From an orphan disease to a generalized molecular mechanism: PTPN11 loss-of-function mutations in the pathogenesis of metachondromatosis.

Rare diseases (Austin, Tex.) Pub Date : 2013-10-02 eCollection Date: 2013-01-01 DOI:10.4161/rdis.26657
Wentian Yang, Benjamin G Neel
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引用次数: 6

Abstract

Recently, loss-of-function mutations in PTPN11 were linked to the cartilage tumor syndrome metachondromatosis (MC), a rare inherited disorder featuring osteochondromas, endochondromas and skeletal deformation. However, the underlying molecular and cellular mechanism for MC remained incompletely understood. By studying the role of the Src homology-2 domain-containing protein tyrosine phosphatase Shp2 (encoded by mouse Ptpn11) in cathepsin K-expressing cells, we identified a novel cell population in the perichondrial groove of Ranvier. In the absence of Shp2, these cells exhibit elevated Indian hedgehog (Ihh) signaling, proliferate excessively and cause ectopic cartilage formation and tumors. Our findings establish a critical role for a protein-tyrosine phosphatase (PTP) family member, in addition to the well-known roles of receptor tyrosine kinases (RTKs), in cartilage development and homeostasis. However, whether Shp2 deficiency in other epiphyseal chondroid cells and whether signaling pathways in addition to the IHH/Parathyroid Hormone-related Peptide (PTHrP) axis attribute to the formation of enchondromas and osteochondromas remains elusive. Understanding how chondrogenic events are regulated by SHP2 could aid in the development of novel therapeutic approaches to prevent and treat cartilage diseases, such as MC and osteoarthritis (OA).

Abstract Image

Abstract Image

从一种孤儿病到一种普遍的分子机制:偏软骨瘤病发病机制中的 PTPN11 功能缺失突变。
最近,PTPN11的功能缺失突变与软骨肿瘤综合征软骨瘤病(MC)有关,这是一种罕见的遗传性疾病,以骨软骨瘤、内软骨瘤和骨骼变形为特征。然而,人们对MC的分子和细胞机制仍不甚了解。通过研究含 Src 同源-2 结构域的蛋白酪氨酸磷酸酶 Shp2(由小鼠 Ptpn11 编码)在表达 cathepsin K 的细胞中的作用,我们在 Ranvier 的软骨周围沟中发现了一个新的细胞群。在 Shp2 缺失的情况下,这些细胞会表现出印度刺猬(Ihh)信号的升高、过度增殖并导致异位软骨形成和肿瘤。除了众所周知的受体酪氨酸激酶(RTKs)的作用外,我们的发现还确立了蛋白酪氨酸磷酸酶(PTP)家族成员在软骨发育和稳态中的关键作用。然而,Shp2在其他骺软骨细胞中的缺乏,以及除了IHH/甲状旁腺激素相关肽(PTHrP)轴之外的信号通路是否会导致软骨瘤和骨软骨瘤的形成,这些问题仍然没有答案。了解SHP2如何调控软骨生成事件有助于开发新的治疗方法来预防和治疗软骨疾病,如MC和骨关节炎(OA)。
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