Li Tianqi, Huang Liwen, Guo Chenxiao, Ren Jing, Chen Xi, Ke Yachu, Xun Zengyu, Hu Wenzhuo, Qi Yilin, Wang Heping, Gong Zhongying, Liang Xing-Jie, Xue Xue
State Key Laboratory of Medicinal Chemical Biology, College of Pharmacy, Nankai University, Tianjin, 300350, P. R. China.
Department of Neurology, Tianjin First Central Hospital, School of Medicine, Nankai University, Tianjin, 300192, P. R. China.
Adv Sci (Weinh). 2025 May;12(20):e2413376. doi: 10.1002/advs.202413376. Epub 2025 Apr 13.
Parkinson's disease (PD) is exacerbated by dysfunction of inter-organelle contact, which depends on cellular responses to the mechanical microenvironment and can be regulated by external mechanical forces. Delivering dynamic mechanical forces to neural cells proves challenging due to the skull. Inspired by the effects of massage; here PEGylated black phosphorus nanosheets (PEG-BPNS), known for their excellent biocompatibility, biodegradability, specific surface area, mechanical strength, and flexibility, are introduced, which are capable of adhering to neural cell membrane and generating mechanical stimulation with their lateral size of 200 nm, exhibiting therapeutic potential in a 1-methyl-4-phenyl-1,2,3,6-te-trahydropyridine-induced PD mouse model by regulating inter-organelle contacts. Specifically, it is found that 200 nm PEG-BPNS, acting as "NanoMassage," significantly increase plasma membrane tension, as evidenced by fluorescent lipid tension reporter fluorescence lifetime analysis. This mechanical force modulates actin reorganization, subsequently regulating the contacts between actin, mitochondria, and endoplasmic reticulum, further controlling mitochondrial fission and mitigating mitochondrial dysfunction in PD, exhibiting therapeutic efficacy via intranasal administration. These findings provide a noninvasive strategy for applying mechanical stimulation to deep brain areas and elucidate the mechanism of NanoMassage mediating inter-organelle contacts, suggesting the rational design of "NanoMassage" to remodel inter-organelle communications in neurodegenerative disease treatment.
帕金森病(PD)会因细胞器间接触功能障碍而加重,这种功能障碍取决于细胞对机械微环境的反应,并可由外部机械力调节。由于颅骨的存在,向神经细胞传递动态机械力具有挑战性。受按摩效果的启发,本文引入了聚乙二醇化黑磷纳米片(PEG-BPNS),其具有优异的生物相容性、生物降解性、比表面积、机械强度和柔韧性,能够粘附在神经细胞膜上,并以其200纳米的横向尺寸产生机械刺激,在1-甲基-4-苯基-1,2,3,6-四氢吡啶诱导的PD小鼠模型中通过调节细胞器间接触展现出治疗潜力。具体而言,研究发现200纳米的PEG-BPNS作为“纳米按摩”,可显著增加质膜张力,荧光脂质张力报告基因荧光寿命分析证明了这一点。这种机械力调节肌动蛋白重组,随后调节肌动蛋白、线粒体和内质网之间的接触,进一步控制线粒体裂变并减轻PD中的线粒体功能障碍,通过鼻内给药展现出治疗效果。这些发现为向脑深部区域施加机械刺激提供了一种非侵入性策略,并阐明了纳米按摩介导细胞器间接触的机制,为在神经退行性疾病治疗中合理设计“纳米按摩”以重塑细胞器间通讯提供了依据。