Shanghai Frontiers Science Center of Targeted Drugs, School of Pharmaceutical Sciences, Shanghai Jiao Tong University, Shanghai 200240, China.
Shanghai Key Laboratory for Molecular Engineering of Chiral Drugs, Shanghai Jiao Tong University, Shanghai 200240, China.
J Med Chem. 2024 Nov 14;67(21):19837-19851. doi: 10.1021/acs.jmedchem.4c02224. Epub 2024 Oct 27.
Piezo1 plays a pivotal role in regulating bone remodeling and homeostasis and has emerged as a promising target for chemical intervention in disuse osteoporosis. Nevertheless, the development of small-molecule Piezo1 agonists is still in its infancy, and highly efficacious Piezo1 agonists are urgently required. In this study, by shedding light on the structural novelty of the canonical Piezo1 agonist Yoda1, we initiated a structural optimization campaign based on the (thiadiazol-2-yl)pyrazine scaffold. A deuterated compound was identified to be the most potent candidate against Piezo1 with an EC value of 2.21 μM, which was over 20-fold more potent than the reference Yoda1. This compound effectively activated Piezo1 and initiated Ca influx in MSCs and promoted MSC osteogenesis via activating the Ca-related Erk signaling pathway. Furthermore, compound was found to alleviate disuse osteoporosis with a desirable safety profile in a HU (hindlimb-unloading) rat model, thus warranting it as a potential probe for further investigation.
Piezo1 在调节骨重塑和动态平衡方面发挥着关键作用,并且已成为治疗废用性骨质疏松症的化学干预的有前途的靶点。然而,小分子 Piezo1 激动剂的开发仍处于起步阶段,迫切需要高效的 Piezo1 激动剂。在这项研究中,通过揭示经典 Piezo1 激动剂 Yoda1 的结构新颖性,我们基于(噻二唑-2-基)吡嗪支架启动了一项结构优化活动。鉴定出氘代化合物 是针对 Piezo1 的最有效候选物,其 EC 值为 2.21 μM,比参比 Yoda1 强 20 多倍。该化合物可有效激活 Piezo1 并在间充质干细胞(MSCs)中引发 Ca 内流,通过激活 Ca 相关的 Erk 信号通路促进 MSC 成骨。此外,研究发现化合物 在 HU(下肢去负荷)大鼠模型中可缓解废用性骨质疏松症,且具有良好的安全性,因此有潜力作为进一步研究的探针。