Yao Linli, Zhou Zhe, Wang Suxiao, Zou Qichao, Wang Hang-Xing, Ma Li-Xin, Wang Shengfu, Zhang Xiuhua
Collaborative Innovation Center for Advanced Organic Chemical Materials Co-constructed by the Province and Ministry, College of Chemistry and Chemical Engineering, Hubei University Wuhan 430062 China
Department of Neurology, The First Hospital of Lanzhou University Lanzhou 730000 China.
Chem Sci. 2022 Apr 22;13(20):5902-5912. doi: 10.1039/d2sc00253a. eCollection 2022 May 25.
The development and exploration of new nanostructural inhibitors against Alzheimer's disease (AD)-associated amyloid-β (Aβ) fibrillation have attracted extensive attention and become a new frontier in nanomedicine. However, focusing on finding an effective nanostructure is one of the most challenging parts of the therapeutics task. Herein, nanoscale spherical covalent organic frameworks (COFs) post-synthetic functionalization with sodium phosphate (SP) groups on the channel networks were found to efficiently inhibit Aβ fibrillation. The as-prepared uniform SP-COF nanospheres with high surface area, good crystallinity, and chemical stability were characterized by multifarious microscopic and spectroscopic techniques. Moreover, molecular dynamics simulation together with fibrillation kinetics and cytotoxicity assay experiments shows that there were restricted-access adsorption channels in the SP-COFs which were formed by the cavities with size and functional groups accommodated to the Aβ peptide sequence and significantly affected the fibrillation and cytotoxicity of Aβ. Transmission electron microscopy (TEM), dynamic light scattering (DLS) monitoring, isothermal titration calorimetry (ITC), Fourier transform infrared (FT-IR) and circular dichroism (CD) spectra measurements, and confocal imaging observation were performed to understand the inhibition mechanism and influencing factors of the SP-COFs. To our knowledge, our strategy is the first exploration of COF-based anti-amyloidogenic nanomaterials with high affinity and specific targeting, which are crucial for the inhibition of Aβ fibrillation for AD prevention and treatment.
针对阿尔茨海默病(AD)相关淀粉样β蛋白(Aβ)纤维化的新型纳米结构抑制剂的开发与探索已引起广泛关注,并成为纳米医学的一个新前沿领域。然而,专注于寻找有效的纳米结构是治疗任务中最具挑战性的部分之一。在此,发现通过在通道网络上用磷酸钠(SP)基团进行后合成功能化的纳米级球形共价有机框架(COF)能有效抑制Aβ纤维化。所制备的具有高表面积、良好结晶度和化学稳定性的均匀SP-COF纳米球通过多种显微镜和光谱技术进行了表征。此外,分子动力学模拟以及纤维化动力学和细胞毒性测定实验表明,SP-COF中存在受限进入的吸附通道,这些通道由尺寸和官能团与Aβ肽序列相适应的空腔形成,并显著影响Aβ的纤维化和细胞毒性。进行了透射电子显微镜(TEM)、动态光散射(DLS)监测、等温滴定量热法(ITC)、傅里叶变换红外(FT-IR)和圆二色性(CD)光谱测量以及共聚焦成像观察,以了解SP-COF的抑制机制和影响因素。据我们所知,我们的策略是首次探索具有高亲和力和特异性靶向的基于COF的抗淀粉样生成纳米材料,这对于抑制Aβ纤维化以预防和治疗AD至关重要。