Department of Developmental Biology, Harvard School of Dental Medicine, Boston, MA, USA,
Cell Mol Life Sci. 2014 Aug;71(16):3165-72. doi: 10.1007/s00018-013-1541-8. Epub 2013 Dec 15.
The bone morphogenetic protein (BMP) signaling pathway is essential for normal development and tissue homeostasis. BMP signal transduction occurs when ligands interact with a complex of type 1 and type 2 receptors to activate downstream transcription factors. It is well established that a single BMP receptor may bind multiple BMP ligands with varying affinity, and this has been largely attributed to conformation at the amino acid level. However, all three type 2 BMP receptors (BMPR2, ACVR2A/B) contain consensus N-glycosylation sites in their extracellular domains (ECDs), which could play a role in modulating interaction with ligand. Here, we show a differential pattern of N-glycosylation between BMPR2 and ACVR2A/B. Site-directed mutagenesis reveals that BMPR2 is uniquely glycosylated near its ligand binding domain and at a position that is mutated in patients with heritable pulmonary arterial hypertension. We further demonstrate using a cell-free pulldown assay that N-glycosylation of the BMPR2-ECD enhances its ability to bind BMP2 ligand but has no impact on binding by the closely-related ACVR2B. Our results illuminate a novel aspect of BMP signaling pathway mechanics and demonstrate a functional difference resulting from post-translational modification of type 2 BMP receptors. Additionally, since BMPR2 is required for several aspects of normal development and defects in its function are strongly implicated in human disease, our findings are likely to be relevant in several biological contexts in normal and abnormal human physiology.
骨形态发生蛋白 (BMP) 信号通路对于正常发育和组织内稳态至关重要。当配体与 1 型和 2 型受体复合物相互作用以激活下游转录因子时,BMP 信号转导就会发生。已经证实,单个 BMP 受体可能以不同的亲和力结合多种 BMP 配体,这在很大程度上归因于氨基酸水平的构象。然而,所有三种 2 型 BMP 受体 (BMPR2、ACVR2A/B) 在其细胞外结构域 (ECD) 中都含有保守的 N-糖基化位点,这可能在调节与配体的相互作用中发挥作用。在这里,我们显示了 BMPR2 和 ACVR2A/B 之间 N-糖基化的差异模式。定点突变显示,BMPR2 在其配体结合域附近和在遗传性肺动脉高压患者中发生突变的位置独特地发生糖基化。我们进一步通过无细胞下拉测定证明,BMPR2-ECD 的 N-糖基化增强了其与 BMP2 配体结合的能力,但对与密切相关的 ACVR2B 的结合没有影响。我们的结果阐明了 BMP 信号通路机制的一个新方面,并证明了 2 型 BMP 受体翻译后修饰所产生的功能差异。此外,由于 BMPR2 是正常发育的几个方面所必需的,并且其功能缺陷强烈暗示了人类疾病,因此我们的发现可能与正常和异常人体生理学中的几个生物学背景相关。