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The wonders of BMP9: From mesenchymal stem cell differentiation, angiogenesis, neurogenesis, tumorigenesis, and metabolism to regenerative medicine

机译:BMP9的奇迹:从间充质干细胞分化,血管生成,神经发生,肿瘤发生,代谢到再生医学

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Although bone morphogenetic proteins (BMPs) initially showed effective induction of ectopic bone growth in muscle, it has since been determined that these proteins, as members of the TGF-β superfamily, play a diverse and critical array of biological roles. These roles include regulating skeletal and bone formation, angiogenesis, and development and homeostasis of multiple organ systems. Disruptions of the members of the TGF-β/BMP superfamily result in severe skeletal and extra-skeletal irregularities, suggesting high therapeutic potential from understanding this family of BMP proteins. Although it was once one of the least characterized BMPs, BMP9 has revealed itself to have the highest osteogenic potential across numerous experiments both in?vitro and in?vivo , with recent studies suggesting that the exceptional potency of BMP9 may result from unique signaling pathways that differentiate it from other BMPs. The effectiveness of BMP9 in inducing bone formation was recently revealed in promising experiments that demonstrated efficacy in the repair of critical sized cranial defects as well as compatibility with bone-inducing bio-implants, revealing the great translational promise of BMP9. Furthermore, emerging evidence indicates that, besides its osteogenic activity, BMP9 exerts a broad range of biological functions, including stem cell differentiation, angiogenesis, neurogenesis, tumorigenesis, and metabolism. This review aims to summarize our current understanding of BMP9 across biology and the body.
机译:尽管骨形态发生蛋白(BMP)最初显示出有效诱导肌肉中异位骨生长,但是从那以后就确定这些蛋白作为TGF-β超家族的成员,在生物学中起着各种各样的重要作用。这些作用包括调节骨骼和骨骼的形成,血管生成以及多器官系统的发育和体内平衡。 TGF-β/ BMP超家族成员的破坏导致严重的骨骼和骨骼外异常,这表明从了解该BMP蛋白家族具有很高的治疗潜力。尽管BMP9曾经是特征最弱的BMP之一,但它在体外和体内的众多实验中都显示出具有最高的成骨潜能,而最近的研究表明,BMP9的非凡功效可能是由独特的信号通路引起的。区别于其他BMP。最近在一项有前途的实验中揭示了BMP9诱导骨形成的有效性,该实验证明了在修复关键尺寸的颅骨缺损方面的功效以及与骨诱导生物植入物的相容性,从而揭示了BMP9的巨大转化前景。此外,越来越多的证据表明,BMP9除了具有成骨活性外,还具有广泛的生物学功能,包括干细胞分化,血管生成,神经发生,肿瘤发生和代谢。这篇综述旨在总结我们目前对生物学和人体中BMP9的理解。

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