epub 2009 May 6.
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Magnetic resonance angiography in clubfoot and vertical talus: a feasibility study.马蹄内翻足和垂直距骨的磁共振血管造影:一项可行性研究。
Clin Orthop Relat Res. 2009 May;467(5):1250-5. doi: 10.1007/s11999-008-0673-x. Epub 2009 Jan 6.
8
Asymmetric lower-limb malformations in individuals with homeobox PITX1 gene mutation.伴有同源框PITX1基因突变个体的不对称下肢畸形
Am J Hum Genet. 2008 Nov;83(5):616-22. doi: 10.1016/j.ajhg.2008.10.004. Epub 2008 Oct 23.
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Impact of congenital talipes equinovarus etiology on treatment outcomes.先天性马蹄内翻足病因对治疗结果的影响。
Dev Med Child Neurol. 2008 Jul;50(7):498-502. doi: 10.1111/j.1469-8749.2008.03016.x.
10
Dual hindlimb control elements in the Tbx4 gene and region-specific control of bone size in vertebrate limbs.Tbx4基因中的双后肢控制元件与脊椎动物肢体骨骼大小的区域特异性控制。
Development. 2008 Aug;135(15):2543-53. doi: 10.1242/dev.017384. Epub 2008 Jun 25.