内分泌学
努南综合征
内科学
生物
生长因子
MAPK/ERK通路
过度活跃
PTPN11型
脱磷
身材矮小
磷酸化
鸟嘌呤核苷酸交换因子
细胞生物学
信号转导
突变
磷酸酶
遗传学
受体
医学
基因
克拉斯
作者
Audrey De Rocca Serra-Nédélec,Thomas Édouard,Karine Tréguer,Mylène Tajan,Toshiyuki Araki,Marie Dance,Marianne Mus,Alexandra Montagner,M. Tauber,Jean‐Pierre Salles,Philippe Valet,Benjamin G. Neel,Patrick Raynal,Armelle Yart
标识
DOI:10.1073/pnas.1119803109
摘要
Noonan syndrome (NS), a genetic disease caused in half of cases by activating mutations of the tyrosine phosphatase SHP2 (PTPN11), is characterized by congenital cardiopathies, facial dysmorphic features, and short stature. How mutated SHP2 induces growth retardation remains poorly understood. We report here that early postnatal growth delay is associated with low levels of insulin-like growth factor 1 (IGF-1) in a mouse model of NS expressing the D61G mutant of SHP2. Conversely, inhibition of SHP2 expression in growth hormone (GH)-responsive cell lines results in increased IGF-1 release upon GH stimulation. SHP2-deficient cells display decreased ERK1/2 phosphorylation and rat sarcoma (RAS) activation in response to GH, whereas expression of NS-associated SHP2 mutants results in ERK1/2 hyperactivation in vitro and in vivo. RAS/ERK1/2 inhibition in SHP2-deficient cells correlates with impaired dephosphorylation of the adaptor Grb2-associated binder-1 (GAB1) on its RAS GTPase-activating protein (RASGAP) binding sites and is rescued by interfering with RASGAP recruitment or function. We demonstrate that inhibition of ERK1/2 activation results in an increase of IGF-1 levels in vitro and in vivo, which is associated with significant growth improvement in NS mice. In conclusion, NS-causing SHP2 mutants inhibit GH-induced IGF-1 release through RAS/ERK1/2 hyperactivation, a mechanism that could contribute to growth retardation. This finding suggests that, in addition to its previously shown beneficial effect on NS-linked cardiac and craniofacial defects, RAS/ERK1/2 modulation could also alleviate the short stature phenotype in NS caused by PTPN11 mutations.
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