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Pin1 在经典 BMP 信号转导中作为分子开关起着关键作用。

Pin1 plays a critical role as a molecular switch in canonical BMP signaling.

机构信息

Department of Molecular Genetics, School of Dentistry and Dental Research Institute, Seoul National University, Seoul, Korea.

出版信息

J Cell Physiol. 2015 Mar;230(3):640-7. doi: 10.1002/jcp.24787.

Abstract

Pin1 is a peptidyl prolyl cis-trans isomerase that specifically binds to the phosphoserine-proline or phosphothreonine-proline motifs of numerous proteins. Previously, we reported that Pin1 deficiency resulted in defects in osteoblast differentiation during early bone development. In this study, we found that adult Pin1-deficient mice developed osteoporotic phenotypes compared to age-matched controls. Since BMP2 stored in the bone matrix plays a critical role in adult bone maintenance, we suspected that BMP R-Smads (Smad1 and Smad5) could be critical targets for Pin1 action. Pin1 specifically binds to the phosphorylated linker region of Smad1, which leads to structural modification and stabilization of the Smad1 protein. In this process, Pin1-mediated conformational modification of Smad1 directly suppresses the Smurf1 interaction with Smad1, thereby promoting sustained activation of the Smad1 molecule. Our data demonstrate that post-phosphorylational prolyl isomerization of Smad1 is a converging signal to stabilize the Smad1 molecule against the ubiquitination process mediated by Smurf1. Therefore, Pin1 is a critical molecular switch in the determination of Smad1 fate, opposing the death signal transmitted to the Smad1 linker region by phosphorylation cascades after its nuclear localization and transcriptional activation. Thus, Pin1 could be developed as a major therapeutic target in many skeletal diseases.

摘要

Pin1 是一种肽基脯氨酰顺反异构酶,能特异性结合于许多蛋白的磷酸丝氨酸-脯氨酸或磷酸苏氨酸-脯氨酸模体。先前,我们曾报道 Pin1 缺失导致早期骨发育过程中成骨细胞分化缺陷。在本研究中,我们发现成年 Pin1 缺失小鼠与年龄匹配的对照组相比,表现出骨质疏松表型。由于储存在骨基质中的 BMP2 在成人骨维持中起着至关重要的作用,我们怀疑 BMP R-Smads(Smad1 和 Smad5)可能是 Pin1 作用的关键靶点。Pin1 特异性结合于 Smad1 的磷酸化连接区,从而导致 Smad1 蛋白的结构修饰和稳定。在此过程中,Pin1 介导的 Smad1 构象修饰直接抑制 Smurf1 与 Smad1 的相互作用,从而促进 Smad1 分子的持续激活。我们的数据表明,Smad1 的磷酸化脯氨酰异构化是一个收敛信号,可稳定 Smad1 分子,防止其被 Smurf1 介导的泛素化过程降解。因此,Pin1 是决定 Smad1 命运的关键分子开关,可拮抗其核定位和转录激活后磷酸化级联向 Smad1 连接区传递的死亡信号。因此,Pin1 可能成为许多骨骼疾病的主要治疗靶点。

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